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Saw
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Saw
Rip saws of various sizes
ClassificationCutting
TypesHand saw
Back saw
Bow saw
Chainsaw
Circular saw
Reciprocating saw
Bandsaw
RelatedMilling cutter

A saw is a tool consisting of a tough blade, wire, or chain with a hard toothed edge used to cut through material. Various terms are used to describe toothed and abrasive saws.

Saws began as serrated materials, and when mankind learned how to use iron, it became the preferred material for saw blades of all kinds. There are numerous types of hand saws and mechanical saws, and different types of blades and cuts.

Description

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A saw is a tool consisting of a tough blade, wire, or chain with a hard toothed edge. It is used to cut through material, very often wood, though sometimes metal or stone.

Terminology

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A number of terms are used to describe saws.

Kerf

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Diagram showing the teeth of a saw blade when looking front-on. The teeth protrude to the left and right, so that the saw cut (kerf) is wider than the blade width. (The term set describes how much the teeth protrude. The kerf may sometimes be wider than the set, depending on wobble and other factors.

The narrow channel left behind by the saw and (relatedly) the measure of its width is known as the kerf. As such, it also refers to the wasted material that is turned into sawdust, and becomes a factor in measurements when making cuts. For example, cutting an 8-foot (2.4 meter) piece of wood into 1 foot (30 cm) sections, with 1/8 inch (3 mm) kerf will produce only seven sections, plus one that is 7/8 inch (21 mm) too short when factoring in the kerf from all the cuts. The kerf depends on several factors: the width of the saw blade; the set of the blade's teeth; the amount of wobble created during cutting; and the amount of material pulled out of the sides of the cut. Although the term "kerf" is often used informally, to refer simply to the thickness of the saw blade, or to the width of the set, this can be misleading, because blades with the same thickness and set may create different kerfs. For example, a too-thin blade can cause excessive wobble, creating a wider-than-expected kerf. The kerf created by a given blade can be changed by adjusting the set of its teeth with a tool called a saw tooth setter. The kerf left behind by a laser beam can be changed based on the laser's power and type of material being cut.

Toothed saws

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A toothed saw or tooth saw has a hard toothed edge. The cut is made by placing the toothed edge against the material and moving it back and forth, or continuously forward. This force may be applied by hand, or powered by steam, water, electricity or other power source.

Frequency of teeth

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The most common measurement of the frequency of teeth on a saw blade is point per inch (25 mm). It is taken by setting the tip (or point) of one tooth at the zero point on a ruler, and then counting the number of points between the zero mark and the one-inch mark, inclusive (that is, including both the point at the zero mark and any point that lines up precisely with the one-inch mark). There is always one more point per inch than there are teeth per inch (e.g., a saw with 14 points per inch will have 13 teeth per inch, and a saw with 10 points per inch will have 9 teeth per inch). Some saws do not have the same number of teeth per inch throughout their entire length, but the vast majority do. Those with more teeth per inch at the toe are described as having incremental teeth, in order to make starting the saw cut easier.[1]

An alternative measurement of the frequency of teeth on a saw blade is teeth per inch. Usually abbreviated TPI, as in, "a blade consisting of 18TPI." (cf. points per inch.)

Set

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Set is the degree to which the teeth are bent out sideways away from the blade, usually in both directions. In most modern serrated saws, the teeth are set, so that the kerf (the width of the cut) will be wider than the blade itself. This allows the blade to move through the cut easily without binding (getting stuck). The set may be different depending on the kind of cut the saw is intended to make. For example, a ripsaw has a tooth set that is similar to the angle used on a chisel, so that it rips or tears the material apart. A "flush-cutting saw" has no set on one side, so that the saw can be laid flat on a surface and cut along that surface without scratching it. The set of the blade's teeth can be adjusted with a tool called a saw set.

Other toothed saw terms

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  • Back: The edge opposite the toothed edge.
  • Fleam: The angle of the faces of the teeth relative to a line perpendicular to the face of the saw.
  • Gullet: The valley between the points of the teeth.
  • Heel: The end closest to the handle.
  • Rake: The angle of the front face of the tooth relative to a line perpendicular to the length of the saw. Teeth designed to cut with the grain (ripping) are generally steeper than teeth designed to cut across the grain (crosscutting)
  • Teeth: Sharp protrusions along the cutting side of the saw.
  • Toe: The end farthest from the handle.
  • Toothed edge: the edge with the teeth (on some saws both edges are toothed).
  • Web: a narrow saw blade held in a frame, worked either by hand or in a machine, sometimes with teeth on both edges

Abrasive saws

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An abrasive saw has a powered circular blade designed to cut through metal or ceramic.

History

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Roman sawblades from Vindonissa approx. 3rd to 5th century AD

Saws were at first serrated materials such as flint, obsidian, sea shells and shark teeth.[2]

Serrated tools with indications that they were used to cut wood were found at Pech-de-l'Azé cave IV in France. These tools date to 90,000-30,000 years BCE.[3]

In ancient Egypt, open (unframed) pull saws made of copper are documented as early as the Early Dynastic Period, c. 3,100–2,686 BC.[4] Many copper saws were found in tomb No. 3471 dating to the reign of Djer in the 31st century BC.[5] Saws were used for cutting a variety of materials, including humans (death by sawing), and models of saws were used in many contexts throughout Egyptian history. Particularly useful are tomb wall illustrations of carpenters at work that show the sizes and use of different types of saws. Egyptian saws were at first serrated, hardened copper which may have cut on both pull and push strokes. As the saw developed, teeth were raked to cut only on the pull stroke and set with the teeth projecting only on one side, rather than in the modern fashion with an alternating set. Saws were also made of bronze and later iron. In the Iron Age, frame saws were developed holding the thin blades in tension.[2] The earliest known sawmill is the Roman Hierapolis sawmill from the third century AD and was for sawing stone.

Bronze-age saw blade from Akrotiri, late Cycladic period c. 17th century BC

According to Chinese legend, the saw was invented by Lu Ban.[6] In Greek mythology, as recounted by Ovid,[7] Talos, the nephew of Daedalus, invented the saw. In archeological reality, saws date back to prehistory and most probably evolved from Neolithic stone or bone tools. "[T]he identities of the axe, adz, chisel, and saw were clearly established more than 4,000 years ago."[8]

Manufacture of saws by hand

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Once mankind had learned how to use iron, it became the preferred material for saw blades of all kinds; some cultures learned how to harden the surface ("case hardening" or "steeling"), prolonging the blade's life and sharpness.

Steel, made of iron with moderate carbon content and hardened by quenching hot steel in water, was used as early as 1200 BC.[9] By the end of the 17th century European manufacture centred on Germany, (the Bergisches Land) in London, and the Midlands of England. Most blades were made of steel (iron carbonised and re-forged by different methods).[10] In the mid 18th century a superior form of completely melted steel ("crucible cast") began to be made in Sheffield, England, and this rapidly became the preferred material, due to its hardness, ductility, springiness and ability to take a fine polish.[11] A small saw industry survived in London and Birmingham, but by the 1820s the industry was growing rapidly and increasingly concentrated in Sheffield, which remained the largest centre of production, with over 50% of the nation's saw makers.[12] The US industry began to overtake it in the last decades of the century, due to superior mechanisation, better marketing, a large domestic market, and the imposition of high tariffs on imports.[13] Highly productive industries continued in Germany and France.

Saw grinding in Sheffield, 1860

Early European saws were made from a heated sheet of iron or steel, produced by flattening by several men simultaneously hammering on an anvil.[14] After cooling, the teeth were punched out one at a time with a die, the size varying with the size of the saw. The teeth were sharpened with a triangular file of appropriate size, and set with a hammer or a wrest.[10] By the mid 18th century rolling the metal was usual, the power for the rolls being supplied first by water, and increasingly by the early 19th century by steam engines. The industry gradually mechanized all the processes, including the important grinding the saw plate "thin to the back" by a fraction of an inch, which helped the saw to pass through the kerf without binding.[15] The use of steel added the need to harden and temper the saw plate, to grind it flat, to smith it by hand hammering and ensure the springiness and resistance to bending deformity, and finally to polish it.[16]

Most hand saws are today entirely made without human intervention, with the steel plate supplied ready rolled to thickness and tensioned before being cut to shape by laser. The teeth are shaped and sharpened by grinding and are flame hardened to obviate (and actually prevent) sharpening once they have become blunt. A large measure of hand finishing remains to this day for quality saws by the very few specialist makers reproducing the 19th century designs.

Pit saws

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A pit saw was a two-man ripsaw. In parts of early colonial North America, it was one of the principal tools used in shipyards and other industries where water-powered sawmills were not available. It was so-named because it was typically operated over a saw pit, either at ground level or on trestles across which logs that were to be cut into boards. The pit saw was "a strong steel cutting-plate, of great breadth, with large teeth, highly polished and thoroughly wrought, some eight or ten feet in length"[17] with either a handle on each end or a frame saw. A pit-saw was also sometimes known as a whipsaw.[18] It took 2-4 people to operate. A "pit-man" stood in the pit, a "top-man" stood outside the pit, and they worked together to make cuts, guide the saw, and raise it.[19] Pit-saw workers were among the most highly paid laborers in early colonial North America.

Types of saws

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Hand saws

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Rip sawing c. 1425 with a frame or sash saw on trestles rather than over a saw pit

Hand saws typically have a relatively thick blade to make them stiff enough to cut through material. (The pull stroke also reduces the amount of stiffness required.) Thin-bladed handsaws are made stiff enough either by holding them in tension in a frame, or by backing them with a folded strip of steel (formerly iron) or brass (on account of which the latter are called "back saws.") Some examples of hand saws are:

  • Artillery saw, Chain saw, Portable link saw: a flexible chain saw up to 122 cm (four feet) long, supplied to the military for clearing tree branches for gun sighting;
  • Butcher's saw: for cutting bone; many different designs were common, including a large one for two men, known in the US as a beef-splitter; most were frame saws, some backsaws;
  • Crosscut saw: for cutting wood perpendicular to the grain;
  • Docking saw: a large, heavy saw with an unbreakable metal handle of unique pattern, used for rough work
  • Farmer's/Miner's saw: a strong saw with coarse teeth;
  • Felloe saw;: the narrowest-bladed variety of pit saw, up to 213 cm (7 feet) long and able to work the sharp curves of cart wheel felloes; a slightly wider blade, equally long, was called a stave saw, for cutting the staves for wooden casks;
  • Floorboard/flooring saw: a small saw, rarely with a back, and usually with the teeth continued onto the back at the toe for a short distance; used by house carpenters for cutting across a floor board without damaging its neighbour;
  • Grafting/grafter/table saw; a hand saw with a tapering narrow blade from 15 to 76 cm (6 to 30 inches) long; the origins of the terms are obscure[20]
  • Ice saw: either of pit saw design without a bottom tiller, or a large handsaw, always with very coarse teeth, for harvesting ice to be used away from source, or stored for use in warmer weather;
  • Japanese saw or pull saw: a thin-bladed saw that cuts on the pull stroke, and with teeth of different design to European or American traditional forms;
  • Keyhole saw or compass saw: a narrow-bladed saw, sharply tapered thin to the back to cut round curves, with one end fixed in a handle;
  • Musical saw, a hand saw, possibly with the teeth filed off, used as a musical instrument.
  • Nest of saws: three or four interchangeable blades fitted to a handle with screws or quick-release nuts;
  • One-man cross cut saw: a coarse-toothed saw of 76 to 152 cm (30-60 inches) length for rough or green timber; a second, turned, handle could be added at the heel or the toe for a second operator;
  • Pad saw: a short narrow blade held in a wooden or metal handle (the pad);
  • Panel saw: a lighter variety of handsaw, usually less than 61 cm (24 inches) long and having finer teeth;
  • Plywood saw: a fine-toothed saw (to reduce tearing), for cutting plywood
  • Polesaw: a saw blade attached to a long handle
  • Pruning saw: the commonest variety has a 30-71 cm (12-28 inch) blade, toothed on both edges, one tooth pattern being considerably coarser than the other;
  • Ripsaw: for cutting wood along the grain;
  • Rule saw or combination saw: a handsaw with a measuring scale along the back and a handle making a 90° square with the scaled edge;
  • Salt saw: a short hand saw with a non-corroding zinc or copper blade, used for cutting a block of salt at a time when it was supplied to large kitchens in that form;
  • Turkish saw or monkey saw: a small saw with a parallel-sided blade, designed to cut on the pull stroke;
  • Two-man saw: a general term for a large crosscut saw or ripsaw for cutting large logs or trees;
  • Veneer saw: a two-edged saw with fine teeth for cutting veneer;
  • Wire saw: a toothed or coarse cable or wire wrapped around the material and pulled back and forth.

Back saws

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"Back saws" which have a thin blade backed with steel or brass to maintain rigidity, are a subset of hand saws. Back saws have different names depending on the length of the blade; "tenon saw" (from use in making mortise and tenon joints) is often used as a generic name for all the sizes of woodworking backsaw. Some examples are:

  • Bead saw/gent's saw/jeweller's saw: a small backsaw with a turned wooden handle;
  • Blitz saw: a small backsaw, for cutting wood or metal, with a hook at the toe for the thumb of the non-dominant hand;
  • Carcase saw: a term used until the 20th century for backsaws with 10–14 in (25–36 cm) long blades;
  • Dovetail saw: a backsaw with a blade of 6–10 in (15–25 cm) length, for cutting intricate joints in cabinet making work;
  • Electrician's saw: a very small backsaw used in the early 20th century on the wooden capping and casing in which electric wiring was run;
  • Flush-cutting saw/offset saw: a backsaw with a flat side and a handle offset toward the opposite side, usually reversible, for cutting flush to a surface such as a floor;
  • Mitre saw: a saw with a blade 18–34 in (46–86 cm) long, held in an adjustable frame (the mitre box) for making accurate crosscuts and mitres in a workplace;
  • Sash saw: a backsaw of blade length 14–16 in (36–41 cm).

Frame saws

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A bow saw being used to cut larch poles to length (c. 1943).

A class of saws for cutting all types of material; they may be small or large and the frame may be wood or metal.

  • Bow saw, turning saw, or buck saw: a saw with a narrow blade held in tension in a frame; the blade can usually be rotated and may be toothed on both edges; it may be a rip or a crosscut, and was the preferred form of hand saw for continental European woodworkers until superseded by machines;
  • Coping saw: a saw with a very narrow blade held in a metal frame in which it can usually be rotated, for cutting wood patterns;
  • Felloe saw; a pit saw with a narrow tapering blade for sawing out the felloes of wooden cart wheels
  • Fretsaw: a saw with a very narrow blade which can be rotated, held in a deep metal frame, for cutting intricate wood patterns such as jigsaw puzzles;
  • Girder saw: a large hack saw with a deep frame;
  • Hacksaw/bow saw for iron: a fine-toothed blade held in a frame, for cutting metal and other hard materials;
  • Pit saw/sash saw/whip saw: large wooden-framed saws for converting timber to lumber, with blades of various widths and lengths up to 305 cm (10 feet); the timber is supported over a pit or raised on trestles; other designs are open-bladed;
  • Stave saw: a narrow tapering-bladed pit saw for sawing out staves for wooden casks;
  • Surgeon's/surgical saw/Bone cutter: for cutting bone during surgical procedures; some designs are framed, others have an open blade with a characteristic shape of the toe.

Mechanically powered saws

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Circular-blade saws

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Circular wood-cutting saw at Maine State Museum in the capital city of Augusta, Maine
This particular circular saw, which cut wood into segments to fit a wood-burning kitchen stove, is displayed at the Cole Land Transportation Museum[21] in Bangor, Maine.
Reconstruction of the hydraulic saw by Leonardo da Vinci (Codice Atlantico foglio 1078) exposed at the Museo nazionale della scienza e della tecnologia Leonardo da Vinci, Milan.
  • Circular saw: a saw with a circular blade which spins. Circular saws can be large for use in a mill or hand held up to 24" blades and different designs cut almost any kind of material including wood, stone, brick, plastic, etc.
  • Table saw: a saw with a circular blade rising through a slot in a table. If it has a direct-drive blade small enough to set on a workbench, it is called a "workbench" or "jobsite" saw. If set on steel legs, it is called a "contractor's saw." A heavier, more precise and powerful version, driven by several belts, with an enclosed base stand, is called a "cabinet saw." A newer version, combining the lighter-weight mechanism of a contractor's saw with the enclosed base stand of a cabinet saw, is called a "hybrid saw."
  • Radial arm saw: a versatile machine, mainly for cross-cutting. The blade is pulled on a guide arm through a piece of wood that is held stationary on the saw's table.
  • Rotary saw or "spiral-cut saw" or "RotoZip": for making accurate cuts, without using a pilot hole, in wallboard, plywood, and other thin materials.
  • Electric miter saw or "chop saw," or "cut-off saw" or "power miter box": for making accurate cross cuts and miter cuts. The basic version has a circular blade fixed at a 90° angle to the vertical. A "compound miter saw" has a blade that can be adjusted to other angles. A "sliding compound miter saw" has a blade that can be pulled through the work, in an action similar to that of a radial-arm saw, which provides more capacity for cutting wider workpieces.
  • Concrete saw: (usually powered by an internal combustion engine and fitted with a Diamond Blade) for cutting concrete or asphalt pavement.
  • Pendulum saw or "swing saw": a saw hung on a swinging arm, for the rough cross cutting of wood in a sawmill and for cutting ice out of a frozen river.
  • Abrasive saw: a circular or reciprocating saw-like tool with an abrasive disc rather than a toothed blade, commonly used for cutting very hard materials. As it does not have regularly shaped edges the abrasive saw is not a saw in technical terms.
  • Hole saw: ring-shaped saw to attach to a power drill, used for cutting a circular hole in material.

Reciprocating blade saws

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  • Dragsaw: for bucking logs (used before the invention of the chainsaw).
  • Frame saw or sash saw: A thin bladed rip-saw held in tension by a frame used both manually and in sawmills. Some whipsaws are frame saws and some have a heavy blade which does not need a frame called a mulay or muley saw.
  • Ice saw: for ice cutting. Looks like a mulay saw but sharpened as a cross-cut saw.
  • Jigsaw or "saber saw" (US): narrow-bladed saw, for cutting irregular shapes. (Also an old term for what is now more commonly called a "scroll saw.")
  • Power hacksaw or electric hacksaw: a saw for cutting metal, with a frame like a normal hacksaw.
  • Reciprocating saw or "sabre saw" (UK and Australia): a saw with an "in-and-out" or "up-and-down" action similar to a jigsaw, but larger and more powerful, and using a longer stroke with the blade parallel to the barrel. Hand-held versions, sometimes powered by compressed air, are for demolition work or for cutting pipe.
  • Scroll saw: for making intricate curved cuts ("scrolls").
  • Sternal saw: for cutting through a patient's sternum during surgery.

Continuous band

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Chainsaws

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Types of blades and blade cuts

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Most blade teeth are made either of tool steel or carbide. Carbide is harder and holds a sharp edge much longer.

Band saw blade
A long band welded into a circle, with teeth on one side. Compared to a circular-saw blade, it produces less waste because it is thinner, dissipates heat better because it is longer (so there is more blade to do the cutting, and is usually run at a slower speed.
Crosscut
In woodworking, a cut made at (or close to) a right angle to the direction of the wood grain of the workpiece. A crosscut saw is used to make this type of cut.
Rip cut
In woodworking, a cut made parallel to the direction of the grain of the workpiece. A ripsaw is used to make this type of cut.
Plytooth blade
A circular saw blade with many small teeth, designed for cutting plywood with minimal splintering.
Dado blade
A special type of circular saw blade used for making wide-grooved cuts in wood so that the edge of another piece of wood will fit into the groove to make a joint. Some dado blades can be adjusted to make different-width grooves. A "stacked" dado blade, consisting of chipper blades between two dado blades, can make different-width grooves by adding or removing chipper blades. An "adjustable" dado blade has a movable locking cam mechanism to adjust the degree to which the blade wobbles sideways, allowing continuously variable groove widths from the lower to upper design limits of the dado.
Strobe saw blade
A circular saw blade with special rakers/cutters to easily saw through green or uncured wood that tends to jam other kinds of saw blades.

Materials used for saws

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There are several materials used in saws, with each of its own specifications.

Brass
Used only for the reinforcing folded strip along the back of backsaws, and to make the screws that in earlier times held the blade to the handle.
Iron
Used for blades and for the reinforcing strip on cheaper backsaws until superseded by steel.
Zinc
Used only for saws made to cut blocks of salt, as formerly used in kitchens
Copper
Used as an alternative to zinc for salt-cutting saws
Steel
Used in almost every existing kind of saw. Because steel is cheap, easy to shape, and very strong, it has the right properties for most kind of saws.
Diamond
Fixed onto the saw blade's base to form diamond saw blades. As diamond is a superhard material, diamond saw blades can be used to cut hard brittle or abrasive materials, for example, stone, concrete, asphalt, bricks, ceramics, glass, semiconductor and gem stone. There are many methods used to fix the diamonds onto the blades' base and there are various kinds of diamond saw blades for different purposes.
High-speed steel (HSS)
The whole saw blade is made of High-Speed Steel (HSS). HSS saw blades are mainly used to cut steel, copper, aluminum and other metal materials. If high-strength steels (e.g., stainless steel) are to be cut, the blades made of cobalt HSS (e.g. M35, M42) should be used.
Tungsten carbide
Normally, there are two ways to use tungsten carbide to make saw blades:
Carbide-tipped saw blades
The saw blade's teeth are tipped (via welding) with small pieces of sharp tungsten carbide block. This type of blade is also called TCT (Tungsten Carbide-Tipped) saw blade. Carbide-tipped saw blades are widely used to cut wood, plywood, laminated board, plastic, glass, aluminum and some other metals.
Solid-carbide saw blades
The whole saw blade is made of tungsten carbide. Comparing with HSS saw blades, solid-carbide saw blades have higher hardness under high temperatures, and are more durable, but they also have a lower toughness.

Uses

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A man recording the sound of a saw for sound effect purposes in the 1930s.
  • Saws are commonly used for cutting hard materials. They are used extensively in forestry, construction, demolition, medicine, and hunting.
  • Musical saws are used as instruments to make music.
  • Chainsaw carving is a flourishing modern art form. Special saws have been developed for the purpose.
  • The production of lumber, lengths of squared wood for use in construction, begins with the felling of trees and the transportation of the logs to a sawmill.
    • Plainsawing: Lumber that will be used in structures is typically plainsawn (also called flatsawn), a method of dividing the log that produces the maximum yield of useful pieces and therefore the greatest economy.
    • Quarter sawing: This sawing method produces edge-grain or vertical grain lumber, in which annual growth rings run more consistently perpendicular to the pieces' wider faces.

See also

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References

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Further reading

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[edit]
Revisions and contributorsEdit on WikipediaRead on Wikipedia
from Grokipedia
A saw is a tool consisting of a tough blade, wire, or chain with a hard toothed edge used to cut through material, such as wood, metal, stone, or plastic. Most saws take the form of a thin metal strip (band saw) or disk (circular saw) with teeth on one edge, powered manually or by electricity. Saws have been essential in woodworking, construction, and manufacturing since ancient times, evolving from simple hand tools to advanced power equipment.

Description

Physical Structure

The physical structure of a saw consists of several core components designed to facilitate efficient and controlled cutting. The serves as the primary carrier of , a flat or curved strip that holds the teeth or particles responsible for material removal. The teeth, or grit in saws, act as the direct cutting agents, engaging the workpiece to shear, chip, or grind away material during strokes. Supporting these is the back or frame, which provides rigidity and applies tension to the , ensuring stability and preventing unwanted flexing that could compromise cut accuracy. Handle designs vary to enhance and suit different cutting motions, promoting user comfort and precision over extended use. Pistol-grip handles, common on backsaws and hacksaws, feature a curved shape that aligns the hand naturally for push cuts, reducing wrist strain and improving control by distributing force evenly. Straight handles, found on panel or pull saws, allow for a neutral grip ideal for pulling motions, minimizing fatigue in repetitive tasks. Bow handles, integrated into frame saws like coping saws, enable two-handed operation with a U-shaped frame, providing leverage for intricate or angled cuts while maintaining alignment. These designs typically incorporate materials like wood or molded with non-slip surfaces to ensure a secure hold. In manual saws, these components integrate seamlessly for hand-powered operation, with the connecting directly to the blade's tang or the frame's end, allowing the user to guide the teeth along the workpiece in forward or backward strokes. The back or frame reinforces this assembly, linking the to the blade's opposite end for balanced . For powered variants, such as circular or reciprocating saws, the structure adapts by mounting the blade to a motor instead of a simple , while retaining tension elements for stability, though the core blade-teeth-frame principle remains consistent. Frame saws exemplify advanced integration through tensioning mechanisms, such as nuts, screws, or twisted cords, which clamp the blade ends and apply uniform —often 50-100 pounds—to keep the thin blade taut and prevent under lateral pressure during cuts.

Cutting Mechanisms

Saws employ two primary mechanisms for material removal: toothed cutting, which relies on mechanical shearing, and cutting, which involves grinding and fracturing. In toothed cutting, the teeth of the act as small wedges that penetrate the material and shear fibers apart during the cutting stroke. This wedging action lifts and separates chips or shavings, while the cutting edges tear through the material's structure, primarily along the in to minimize resistance. The efficiency of toothed cutting depends on the stroke direction, with push strokes common in Western-style saws applying downward to drive teeth into the material, and pull strokes in Japanese-style saws providing tension to keep the blade straight and reduce deflection. Pull strokes enable thinner blades and greater precision by aligning with the blade's natural tension, resulting in less binding and smoother progress through the cut. Abrasive cutting, used for harder materials like metal or stone, removes material through the action of embedded abrasive particles that grind against the workpiece. These particles, often diamond or silicon carbide, indent the surface, embed into it, and cause micro-fractures that propagate and dislodge small fragments. Unlike toothed cutting, this process erodes material progressively via repeated impacts and shearing at the particle-workpiece interface, generating a finer but slower cut. The physics of sawing involves applied to drive the through the material, countered by that generates at the cutting interface. In toothed sawing, tangential propels the teeth forward, while presses them into the material; between teeth and workpiece can exceed 0.3 in dry cutting, leading to temperatures up to 80°C. , such as on hand saws or mists on powered ones, reduces this by forming a low-shear layer, dissipating , and preventing binding, which can lower cutting forces by 20-30% in lubricated conditions. buildup risks tempering or charring if unmanaged. Material removal rates differ significantly between wood and metal due to their mechanical properties; wood, being softer and anisotropic, allows higher rates of 10-50 mm³ per stroke in hand sawing or up to 3000 surface feet per minute in powered cuts, as fibers shear more readily. Metals, with higher hardness and isotropy, demand slower rates—often 50-200 surface feet per minute—to avoid excessive heat and tool wear, resulting in removal rates 5-10 times lower than wood under comparable setups.

Terminology

Kerf and Cut Width

In woodworking and other material processing, the kerf refers to the width of the slot or groove produced in the workpiece by a single pass of the saw blade, representing the volume of material removed and converted into . This dimension is primarily determined by the thickness of the blade plate combined with the slight outward bend or set of the teeth, which ensures the blade does not bind during cutting. Several factors influence kerf size, balancing efficiency with operational reliability. Thinner blades produce narrower kerfs to minimize material waste, but they require greater rigidity to avoid flexing under load, particularly in high-tension applications like band sawing or dense hardwoods. Conversely, thicker blades create wider kerfs for enhanced stability on powerful machines, though this increases resistance and power consumption on underpowered tools. The kerf has significant practical implications for material utilization and accuracy in . A narrower kerf reduces overall loss, preserving more usable stock from limited resources like exotic hardwoods, while a wider kerf can lead to substantial waste in repetitive production cuts. In precision , such as dovetails or mortise-and-tenon assemblies, minimizing kerf width enables tighter fits and cleaner alignments, improving structural integrity without additional shimming. Standard kerf measurements vary by saw type and application, with full kerf blades typically measuring 1/8 inch (3.2 mm) for heavy-duty circular saws handling thick . Thin kerf options, often 3/32 inch (2.4 mm) or less, are common for table saws under 1.5 horsepower and portable circular saws, where reduced width supports finer control and battery life in cordless models. These dimensions adhere to industry norms set by blade manufacturers to optimize cut quality across common scenarios. In contrast, in metalworking applications such as cutting structural steel hollow structural section (HSS) square tube, kerf widths differ significantly depending on the saw type. Bandsaws using standard metal-cutting blades typically produce kerf widths ranging from 0.035–0.065 inches (0.9–1.65 mm), commonly around 0.050 inches (1.3 mm). Cold saws with carbide-tipped blades produce wider kerfs ranging from 0.100–0.200 inches (2.5–5 mm), commonly around 0.125–0.160 inches (3–4 mm). Bandsaws generally have narrower kerfs than cold saws, resulting in less material loss.

Tooth Geometry and Configuration

In toothed saw blades, tooth geometry is tailored to the cutting direction relative to the wood , with teeth designed for cuts parallel to the and crosscut teeth for perpendicular cuts. teeth typically feature a chisel-like with a flat-top grind (FTG), where the tooth face is perpendicular to the blade, enabling efficient shearing of fibers along the without lateral slicing. In contrast, crosscut teeth adopt a knife-like configuration, often using an alternating top (ATB) grind with beveled edges that slice across fibers to minimize tear-out, particularly in hardwoods. These s ensure that teeth prioritize speed and chip removal in straight-grained cuts, while crosscut teeth emphasize smoothness and precision. Tooth pitch, measured as teeth per inch (TPI), determines the spacing and influences cut quality and speed, with lower TPI for aggressive, rough cuts and higher TPI for finer finishes. Rip saws commonly use 4-7 TPI to allow larger gullets for evacuating long, stringy chips from along- cutting, as seen in 10-inch blades with around 24 teeth. Crosscut saws, however, employ 10-14 TPI or more (e.g., 60-80 teeth on a 10-inch ) for denser spacing that produces smoother surfaces across the grain. A general guideline is to maintain at least 5-6 teeth in contact with the material during the cut to avoid splintering, with progressive pitch variations on some blades increasing TPI toward the handle for versatile performance. Tooth set refers to the alternating lean of tips to one side or the other of the plane, creating a wider kerf that prevents binding by providing clearance for the body. This is achieved by bending every other , typically measuring 0.005 to 0.015 inches per side, depending on thickness and —coarser for wet or soft woods to handle expansion. The gullet, the curved space between teeth, facilitates chip ejection and is deeper in rip configurations to accommodate longer debris, sometimes featuring a sloped for increased and reduced . , the forward or backward lean of the face relative to a radial line from the center, optimizes cutting efficiency; rip teeth often have a higher rake of 15-20 degrees for aggressive forward bite, while crosscut teeth use 5-15 degrees to balance slicing and control. These elements collectively enhance durability and performance by directing force and managing heat buildup during operation.

Abrasive and Specialized Terms

In abrasive saws, grit size refers to the of the particles embedded in the blade, which directly influences cutting speed and . Coarse , typically ranging from 16 to 36, enable rapid material removal for aggressive cuts on hard substances like stone or metal, while fine exceeding 100 provide smoother edges by reducing . Bond types secure the grits to the substrate and determine and resistance. bonds, formed from organic materials like phenolic resins, offer flexibility and self-sharpening action for cooler, faster cuts but wear quicker under heavy loads. In contrast, metal bonds, such as those using or iron powders sintered at high temperatures, provide superior strength and longevity for prolonged use on dense materials, though they generate more and require robust equipment. Diamond segmentation involves embedding synthetic or natural into raised segments on the periphery, optimizing abrasion on ultra-hard materials like or . These segments expose fresh diamonds as the bond wears, maintaining cutting efficiency and allowing coolant flow to reduce . Wire saw abrasion employs a tensioned, abrasive-coated wire—often diamond-impregnated beads strung on a cable—to slice large volumes of brittle materials through continuous frictional contact, minimizing waste compared to rigid blades. Specialized terms in flush-cut abrasive saws describe blades designed for edge-trimming without marring adjacent surfaces, often featuring thin profiles and offset arbors to enable cuts flush to walls or floors in or applications. In general, kerfs in these contexts are thinner than typical toothed equivalents, aiding minimal material loss. Abrasive saws outperform toothed variants in efficiency on metals and stone, where the former's continuous grit contact avoids rapid dulling and achieves up to 20-30% faster penetration rates on non-ductile materials, though at the cost of higher dust generation and blade consumption.

History

Origins and Early Development

The earliest evidence of saw-like tools dates to the era, where serrated stone flakes and notched flints were employed by early humans to cut through bone and antler, facilitating the processing of animal remains for tools and sustenance. These rudimentary implements, often made from flint or , represented the initial adaptation of natural edges into cutting devices, predating by millennia. By the period around 5000 BCE, the advent of metallurgy in regions like and enabled the creation of early metal tools. The first saws appeared around 3000 BCE in , transitioning from brittle stone to more durable blades capable of repeated use. Archaeological finds, including artifacts from northern dated to approximately 8700 BCE, indicate early experimentation with the metal, though functional saws emerged later as part of broader toolsets for and basic . This material progression continued into the circa 3300 BCE, when alloying with tin produced stronger blades, allowing for finer and more efficient cuts in wood and soft stone across Near Eastern and Mediterranean cultures. Parallel developments occurred elsewhere; in ancient China, saws emerged during the (c. 1600–1046 BCE) for and ritual purposes, while pre-Columbian Americas relied on stone and serrated tools without metal equivalents until European contact. Cultural milestones highlight the saw's integration into ancient societies, with tomb depictions from around 2500 BCE illustrating carpenters using pull saws in workshops, as seen in reliefs and models. These scenes, found in sites like , depict the tools in action for crafting furniture and structural elements, underscoring their role in daily craftsmanship. The Romans further adapted saw designs by the 1st century BCE, incorporating iron blades with alternating tooth sets to reduce binding during cuts, enhancing for timber processing and stonework. Initial applications of these early saws centered on for , where cedar and timbers were shaped for seafaring vessels in , as evidenced by tool marks on preserved planks from Nile River contexts. In quarries, and saws facilitated stone cutting, with abrasive-assisted blades leaving characteristic marks on and blocks used in monumental , from Mesopotamian ziggurats to Egyptian obelisks.

Hand Manufacturing and Pit Saws

Hand-forged saw blades emerged as a key manual production method in during the medieval and early modern periods, building on earlier ironworking techniques that dated back to Roman times. The process began with heating or early blanks in a to make them malleable, followed by hammering on anvils to achieve the desired length, width, and thickness; teams of up to four smiths often collaborated for efficiency in larger operations. Once shaped, the blanks were cold-forged for smoothness, and teeth were either hot-punched using dies or cut and filed individually to create , with final hardening and tempering to enhance durability. This labor-intensive hand-forging, exemplified by 17th-century English and makers like the White family, produced blades that were case-hardened for resilience, though steel variants remained costly until the mid-18th century. The pit saw, a frame-free typically 1.8 to 2.0 meters long, represented a pivotal technique for breaking down logs into planks, relying on a two-person operation to maximize efficiency in pre-industrial . One operator, the top sawyer (often the more experienced), stood atop the log to guide the cut, apply downward pressure, and lift the saw on the return stroke, while the bottom sawyer (or pitman) worked from below in the pit, pulling downward to drive the teeth through the wood with gravity-assisted force. The 's teeth were set alternately to clear , and logs were secured with spiked dogs and rollers, aligned by lines for straight rips along the ; this rhythmic coordination allowed cuts of up to three or four feet deep, though it demanded precise synchronization to avoid binding. Pit sawing became widespread in by the 15th to 16th centuries, particularly in Britain for and rural timber processing, where it outpaced single-handed alternatives until in the late . Regional variations in saw design reflected adaptations to local traditions and material availability, with European whipsaws emphasizing push-stroke durability and Asian pull saws prioritizing thin, efficient blades. In , whipsaws—long, narrow blades without frames, often used in pits—evolved from Roman iron models in the mid-15th century, featuring thicker backs to withstand compressive push forces, as seen in Dutch and English developments by the . In contrast, Asian pull saws, rooted in ancient Egyptian influences and refined in from the medieval period, cut on the pull stroke with ultra-thin laminated blades (as little as 0.03 inches thick) tensioned by handles, reducing and while suiting low-ground, resource-scarce environments; types like the ryoba (double-edged) and kataba (single-edged, ) emerged for versatile rip and crosscuts. These differences stemmed from Europe's adoption of frame saws for bidirectional cutting and Asia's focus on pull mechanics, which persisted into the early without widespread frame adoption in . The economic role of saw production in 16th- to 18th-century Europe was structured around specialized guilds that regulated craftsmanship, quality, and trade in urban centers. Sawyers' guilds, such as those in Bruges (14th century, extending into later periods), Ghent, and Brussels (16th century), controlled apprenticeships, set standards for hand-forged blades, and limited competition to ensure steady supply for burgeoning construction and shipbuilding industries. These organizations, part of broader craft guilds flourishing across Europe until the 18th century, facilitated urbanization and colonial timber demands by standardizing production and enforcing monopolies on tools like whipsaws. In England, for instance, saw makers like those in Sheffield contributed to economic growth through exported handsaws, supporting architectural and trade expansions amid political shifts like the English Civil War.

Industrial Evolution

The Industrial Revolution marked a pivotal shift in saw production, transitioning from labor-intensive hand methods to mechanized systems that dramatically increased efficiency and output. Building on precursors like pit saws, inventors began integrating steam power to drive , enabling continuous operation independent of water or wind sources. In Britain during the 1820s, early circular sawmills emerged, such as the Gunton Sawmill, which incorporated innovative frame designs and circular blades to process timber more rapidly than manual techniques, significantly reducing the physical demands on workers. This steam integration, exemplified by early 19th-century steam-powered sawmill prototypes in Britain and the , laid the groundwork for large-scale production across and . A foundational invention accelerating this evolution was Samuel Miller's 1777 British patent for a machine, which featured a rotating toothed disk powered by a or similar mechanism, improving upon traditional frame saws by allowing faster, more uniform cuts in wood, stone, and . By the early , these concepts evolved into steam-driven circular sawmills that could process logs at rates far exceeding hand sawing, with one such mill in capable of producing sawn timber for estates like Gunton Hall at scales previously unattainable. Electrical advancements in the further revolutionized saw technology, particularly with the advent of portable in the . Canadian inventor James Shand patented the first practical portable chainsaw in 1918, followed by Andreas Stihl's electric and gasoline-powered models in the mid-1920s, which enabled loggers to fell and buck trees on-site without stationary mills, boosting productivity in remote forests. Post-World War II innovations included carbide-tipped blades, first commercially developed in the 1950s by companies like Western Saw, which enhanced durability and cutting speed for industrial applications, allowing blades to withstand higher temperatures and abrasive materials. Modern manufacturing of saw blades now relies on computer numerical control (CNC) systems, introduced in the late , for precision tooth geometry and profiling. CNC or waterjet cutters shape blades with micron-level accuracy, enabling of customized designs for diverse materials while minimizing waste and defects. These technological leaps had profound global impacts, accelerating as efficient saws facilitated rapid timber extraction; for instance, in the United States, mechanized contributed to the loss of approximately 460,000 square kilometers of by 1850, driven by demand for railroad ties and construction lumber. In response, 20th-century safety regulations emerged to mitigate hazards from powered saws, with U.S. states enacting early in the requiring guards on machinery, culminating in the federal Occupational Safety and Health Act of 1970 that mandated standards for saw operations to reduce injuries like amputations.

Types of Saws

Hand Saws

Hand saws are manually operated cutting tools that rely on a linear push or pull to drive the blade's teeth through the material, allowing users to exert controlled force for precise cuts. Western-style hand saws typically cut on the forward push , where the teeth engage the material, while the return pull clears ; this promotes stability and reduces user during extended use. The blades are generally lightweight and flexible to enable maneuverability and fine control, particularly in tasks where accuracy is paramount. Among the common subtypes, crosscut saws are designed for making perpendicular cuts across the of wood, featuring 8 to 15 teeth per inch to shear fibers cleanly without splintering. Rip saws, in contrast, are optimized for longitudinal cuts parallel to the , with fewer teeth—around 5 per inch—and chisel-like edges that act as small chisels to remove wood chips efficiently. saws employ a thin, tensioned within a U-shaped frame to navigate tight curves and intricate shapes, making them ideal for detailed trim work in . Tooth pitch, or the distance between teeth, varies across these subtypes to balance cutting speed and finish quality. Backsaws feature a narrow stiffened by a reinforced metal spine along the upper edge, which provides rigidity for straight, precise cuts in applications such as dovetails and miters, typically with 11 to 20 fine teeth per inch for smooth results. Framesaws utilize a tensioned wire or bow-shaped frame to support thin blades, preventing during use; this construction allows for efficient of larger pieces. Bow saws, a variant of framesaws, incorporate a deep bow frame with aggressive crosscut teeth, suited for branches and rough outdoor cuts where leverage is beneficial.

Power Saws

Power saws are mechanically powered cutting tools that utilize electric or gas engines to drive blades, offering greater speed and efficiency compared to manual hand saws, which rely on for similar basic cutting . These tools are categorized by their drive types, primarily electric models that operate via corded power for continuous runtime or battery systems for enhanced mobility, though gas-powered variants provide superior portability for demanding outdoor tasks. Electric corded saws deliver consistent power without battery limitations, making them suitable for environments, while options prioritize convenience on job sites. Gas-powered saws, often two-stroke engines, excel in remote locations due to their self-contained systems and higher output. Among the key subtypes, circular saws feature a rotating toothed disc blade driven by the motor, enabling straight plunge and rip cuts in materials like and metal with high precision and speed. Jigsaws employ a reciprocating vertical motion, ideal for intricate irregular shapes and curves in softer materials such as or thin metal sheets. Band saws use a continuous flexible looped around two wheels, facilitating smooth resawing and complex contours, particularly in for producing veneer or irregular forms. Reciprocating saws, also known as Sawzalls, utilize linear back-and-forth oscillation to perform aggressive tasks, such as cutting through nails, pipes, or framing in tear-downs. Chainsaws consist of a motorized of sharp teeth rotating around a guide bar, designed for heavy-duty timber , bucking logs, and large branches, with gas-powered models favored for their portability in applications. Power saws are further distinguished by their stationary or portable configurations, with table saws representing stationary designs that mount a circular beneath a flat surface for accurate, repeatable straight and angled cuts in workshops. Miter saws, also stationary, pivot on a vertical axis to execute precise crosscuts and bevels at various angles, commonly used for framing and trim work. In contrast, portable variants like circular and reciprocating saws allow for on-site versatility, balancing power with maneuverability.

Blade Types and Cuts

Toothed Blades

Toothed blades, the most common type in saw design, utilize sharpened to shear through materials like wood and metal by creating a kerf through alternating push and pull motions or rotational force. These blades differ fundamentally from variants by relying on edged rather than grinding particles for material removal. geometry basics, such as set (alternating teeth bent left and right to clear chips) and (the tilt of the tooth face relative to the blade direction), optimize cutting efficiency and reduce binding. Blade lengths and widths are tailored to specific tasks, balancing maneuverability, stability, and cutting capacity. Shorter blades, typically 6 to 12 inches in length for handsaws or narrow widths like 1/8 to 1/4 inch for bandsaw blades, excel in detail work such as intricate curves or scroll cutting, where precision and minimal material loss are essential. In contrast, longer blades—often 24 inches or more for handsaws or up to 156 inches looped for bandsaws—facilitate resawing, the process of cutting thick stock into thinner boards, providing the extended reach needed for deep, straight cuts. Wider blades, such as 1/2 to 3/4 inch for bandsaws, enhance rigidity during resawing to minimize blade wander and ensure straighter lines, though they demand higher machine tension to avoid breakage. Tooth patterns vary to suit the grain direction and material properties, with designs optimized for either crosscutting (perpendicular to the grain) or ripping (parallel to the grain). Alternate top bevel (ATB) teeth, where adjacent teeth are beveled in opposite directions creating a scalloped edge, are ideal for crosscuts in wood, as the angled tips slice fibers cleanly to produce smooth surfaces with reduced tear-out. Flat top (FT) or flat top grind (FTG) patterns, featuring straight-across tooth tips often paired with raker teeth for chip removal, are suited for ripping, where the robust, chisel-like edges efficiently shear long wood fibers and handle higher loads without clogging. Hybrid blades incorporate combination tooth patterns to handle mixed cuts, blending the versatility of ATB and FT designs for general-purpose use in . These often feature grouped sequences, such as four ATB teeth followed by one FT raker, allowing effective and on a single while maintaining reasonable speed and finish . Common in circular saws with 40 to 50 teeth on a 10-inch , hybrid configurations reduce the need for frequent blade changes in varied tasks like framing or . Durability in toothed blades is enhanced through material choices that balance hardness, flexibility, and wear resistance. High-carbon blades offer good flex resistance due to their spring-like body, making them suitable for manual or light-duty power saws where repeated bending occurs, though they are prone to faster dulling under heavy use. Bi-metal constructions, combining a flexible high-carbon backing with (HSS) or cobalt-alloy teeth welded to the edge, provide superior durability and flex resistance, enduring tougher materials like hardwoods or thin metals with up to 4-5 times the lifespan of plain while resisting fatigue and heat buildup.

Abrasive Blades

Abrasive blades utilize particles rather than teeth to remove material through grinding, making them ideal for cutting hard, brittle, or non-ductile substances that would damage conventional toothed blades. These blades typically feature synthetic diamonds or carbides, such as or aluminum oxide, embedded on a metal substrate like discs, belts, or wheels. The abrasives are distributed across the cutting edge to provide consistent material removal via and shearing of microscopic particles. The particles are secured to the substrate using specialized techniques that influence the blade's and longevity. Electroplated bonds involve depositing a thin layer of or similar metal to hold a single layer of abrasives, resulting in thinner kerfs and enhanced precision for delicate applications. In contrast, brazed bonds fuse the abrasives directly to the metal core at high temperatures, offering greater and resistance for demanding, heavy-duty tasks. These bond types ensure the abrasives remain effective under varying loads and speeds. In practice, blades excel in scenarios requiring clean, efficient cuts through challenging materials. wheels with embedded abrasives are commonly employed for sectioning metals, composites, and ceramics in industrial settings, where they produce straight, narrow cuts without burrs. saws featuring rims, typically coated with or grit, are used for boring precise holes in , stone, , and , minimizing chipping and extending tool life in such brittle media. Abrasive blades experience primarily through the gradual shedding of grit particles during operation, which paradoxically aids in self-sharpening by exposing fresh, sharp beneath. This process maintains cutting initially but leads to reduced as the bond erodes and fewer effective particles remain. To counteract , periodic re-sharpening via specialized grinding equipment is often required, though many blades are designed for single-use until fully expended. Factors like workpiece and cutting speed accelerate grit loss, necessitating selection of appropriate bond strength for prolonged service.

Cut Patterns and Applications

Rip cuts involve severing wood fibers parallel to the grain, typically using blades with hooked or chisel-like teeth spaced 3 to 6 per inch to efficiently separate and remove material in large chips without excessive resistance. These cuts are essential for dimensioning into boards or planks, where the blade's aggressive tooth geometry minimizes binding and heat buildup during prolonged strokes. Crosscuts proceed to , employing blades with finer —often 8 to 12 per inch—featuring alternating bevels to shear fibers cleanly and prevent tear-out or splintering on the exit side. This pattern is ideal for trimming stock to length or creating end joints, as the denser tooth arrangement ensures smoother edges and reduced fiber damage compared to rip configurations. Specialty cuts expand on these basics for and decorative work; dovetail cuts produce precise angled shoulders at 6 to 14 degrees for interlocking joints, requiring narrow blades with 15 to 20 fine teeth per inch to maintain accuracy in without wandering. Scroll cuts, conversely, enable intricate curved or internal shapes, using ultra-fine blades (20+ teeth per inch) that allow tight radii down to 1/8 inch for patterns like or inlays. Material-specific adaptations address unique challenges: in , techniques like scoring the line or applying prevent splintering by holding fibers in place during the final kerf exit, while metal cuts prioritize narrow kerf widths (0.02 to 0.04 inches) with progressive pitches to minimize burrs and without the fiber-tear risks of . Toothed blades are generally suited to these patterns based on count and hook angle for optimal performance across materials.

Materials and Construction

Blade Materials

Saw blade materials have evolved significantly from early , which offered basic cutting capability but limited , to advanced that enhance in demanding applications. By the 19th century, replaced iron, providing improved hardness and edge retention, while the 20th century introduced (HSS) and enhancements for superior heat resistance and longevity. Modern production techniques, such as , enable the creation of fine-grained tool steels with consistent , optimizing resistance and allowing for complex alloy compositions in saw blades. High-speed steel (HSS), a key material for saw blades, is prized for its exceptional heat resistance, maintaining hardness up to 600°C, which prevents softening during prolonged cutting operations. , often used in blade backs, provides flexibility and resilience to withstand bending stresses without permanent deformation, ensuring structural integrity. These steels influence tooth geometry by supporting sharper, more intricate designs that improve cutting efficiency. Alloy enhancements further elevate blade performance; tungsten carbide tipping, typically brazed onto edges, delivers extreme (up to 90 HRA) for extended longevity in materials. additions in HSS alloys, such as M42 grade, boost hot and resistance by stabilizing the microstructure at elevated temperatures, achieving Rockwell levels of 68-70 HRC. often incorporates as a binder, enhancing while maintaining cutting sharpness. Trade-offs in blade materials balance against edge retention and ; for instance, bi-metal blades combine a flexible core with hard HSS edges, offering better impact resistance than all-HSS blades at a lower , though they sacrifice some heat tolerance. blades remain economical for light-duty use but wear faster than bi-metal or carbide-tipped options, which provide superior edge life but at a higher upfront . HSS variants exemplify high-end choices, delivering optimal retention at premium prices due to refined grain structures.

Frame and Handle Materials

Traditional hand saws often feature frames and handles made from hardwoods such as , which provides excellent shock absorption due to its resilience and , allowing users to withstand the forces of cutting without fatigue. Other woods like and are also employed for their strength and durability in handle construction. For enhanced weather resistance, laminates are applied to wooden handles, protecting against moisture and while maintaining a comfortable grip. In power saws, metal frames predominate to ensure rigidity during high-speed operations; frames offer robust support for heavy-duty cutting, providing the necessary stability to prevent deflection. Aluminum alloys are favored in lighter power tools for their high strength-to-weight ratio, contributing to overall tool maneuverability without compromising structural integrity. For precision hand saws, backs are commonly used to stiffen the , adding weight for balanced cuts and reducing flex for accurate work. Modern saw handles increasingly incorporate ergonomic plastics produced via injection molding, which effectively dampens transmitted from the , reducing user strain during prolonged use. These plastics integrate seamlessly with materials to form cohesive tool assemblies that enhance control and . Sustainability trends in saw design emphasize recycled composites for frames and handles, such as bio-based mixtures of wood fibers and plastics, which minimize environmental impact while preserving performance characteristics. Aluminum components in some handles are fully recyclable, supporting practices in tool manufacturing.

Uses and Applications

Woodworking and Carpentry

In woodworking and carpentry, selecting the appropriate saw is essential for efficient material handling and precise . Panel saws are particularly valued for breaking down sheet goods such as or MDF, enabling a single operator to make accurate crosscuts and rip cuts on large panels up to 72 inches without requiring additional assistance, which reduces physical strain compared to maneuvering sheets on a . In contrast, tenon saws, a type of with a reinforced , are specialized for creating deep, straight cuts in furniture , such as forming the cheeks of tenons for mortise-and-tenon joints, where rigidity ensures controlled and accurate results without binding. Key techniques enhance cut quality and safety when working with wood's fibrous structure. Scoring the cut line with a along a , after applying to the surface, severs the top veneer fibers to prevent splintering or tear-out during subsequent sawing, particularly on or laminated materials; multiple firm passes ensure the score penetrates sufficiently before guiding the saw slightly to the waste side of the line. For achieving straight edges on rough or warped , especially with circular saws, attaching a straight guide board—often clamped parallel to the cut line—creates a consistent kerf path that aligns the blade for repeatable, precise rips or crosscuts, minimizing deviation and supporting edge-gluing preparations. Modern practices in these trades integrate technology for scalability while preserving traditional methods for detail-oriented work. In production, CNC-guided sawing systems, typically via routers with nesting software, automate precise panel sizing and routing from sheet goods, allowing for efficient batch fabrication of custom components with tolerances under 0.01 inches, which streamlines workflows in professional shops. Conversely, fine often relies on hand tools like backsaws and dovetail saws for intricate tasks, such as refining tenon shoulders or creating angled joints, where the craftsman's control yields superior surface quality and fit without power assistance. Safety fundamentals are non-negotiable, especially with powered saws common in these applications. On table saws, blade guards—clear plastic covers that shield the spinning blade—must remain in place for all standard operations to prevent accidental contact, and they should be inspected regularly for debris buildup that could impair visibility or function. For narrow rips under 6 inches, push sticks or blocks keep hands at a safe distance from the blade while maintaining downward pressure and forward feed, reducing kickback risk; these simple accessories, often included with saws or easily fabricated from scrap wood, are mandatory for compliant and injury-free operation. These wood-specific approaches, including reference to crosscut patterns for veneered surfaces, underscore the emphasis on fiber direction to achieve clean results.

Metalworking and Other Trades

In metalworking, power saws are essential for precision cutting of metals such as , aluminum, and , enabling efficient fabrication processes like preparing components for or assembly. Band saws, available in horizontal and vertical configurations, are widely used for straight cuts on bars, tubes, and structural shapes such as structural steel HSS square tube. Bandsaws generally produce a narrower kerf of 0.035–0.065 inches (0.9–1.65 mm), commonly around 0.050 inches (1.3 mm) for standard metal-cutting blades, resulting in less material loss compared to cold saws. They offer versatility for both heavy-duty production and intricate contouring due to their continuous blade loop and adjustable speeds. Horizontal band saws, in particular, support automated feeding for high-volume operations in fabrication shops, achieving tolerances as fine as ±0.015 inches on pipe and tube profiles. Cold saws, utilizing toothed blades made from or , excel in cutting by operating at low RPM to minimize heat and burrs, making them ideal for clean, accurate crosscuts in and aluminum extrusions. For cutting structural steel HSS square tube, cold saws produce a wider kerf of 0.100–0.200 inches (2.5–5 mm), commonly around 0.125–0.160 inches (3–4 mm) for carbide-tipped blades, resulting in greater material loss than bandsaws. These saws are common in industrial settings for applications requiring high precision, such as parts for machinery or components, with semi-automatic models enhancing productivity by reducing operator fatigue. saws, employing reinforced discs filled with abrasive grains, provide rapid rough cuts on and s, suited for quick sectioning of stock material in workshops where speed outweighs finish quality. Chop saws and miter saws, often with carbide-tipped blades, facilitate straight and angled cuts on smaller metal pieces, supporting tasks like framing in metal structures or trimming profiles in fabrication. Circular saws, both portable and stationary, are versatile for on-site metal cutting, using either toothed or abrasive blades to handle or pipes up to several inches in diameter. Beyond metalworking, power saws find applications in various trades. In plumbing, portable band saws and reciprocating saws cut metal pipes, conduits, and fittings efficiently during installations or repairs, allowing for adjustments in tight spaces without excessive material waste. Automotive technicians employ portable band saws for precision cuts on exhaust pipes, frames, and body panels, enabling custom modifications or repairs with minimal distortion to surrounding components. In HVAC and electrical trades, these saws trim ductwork, struts, and cable trays, supporting installations in commercial buildings where accuracy ensures proper fitment and compliance. Reciprocating saws, known for their demolition capabilities, are also used in general trades to cut through mixed materials like metal-reinforced walls or roofing.

References

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