RISAT-1
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Render of RISAT-1 satellite | |
| Names | Radar Imaging Satellite-1 |
|---|---|
| Mission type | Earth observation Radar imaging satellite |
| Operator | ISRO |
| COSPAR ID | 2012-017A |
| SATCAT no. | 38248 |
| Website | https://www.isro.gov.in/ |
| Mission duration | 5 years (planned) 4 years (achieved) |
| Spacecraft properties | |
| Bus | RISAT |
| Manufacturer | Indian Space Research Organisation |
| Launch mass | 1,858 kg (4,096 lb) [1] |
| Power | 2.2 kW |
| Start of mission | |
| Launch date | 26 April 2012, 00:17 UTC |
| Rocket | Polar Satellite Launch Vehicle-XL, PSLV-C19 |
| Launch site | Satish Dhawan Space Centre, First Launch Pad (FLP) |
| Contractor | Indian Space Research Organisation |
| Entered service | 19 October 2012 [2] |
| End of mission | |
| Deactivated | 31 March 2017 [3][4] |
| Last contact | 30 September 2016 [2] |
| Orbital parameters | |
| Reference system | Geocentric orbit |
| Regime | Sun-synchronous orbit |
| Perigee altitude | 539 km (335 mi) |
| Apogee altitude | 543 km (337 mi) |
| Inclination | 97.55° |
| Period | 95.49 minutes |
| Mean motion | 14 |
| Instruments | |
| Synthetic-aperture radar (C-band) (SAR-C) | |
Radar Imaging Satellite 1 or RISAT-1, was an Indian remote sensing satellite built and operated by the Indian Space Research Organisation (ISRO). The second RISAT satellite to be launched, it used a C-band 5.35 GHz synthetic-aperture radar (SAR) for Earth observation.[5]
The launch of RISAT-1 came several years after that of RISAT-2, which carried an Israeli-built X-band radar. The RISAT-2 mission was prioritised over RISAT-1 following the 2008 Mumbai attacks, resulting in RISAT-1 being delayed by several years.[6][7][8]
Satellite description
[edit]RISAT-1 had a mass at liftoff of 1,858 kg (4,096 lb), making it the heaviest Earth observation satellite to be launched by India, and the heaviest satellite to be launched using a Polar Satellite Launch Vehicle. It had the capability to take images of Earth during day and night, as well as in cloudy conditions.
The satellite is equipped with a 160 × 4 Mbit/s data handling system, 50 Newton-metre-second reaction wheels, and a phased array antenna with dual polarisation.[9]
The mission has an approximate cost of ₹4.90 billion (US$58 million);the spacecraft itself cost ₹3.79 billion (US$45 million) to develop, and a further ₹1.11 billion (US$13 million) to launch.[10] The satellite had a design life of five years.
The satellite was used for natural resources management, primarily agriculture planning and forestry surveys, as well as to predict and prevent flooding. It was used for monitoring paddy plantations and yields in the kharif season and to assist India's food security planning. Pictures from RISAT-1 was used to estimate the number of hectares being farmed in India, to assess crop health and predict total yield. It was also used to identify wreckage from aircraft that crashed in forested areas.[1] RISAT-1 was not designed as a surveillance satellite, given its reliance on the C-band.[10]
Instrument
[edit]Its synthetic-aperture radar (SAR-C) has a resolution of 3 m to 50 m. It also supports a spotlight mode for prolonged focus on a given geographical area at a resolution of 1 m.[5] Most of the design and the installation of basic instrument subsystems for the satellite was conducted in 2010.[11]
Mission history
[edit]Launch
[edit]RISAT-1 was launched at 00:17 UTC (05:47 IST) on 26 April 2012 by a Polar Satellite Launch Vehicle, flight number C19, flying in the XL configuration with extended length solid strap-on boosters. The launch, which was the third flight of the PSLV-XL configuration, took place from the First Launch Pad of the Satish Dhawan Space Centre in Sriharikota, Andhra Pradesh. The launch marked the twenty-first flight of the PSLV, and its nineteenth successful launch.[12]
After launch RISAT-1 was placed in 470 x 480 km orbit with near 97° inclination. In next two days, RISAT-1 raised its orbital altitude using on-board propulsion to place itself into its operational Sun-synchronous orbit of 536 km with 06:00 Local Time of Equator Crossing.[13][14] The satellite began its normal operations with a repetitive cycle of 25 days.
Incidents
[edit]On 30 September 2016, Joint Space Operations Center identified a debris generating event near RISAT-1.[15][16] The event created 16 pieces out of which 15 decayed and one was catalogued on 6 October 2016 under NORAD ID: 41797 and COSPAR ID: 2012-017C and decayed on 12 October 2016. Cause of this event was not officially declared but could be related to power system of satellite.[17] A month later on 3 November 2016, RISAT-1 data was declared unavailable on ESA's Copernicus Space Component Data Access portal due to satellite outage. Satellite was experiencing anomalies but ISRO denied they were related to fragmentation event.[3][18]
End of mission
[edit]On 26 July 2017, Department of Space released names of its operational satellites in a reply to a Parliamentary query and RISAT-1 was not included in the list.[4][19] Later in Annual Report 2017–18 of Department of Space, RISAT-1 was declared non-operational.[20]
References
[edit]- ^ a b "RISAT-1 satellite launch a "grand success"". The Hindu. 26 April 2012.
- ^ a b "RISAT-1 (Radar Imaging Satellite-1) - Status Mission". ESA Earth Observation Portal. 9 May 2021. Retrieved 10 May 2021.
- ^ a b "Risat-1 satellite is functioning normally, says ISRO".
- ^ a b MORESHWAR PATIL, KAPIL; PATIL DANVE, RAOSAHEB; Singh, Jitendra (26 July 2017). "Details of satellites being operated by the country at present". Retrieved 22 February 2018.
- ^ a b Raj, N. Gopal (25 April 2012). "RISAT-1's radar can see through clouds and work in darkness". The Hindu. Chennai, India.
- ^ Laxman, Srinivas (26 April 2012). "ISRO Launches India's First Radar Imaging Satellite, RISAT-1". Asian Scientist. Retrieved 26 April 2012.
- ^ "India to Launch RISAT-2". ASM. Archived from the original on 12 September 2010. Retrieved 25 March 2009.
- ^ "ISRO's New Satellite Could See Through Even Cloudy Sky". Indo Daily. 7 November 2008. Archived from the original on 20 May 2011. Retrieved 21 March 2009.
- ^ "The importance of RISAT-1". Press Information Bureau, Mumbai. 26 April 2012. Retrieved 26 February 2013.
- ^ a b "India successfully launches first microwave radar imaging satellite RISAT–1". The Times of India. 26 April 2012.
- ^ "Earth Observation System". ISRO. Archived from the original on 10 October 2008. Retrieved 21 March 2009.
- ^ Varma, M. Dinesh (26 April 2012). "PSLV-C19 puts RISAT-1 in orbit". The Hindu. Chennai, India.
- ^ "RISAT-1". isac.gov.in. Retrieved 22 February 2018.
- ^ "Radar Imaging Satellite (RISAT-1) successfully placed in its final orbit". isro.gov.in. ISRO. Archived from the original on 22 February 2018. Retrieved 22 February 2018.
- ^ "Debris-causing event ID'd near RISAT-1 (#38248) on 30 September 2016".
- ^ "NASA Orbital Debris Quarterly News, Volume 20, Issue 4, October 2016" (PDF).
This article incorporates text from this source, which is in the public domain.
- ^ Krishnan, Raghu (9 May 2018). "It will take 3 years for industry to absorb satellite tech: K Sivan, ISRO chairman". The Economic Times. ISSN 0013-0389. Retrieved 7 May 2023.
In GSAT-6A, there could be a power issue. A spark could have led to a short circuit. In the last three satellites — GSAT-6, RISAT and GSAT-6A — we have shifted to a higher-powered satellite bus. We saw there were similar problems in RISAT after it completed its life.
- ^ "RISAT-1 unavailability". ESA.
- ^ "Details of satellites being operated by the country" (PDF). 26 July 2017. Archived from the original (PDF) on 22 February 2018. Retrieved 22 February 2018.
- ^ "Annual Report Department of Space 2017-18" (PDF). isro.gov.in. Department of Space, Government of India. Archived from the original (PDF) on 13 February 2018. Retrieved 22 February 2018.
Anomalies have been observed towards the end of 5 years mission life and satellite is no more operational.
RISAT-1
View on GrokipediaDevelopment and Objectives
Project Background
The RISAT program was initiated by the Indian Space Research Organisation (ISRO) in the early 2000s to develop indigenous microwave remote sensing capabilities, addressing the limitations of optical satellites in providing reliable Earth observation data during India's frequent cloudy and monsoon conditions.[4] Building on the Microwave Remote Sensing Programme (MRSP) that began at ISRO's Space Applications Centre (SAC) in the 1970s, the RISAT concept for a spaceborne Synthetic Aperture Radar (SAR) was first proposed in the mid-1980s and formalized through a 1999 proposal by Dr. S.B. Sharma, with active design and development commencing in 2001 to enable all-weather, day-and-night imaging for applications like agriculture and disaster management.[4] Development of RISAT-1, India's first indigenous C-band SAR satellite, emphasized self-reliance amid international technology restrictions, involving extensive in-house innovation at SAC and the U.R. Rao Satellite Centre (URSC).[4] Key partnerships focused on domestic industries for technology transfer and fabrication, including ASTRA Microwave Products for transmit/receive components, Solectron Centum for power conditioning units, and GAETEC for hardware subsystems, supplemented by limited international collaborations such as early SAR feasibility studies with CNES (France) from 1974 and algorithm support from DLR (Germany).[4] While initial SAR concepts drew from global missions like Seasat and ERS-1, RISAT-1's development prioritized indigenous phased array antenna and signal processing technologies.[4] The project received formal approval in the early 2000s, with major milestones including the initiation of active phased array antenna design in 2002, integration of the first flight model antenna tile in January 2008, and phased payload assembly and testing from 2008 onward, culminating in full integration and checkout by 2011.[4] ISRO allocated approximately ₹378 crore for the satellite's development, with the total project cost, including the launch vehicle, reaching ₹498 crore, reflecting efficient resource utilization across ISRO centers and over 100 subsystems managed collaboratively.[5][4]Mission Goals
The primary objective of the RISAT-1 mission was to deliver high-resolution, all-weather, and day-and-night radar imaging capabilities to support critical applications in disaster management, agriculture, and national security across India.[2] This Synthetic Aperture Radar (SAR) satellite addressed the limitations of optical imaging systems by penetrating clouds and operating continuously, enabling reliable data collection during monsoons and at night, which are prevalent challenges in the Indian subcontinent.[4] Specific goals encompassed monitoring crop conditions for yield estimation and acreage assessment, forestry cover for resource management, soil moisture levels for agricultural planning, inland water resources for hydrological studies, coastal zones for erosion and process analysis, and geological features for terrain mapping.[2] Additionally, the mission aimed to bolster national security through surveillance capabilities, including border monitoring and object identification in obscured conditions.[6] These objectives were tailored to meet the diverse needs of Indian stakeholders, such as farmers, disaster response agencies, and defense entities, by providing timely and actionable Earth observation data.[4] To achieve these aims, RISAT-1 targeted spatial resolutions of 1-3 meters in key imaging modes, such as spotlight and stripmap, allowing for detailed feature discrimination over swaths suitable for regional coverage.[2] The satellite was placed in a sun-synchronous polar orbit at an altitude of 536 km, with an inclination of approximately 97.55 degrees, facilitating frequent revisits—every 25 days nominally—over the Indian subcontinent to ensure consistent data acquisition for dynamic monitoring tasks.[4]Spacecraft Design
Bus Configuration
The RISAT-1 satellite bus, developed by the Indian Space Research Organisation (ISRO), served as the structural and functional backbone for the mission, with a launch mass of 1858 kg and a planned operational life of five years in low Earth orbit. The structure featured a triangular prism configuration with a height of 3.88 m and overall dimensions of 1963 mm × 1757 mm × 3722 mm, constructed around a central load-bearing cylinder using aluminum honeycomb sandwich panels faced with carbon fiber reinforced polymer (CFRP) for lightweight strength. This design incorporated 18 equipment decks and modular substructures, including a cuboid section for subsystems and sensors, optimized to interface with the launch vehicle while ensuring structural integrity under launch loads.[4][2] The power subsystem generated approximately 2200 W of electrical power at the beginning of life through two deployable solar array wings equipped with high-efficiency multi-junction solar cells, operating on a single 70 V regulated bus. Two 70 Ah nickel-hydrogen batteries provided storage for eclipse periods and peak demands, with the system capable of handling up to 4.3 kW during operations, supported by battery discharge regulators and unregulated bus converters for distribution to subsystems.[1][4][2] Attitude and orbit control employed three-axis stabilization to achieve a pointing accuracy of ±0.05° (3σ) and a drift rate of 3 × 10^{-4} °/s, utilizing four reaction wheels (each with 0.3 Nm torque and 50 Nms momentum storage) for momentum management, along with two magnetic torquers (60 Am² each). Attitude determination relied on a dual-head star sensor, inertial reference unit, digital sun sensors, earth sensors, and a tri-axial magnetometer. Propulsion was handled by a monopropellant hydrazine system with nine 11 N thrusters (eight canted for attitude control and one central for orbit adjustments), enabling precise maneuvers in the sun-synchronous orbit.[4][2] The communication and data handling subsystem used an S-band transponder for telemetry, tracking, and command operations at 4 kbit/s, ensuring reliable housekeeping data exchange with ground stations. Payload data was transmitted via dual X-band antennas supporting up to 640 Mbps (using two 320 Mbps units with quadrature phase-shift keying modulation and right/left-hand circular polarization), buffered in a 300 Gbit solid-state recorder before downlink. The onboard computer, based on a MIL-STD-1553B bus, coordinated subsystem interfaces for autonomous operations.[4][2] Thermal management combined passive and active elements to maintain subsystem temperatures, including multi-layer insulation blankets, optical solar reflectors, thermal tapes, embedded heat pipes in CFRP structures, and electric heaters. This approach accommodated the thermal variations in the dawn-dusk low Earth orbit, with provisions for high heat dissipation during imaging passes, contributing to the bus's five-year design reliability.[4][2]Payload Details
The payload of RISAT-1 is a Synthetic Aperture Radar (SAR) system operating in the C-band at a center frequency of 5.35 GHz, enabling all-weather, day-and-night imaging capabilities.[1] The SAR employs a transmitter with a peak transmit power of 2880 W (from 288 T/R modules) for signal generation and features an active phased array antenna measuring 6 m by 2 m, structured with 3 panels comprising 12 tiles to facilitate electronic beam steering.[2][4] This configuration allows for flexible beam formation across a range of incidence angles from 12° to 55°.[4] The SAR supports multiple imaging modes optimized for different spatial resolutions and coverage areas, including high-resolution spotlight (HRS), fine resolution strip-map (FRS-1 and FRS-2), medium resolution scan (MRS), and coarse resolution scanSAR (CRS) configurations, with circular and hybrid polarization options available across modes for enhanced target discrimination. These modes enable resolutions from 1-2 m to 50 m, with swath widths varying accordingly. The following table summarizes the key imaging modes:| Mode | Resolution | Swath Width | Typical Polarization Options |
|---|---|---|---|
| High-Resolution Spotlight (HRS) | 1-2 m | 10 km × 10 km | Dual (e.g., HH + HV) |
| Fine Resolution Stripmap-1 (FRS-1) | 3 m | 25-30 km | Single/Dual |
| Fine Resolution Stripmap-2 (FRS-2) | 9-12 m | 25-30 km | Quad |
| Medium Resolution Scan (MRS) | 25 m | 115-120 km | Single/Dual |
| Coarse Resolution ScanSAR (CRS) | 50 m | 223-240 km | Single/Dual |
