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Polar Satellite Launch Vehicle

The Polar Satellite Launch Vehicle (PSLV) is an expendable medium-lift launch vehicle designed and operated by the Indian Space Research Organisation (ISRO). It was developed to allow India to launch its Indian Remote Sensing (IRS) satellites into Sun-synchronous orbits, a service that was, until the advent of the PSLV in 1993, only commercially available from Russia. PSLV can also launch small size satellites into Geostationary Transfer Orbit (GTO).[11]

Polar Satellite Launch Vehicle
PSLV-C35 on the SDSC FLP
FunctionMedium-lift launch system
ManufacturerISRO
Country of originIndia
Cost per launch130 crore (equivalent to 153 crore or US$19 million in 2023)
-200 crore (equivalent to 235 crore or US$29 million in 2023)[1]
Size
Height44 m (144 ft)
Diameter2.8 m (9 ft 2 in)
MassPSLV-G: 295,000 kg (650,000 lb)
PSLV-CA: 230,000 kg (510,000 lb)
PSLV-XL: 320,000 kg (710,000 lb)[2]
Stages4
Capacity
Payload to LEO (200 km @ 30° inclination)
Mass
  • G: 3,200 kg (7,100 lb)
  • CA: 2,100 kg (4,600 lb)
  • XL: 3,800 kg (8,400 lb)
[3][4]
Payload to SSO (620 km circular)
Mass
  • G: 1,600 kg (3,500 lb)
  • CA: 1,100 kg (2,400 lb)
  • XL: 1,750 kg (3,860 lb)
[3][2][5]
Payload to Sub-GTO (284 × 20650 km)
Mass1,425 kg (3,142 lb)
(PSLV-XL)[2][5]
Payload to GTO
Mass
  • G: 1,150 kg (2,540 lb)
  • XL: 1,300 kg (2,900 lb)
[3][6]
Associated rockets
ComparableVega, Nuri
Launch history
StatusActive
Launch sitesSatish Dhawan Space Centre
Total launches60
Success(es)57
Failure(s)2
Partial failure(s)1
First flight
  • PSLV-G: 20 September 1993
  • PSLV-CA: 23 April 2007
  • PSLV-XL: 22 October 2008
  • PSLV-DL: 24 January 2019
  • PSLV-QL: 1 April 2019
Last flight
  • PSLV-G: 26 September 2016
  • PSLV-CA: 30 July 2023
  • PSLV-XL: 2 September 2023
  • PSLV-DL: 1 January 2024
  • PSLV-QL: 11 December 2019
Type of passengers/cargo
Boosters (PSLV-G) – S9
No. boosters6
Maximum thrust510 kN (110,000 lbf)
Specific impulse262 s (2.57 km/s)
Burn time44 s
PropellantHTPB
Boosters (PSLV-XL/QL/DL) – S12
No. boosters6 (XL)
4 (QL)
2 (DL)
Height12 m (39 ft)[7]
Diameter1 m (3 ft 3 in)
Propellant mass12,200 kg (26,900 lb) each
Powered byoff
Maximum thrust703.5 kN (158,200 lbf)[8]
Total thrust4,221 kN (949,000 lbf) (XL)
2,814 kN (633,000 lbf) (QL)
1,407 kN (316,000 lbf) (DL)
Specific impulse262 s (2.57 km/s)
Burn time70 s
PropellantHTPB
First stage
Height20 m (66 ft)[7]
Diameter2.8 m (9 ft 2 in)
Propellant mass138,200 kg (304,700 lb) each[7][2]
Powered byS139
Maximum thrust4,846.9 kN (1,089,600 lbf)[8]
Specific impulse237 s (2.32 km/s) (sea level)
269 s (2.64 km/s) (vacuum)
Burn time110 s
PropellantHTPB
Second stage
Height12.8 m (42 ft)[7]
Diameter2.8 m (9 ft 2 in)
Propellant mass42,000 kg (93,000 lb) each[7]
Powered by1 Vikas
Maximum thrust803.7 kN (180,700 lbf)[8]
Specific impulse293 s (2.87 km/s)
Burn time133 s
PropellantN2O4/UDMH
Third stage
Height3.6 m (12 ft)[7]
Diameter2 m (6 ft 7 in)
Propellant mass7,600 kg (16,800 lb) each[7]
Powered byS-7[9]
Maximum thrust250 kN (56,000 lbf)
Specific impulse295 s (2.89 km/s)
Burn time113.5 s[10]
PropellantHTPB
Fourth stage
Height3 m (9.8 ft)[7]
Diameter1.3 m (4 ft 3 in)
Propellant mass2,500 kg (5,500 lb) each[7]
Powered by2 x L-2-5[9]
Maximum thrust14.66 kN (3,300 lbf)[8]
Specific impulse308 s (3.02 km/s)
Burn time525 s
PropellantMMH/MON

Some notable payloads launched by PSLV include India's first lunar probe Chandrayaan-1, India's first interplanetary mission, Mars Orbiter Mission (Mangalyaan), India's first space observatory, Astrosat and India's first Solar mission, Aditya-L1.[2]

PSLV has gained credibility as a leading provider of rideshare services for small satellites, owing to its numerous multi-satellite deployment campaigns with auxiliary payloads, usually ride-sharing along with an Indian primary payload.[12] As of June 2022, PSLV has launched 345 foreign satellites from 36 countries.[13] Most notable among these was the launch of PSLV-C37 on 15 February 2017, successfully deploying 104 satellites in Sun-synchronous orbit, tripling the previous record held by Russia for the highest number of satellites sent to space on a single launch,[14][15] until 24 January 2021, when SpaceX launched the Transporter-1 mission on a Falcon 9 rocket carrying 143 satellites into orbit.[16]

Payloads can be integrated in tandem configuration employing a Dual Launch Adapter.[17][18] Smaller payloads are also placed on equipment deck and customized payload adapters.[19]

Development edit

 
PSLV-C11 strap-on

Studies by the PSLV Planning group under S Srinivasan to develop a vehicle capable of delivering a 600 kg payload to a 550 km sun-synchronous orbit from SHAR began in 1978.[20][21] Among 35 proposed configurations, four were picked; by November 1980, a vehicle configuration with two strap-ons on a core booster (S80) with 80 tonne solid propellant loading each, a liquid stage with 30 tonne propellant load (L30), and an upper stage called the Perigee-Apogee System (PAS) was being considered.[22][23][24][25]

By 1981, confidence grew in remote sensing spacecraft development with the launch of Bhaskara-1, and the PSLV project objectives were upgraded to have the vehicle deliver a 1000 kg payload into a 900 km SSO. As technology transfer of Viking rocket engine firmed up, a new lighter configuration with the inclusion of a liquid powered stage was selected.[26] Funding was approved in July 1982 for the finalized design, employing a single large S125 solid core as first stage with six 9 tonne strap-ons (S9) derived from the SLV-3 first stage, liquid fueled second stage (L33), and two solid upper stages (S7 and S2.) This configuration needed further improvement to meet the orbital injection accuracy requirements of IRS satellites, and hence, the solid terminal stage (S2) was replaced with a pressure fed liquid fueled stage (L1.8 or LUS) powered by twin engines derived from roll control engines of the first stage. Apart from increasing precision, liquid upper stage also absorbed any deviation in performance of solid third stage. The final configuration of PSLV-D1 to fly in 1993 was (6 × S9 + S125) + L37.5 + S7 + L2.[23][24]

The inertial navigation systems are developed by ISRO Inertial Systems Unit (IISU) at Thiruvananthapuram. The liquid propulsion for the second and fourth stages of the PSLV as well as the Reaction control systems (RCS) are developed by the Liquid Propulsion Systems Centre (LPSC) at Valiamala near Thiruvananthapuram, kerala. The solid propellant motors are processed at Satish Dhawan Space Centre (SHAR) at Sriharikota, Andhra Pradesh, which also carries out launch operations.

The PSLV was first launched on 20 September 1993.[27][28] The first and second stages performed as expected, but an attitude control problem led to the collision of the second and third stages at separation, and the payload failed to reach orbit.[29] After this initial setback, the PSLV successfully completed its second mission in 1994.[30] The fourth launch of PSLV suffered a partial failure in 1997, leaving its payload in a lower than planned orbit. In November 2014, the PSLV had launched 34 times with no further failures.[31] (Although launch 41: August 2017 PSLV-C39 was unsuccessful.[2])

PSLV continues to support Indian and foreign satellite launches especially for low Earth orbit (LEO) satellites. It has undergone several improvements with each subsequent version, especially those involving thrust, efficiency as well as weight. In November 2013, it was used to launch the Mars Orbiter Mission, India's first interplanetary probe.[32]

In June 2018, the Union Cabinet approved 6,131 crore (equivalent to 72 billion or US$900 million in 2023) for 30 operational flights of the PSLV scheduled to take place between 2019 and 2024.[33]

ISRO is working towards handing over the production and operation of PSLV to private industry through a joint venture.[34] On 16 August 2019, NewSpace India Limited issued an invitation to tender for manufacturing PSLV entirely by private industries.[35][36] On 5 September 2022, NewSpace India Limited signed a contract with Hindustan Aeronautics Limited and Larsen & Toubro led conglomerate for the production of five PSLV-XL launch vehicles after they won competitive bidding. Under this contract, they have to deliver their first PSLV-XL within 24 months and the remaining four vehicles every six months.[37][38][39]

Vehicle description edit

The PSLV has four stages, using solid and liquid propulsion systems alternately.

First stage (PS1) edit

 
PSLV-C44 first stage inside Mobile Service Tower.

The first stage, one of the largest solid rocket boosters in the world, carries 138 t (136 long tons; 152 short tons) of hydroxyl-terminated polybutadiene-bound (HTPB) propellant and develops a maximum thrust of about 4,800 kN (1,100,000 lbf). The 2.8 m (9 ft 2 in) diameter motor case is made of maraging steel and has an empty mass of 30,200 kg (66,600 lb).[9]

Pitch and yaw control during first stage flight is provided by the Secondary Injection Thrust Vector Control (SITVC) System, which injects an aqueous solution of strontium perchlorate into the S139 exhaust divergent from a ring of 24 injection ports to produce asymmetric thrust. The solution is stored in two cylindrical aluminium tanks strapped to the core solid rocket motor and pressurised with nitrogen. Underneath these two SITVC tanks, Roll Control Thruster (RCT) modules with small bi-propellant (MMH/MON) liquid engine are also attached.[28]

On the PSLV-G and PSLV-XL, first stage thrust is augmented by six strap-on solid boosters. Four boosters are ground-lit and the remaining two ignite 25 seconds after launch. The solid boosters carry 9 t (8.9 long tons; 9.9 short tons) or 12 t (12 long tons; 13 short tons) (for PSLV-XL configuration) propellant and produce 510 kN (110,000 lbf) and 719 kN (162,000 lbf) thrust respectively. Two strap-on boosters are equipped with SITVC for additional attitude control.[9] The PSLV-CA uses no strap-on boosters.

First stage separation is aided by four pairs of retro-rockets installed on inter-stage (1/2L). During staging, these eight rockets help push away the spent stage away from second stage.[40]

Second stage (PS2) edit

 
PSLV-C50 second stage with Vikas engine

The second stage is powered by a single Vikas engine and carries 41.5 t (40.8 long tons; 45.7 short tons) of Earth store-able liquid propellant – unsymmetrical dimethylhydrazine (UDMH) as fuel and nitrogen tetroxide (N2O4) as oxidiser in two tanks separated by a common bulkhead.[28] It generates a maximum thrust of 800 kN (180,000 lbf). The engine is gimbaled (±4°) in two planes to provide pitch and yaw control by two actuators, while roll control is provided by a Hot gas Reaction Control Motor (HRCM) that ejects hot gases diverted from gas generator of Vikas engine.[41]

On inter-stage (1/2U) of PS2 there are two pairs of ullage rockets to maintain positive acceleration during PS1/PS2 staging and also two pairs of retro-rockets to help push away spent stage during PS2/PS3 staging.[40]

Second stage also carries some quantity of water in a toroidal tank at its bottom.[42] Water spray is used to cool hot gases from Vikas' gas generator to about 600 °C before entering turbopump. Propellant and water tanks of second stage are pressurized by Helium.[43][44][45]

Third stage (PS3) edit

 
Third and fourth stages of PSLV-C45

The third stage uses 7.6 t (7.5 long tons; 8.4 short tons) of HTPB solid propellant and produces a maximum thrust of 250 kN (56,000 lbf). Its burn duration is 113.5 seconds. It has a Kevlar-polyamide fibre case and a submerged nozzle equipped with a flex-bearing-seal gimbaled nozzle with ±2° thrust vector for pitch and yaw control. Roll control is provided by the fourth stage reaction control system (RCS) during thrust phase as well as during combined-coasting phase under which burnt-out PS3 remains attached to PS4.[9][10]

Fourth stage (PS4) edit

The fourth stage is powered by regeneratively cooled twin engines,[46] burning monomethylhydrazine (MMH) and mixed oxides of nitrogen (MON). Each pressure fed engine generates 7.4 kN (1,700 lbf) thrust and is gimbaled (±3°) to provide pitch, yaw and roll control during powered flight. Coast phase attitude control is provided by six 50N RCS thrusters.[47] The stage is pressurized by Helium[48] and carries 1,600 kg (3,500 lb) to 2,500 kg (5,500 lb) of propellant depending on the mission requirements. PS4 has three variants L1.6, L2.0 and L2.5 based on propellant tank capacity.[49][50]

On PSLV-C29/TeLEOS-1 mission, the fourth stage demonstrated re-ignition capability for the first time which was used in many subsequent flights to deploy payloads in multiple orbits on a single campaign.[51]

As a space debris mitigation measure, PSLV fourth stage gets passivated by venting pressurant and propellant vapour after achieving main mission objectives. Such passivation prevents any unintentional fragmentation or explosion due to stored internal energy.[52][53][54]

PS4 stage as orbital platform edit

PS4 has carried hosted payloads like AAM on PSLV-C8,[42] Rubin 9.1/Rubin 9.2 on PSLV-C14[55] and mRESINS on PSLV-C21.[56] But now, PS4 is being augmented to serve as a long duration orbital platform after completion of primary mission. PS4 Orbital Platform (PS4-OP) will have its own power supply, telemetry package, data storage and attitude control for hosted payloads.[57][58][59]

On PSLV-C37 and PSLV-C38 campaigns,[60] as a demonstration PS4 was kept operational and monitored for over ten orbits after delivering spacecraft.[61][62][63]

PSLV-C44 was the first campaign where PS4 functioned as independent orbital platform for short duration as there was no on-board power generation capacity.[64] It carried KalamSAT-V2 as a fixed payload, a 1U cubesat by Space Kidz India based on Interorbital Systems kit.[65][66]

On PSLV-C45 campaign, the fourth stage had its own power generation capability as it was augmented with an array of fixed solar cells around PS4 propellant tank.[67] The three payloads hosted on PS4-OP were the Advanced Retarding Potential Analyzer for Ionospheric Studies (ARIS 101F) by IIST,[68] an experimental AIS payload by ISRO, and AISAT by Satellize.[69] To function as orbital platform, fourth stage was put in spin-stabilized mode using its RCS thrusters.[70]

On the PSLV-C53 campaign, the PS4-OP is referred to as the PSLV Orbital Experimental Module (POEM), and it hosted six payloads. POEM was the first PSLV fourth stage based orbital platform to be actively stabilised using Helium based cold gas thrusters after the primary mission and stage passivization.[71][72][73][74]

Payload fairing edit

 
PSLV heat shield at HAL Aerospace Museum, Bengaluru.

Payload fairing of PSLV, also referred as its "Heatshield" consists of a conical upper section with spherical nose-cap, a cylindrical middle section and a lower boat-tail section. Weighing 1,182 kilograms (2,606 lb), it has 3.2 meter diameter and 8.3 meter height.[75] It has Isogrid construction and is made out of 7075 aluminum alloy with a 3 mm thick steel nose-cap.[76][77] The two halves of fairing are separated using a pyrotechnic device based jettisoning system consisting horizontal and lateral separation mechanisms.[78] To protect spacecraft from damage due to excessive acoustic loads during launch, the heatshield interior is lined with acoustic blankets.[28]

Stage 1 Stage 2 Stage 3 Stage 4
Pitch SITVC Engine Gimbal Nozzle Flex Engine Gimbal
Yaw SITVC Engine Gimbal Nozzle Flex Engine Gimbal
Roll RCT and SITVC in 2 PSOMs HRCM Hot Gas Reaction Control Motor PS4 RCS PS4 RCS

Variants edit

ISRO has envisaged a number of variants of PSLV to cater to different mission requirements. There are currently two operational versions of the PSLV — the core-alone (PSLV-CA) without strap-on motors, and the (PSLV-XL) version, with six extended length (XL) strap-on motors carrying 12 tonnes of HTPB based propellant each.[79] These configurations provide wide variations in payload capabilities up to 3,800 kg (8,400 lb) in LEO and 1,800 kg (4,000 lb) in sun-synchronous orbit.

PSLV-G edit

The standard or "Generic" version of the PSLV, PSLV-G had four stages using solid and liquid propulsion systems alternately and six strap-on motors (PSOM or S9) with 9 tonne propellant loading. It had capability to launch 1,678 kg (3,699 lb) to 622 km (386 mi) into sun-synchronous orbit. PSLV-C35 was the last operational launch of PSLV-G before its discontinuation.[80][81][82]

PSLV-CA edit

The PSLV-CA, CA meaning "Core Alone", model premiered on 23 April 2007. The CA model does not include the six strap-on boosters used by the PSLV standard variant but two SITVC tanks with Roll Control Thruster modules are still attached to the side of the first stage with addition of two cylindrical aerodynamic stabilizers.[49][82] The fourth stage of the CA variant has 400 kg (880 lb) less propellant when compared to its standard version.[49] It currently has capability to launch 1,100 kg (2,400 lb) to 622 km (386 mi) Sun-synchronous orbit.[83]

PSLV-XL edit

PSLV-XL is the upgraded version of Polar Satellite Launch Vehicle in its standard configuration boosted by more powerful, stretched strap-on boosters with 12 tonne propellant load.[49] Weighing 320 t (310 long tons; 350 short tons) at lift-off, the vehicle uses larger strap-on motors (PSOM-XL or S12) to achieve higher payload capability.[84] On 29 December 2005, ISRO successfully tested the improved version of strap-on booster for the PSLV.[85] The first use of PSLV-XL was the launch of Chandrayaan-1 by PSLV-C11. The payload capability for this variant is 1,800 kg (4,000 lb) to Sun-synchronous orbit.[83]

PSLV-DL edit

PSLV-DL variant has only two strap-on boosters with 12 tonne propellant load on them. PSLV-C44 on 24 January 2019 was the first flight to use PSLV-DL variant of Polar Satellite Launch Vehicle.[86][87] It is capable of launching 1,257 kg (2,771 lb) to 600 km (370 mi) Sun-synchronous orbit.[5]

PSLV-QL edit

 
PSLV-C45 lift off

PSLV-QL variant has four ground-lit strap-on boosters, each with 12 tonnes of propellant. PSLV-C45 on 1 April 2019 was the first flight of PSLV-QL.[88] It has the capacity to launch 1,523 kg (3,358 lb) to 600 km (370 mi) Sun-synchronous orbit.[5]

PSLV-3S (concept) edit

PSLV-3S was conceived as a three-staged version of PSLV with its six strap-on boosters and second liquid stage removed. The total lift-off mass of PSLV-3S was expected to be 175 tonnes with capacity to place 500 kg in 550 km low Earth orbit.[83][89][90][91][92]

Launch profile edit

PSLV - XL:

  • The PS1 ignites at T+0 providing 4846  kN of thrust.
  • Within T+1, 4 out of the 6 boosters ignite on ground, each producing 703 kN of thrust. 7658 kN of total thrust is produced by the combined propulsion of the PSOMs and the PS1.
  • At around T+23/26, the remaining 2 unlit boosters are air-lit bringing the rocket at its maximum thrust capacity.
  • At T+1:10, the first 4 ground-lit PSOMs have depleted its propellant and now separates and falls down to the ocean. The remaining 2 PSOMs and the PS1 continue to burn.
  • At T+1:35, the remaining 2 PSOMs complete its 70 seconds burn and separate, leaving the rocket in a Core- Alone configuration.
  • At T+1:50, the PS1 has completed its 110-second burn and it separates and the Vikas Engine inside the PS2 ignites.
  • The second stage burns for around 130 seconds and around T+4 minutes, the second stages shuts off and separates.
  • The third stage, which is a solid rocket booster, and burns 80 seconds and then coasts for the remainder of time and around T+8/10 minutes, it separates and the 4th stage ignites to give the rocket a final push into the orbit.
  • This 4th stage burn is highly variable and depends on the mass and number of payloads and usually is around 500 seconds long. The 4th stage may shut off around T+16/18 minutes followed by the Payload Deployment.

[93][94][95]

Launch statistics edit

As of January 1, 2024 the PSLV has made 60 launches, with 57 successfully reaching their planned orbits, two outright failures and one partial failure, yielding a success rate of 95% (or 97% including the partial failure).[96] All launches have occurred from the Satish Dhawan Space Centre, known before 2002 as the Sriharikota Range (SHAR).

Launch system status
  Retired
Variant Launches Successes Failures Partial failures
PSLV-G (Standard) 12 10 1 1
PSLV-CA (Core Alone) 17 17 0 0
PSLV-XL (Extended)[2] 25 24 1 0
PSLV-DL[2] 4 4 0 0
PSLV-QL[2] 2 2 0 0
Total as of January 2024[97] 60 57 2 1
Decade-wise summary of PSLV launches
Decade Successful Partial success Failure Total
1990s 3 1 1 5
2000s 11 0 0 11
2010s 33 0 1 34
2020s 10 0 0 10
Total 57 1 2 60

See also edit

References edit

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External links edit

polar, satellite, launch, vehicle, pslv, expendable, medium, lift, launch, vehicle, designed, operated, indian, space, research, organisation, isro, developed, allow, india, launch, indian, remote, sensing, satellites, into, synchronous, orbits, service, that,. The Polar Satellite Launch Vehicle PSLV is an expendable medium lift launch vehicle designed and operated by the Indian Space Research Organisation ISRO It was developed to allow India to launch its Indian Remote Sensing IRS satellites into Sun synchronous orbits a service that was until the advent of the PSLV in 1993 only commercially available from Russia PSLV can also launch small size satellites into Geostationary Transfer Orbit GTO 11 Polar Satellite Launch VehiclePSLV C35 on the SDSC FLPFunctionMedium lift launch systemManufacturerISROCountry of originIndiaCost per launch 130 crore equivalent to 153 crore or US 19 million in 2023 200 crore equivalent to 235 crore or US 29 million in 2023 1 SizeHeight44 m 144 ft Diameter2 8 m 9 ft 2 in MassPSLV G 295 000 kg 650 000 lb PSLV CA 230 000 kg 510 000 lb PSLV XL 320 000 kg 710 000 lb 2 Stages4CapacityPayload to LEO 200 km 30 inclination MassG 3 200 kg 7 100 lb CA 2 100 kg 4 600 lb XL 3 800 kg 8 400 lb 3 4 Payload to SSO 620 km circular MassG 1 600 kg 3 500 lb CA 1 100 kg 2 400 lb XL 1 750 kg 3 860 lb 3 2 5 Payload to Sub GTO 284 20650 km Mass1 425 kg 3 142 lb PSLV XL 2 5 Payload to GTOMassG 1 150 kg 2 540 lb XL 1 300 kg 2 900 lb 3 6 Associated rocketsComparableVega NuriLaunch historyStatusActiveLaunch sitesSatish Dhawan Space CentreTotal launches60Success es 57Failure s 2Partial failure s 1First flightPSLV G 20 September 1993 PSLV CA 23 April 2007 PSLV XL 22 October 2008 PSLV DL 24 January 2019 PSLV QL 1 April 2019Last flightPSLV G 26 September 2016 PSLV CA 30 July 2023 PSLV XL 2 September 2023 PSLV DL 1 January 2024 PSLV QL 11 December 2019Type of passengers cargoChandrayaan 1Mars Orbiter MissionAstrosatSRE 1NAVICAditya L1Boosters PSLV G S9No boosters6Maximum thrust510 kN 110 000 lbf Specific impulse262 s 2 57 km s Burn time44 sPropellantHTPBBoosters PSLV XL QL DL S12No boosters6 XL 4 QL 2 DL Height12 m 39 ft 7 Diameter1 m 3 ft 3 in Propellant mass12 200 kg 26 900 lb eachPowered byoffMaximum thrust703 5 kN 158 200 lbf 8 Total thrust4 221 kN 949 000 lbf XL 2 814 kN 633 000 lbf QL 1 407 kN 316 000 lbf DL Specific impulse262 s 2 57 km s Burn time70 sPropellantHTPBFirst stageHeight20 m 66 ft 7 Diameter2 8 m 9 ft 2 in Propellant mass138 200 kg 304 700 lb each 7 2 Powered byS139Maximum thrust4 846 9 kN 1 089 600 lbf 8 Specific impulse237 s 2 32 km s sea level 269 s 2 64 km s vacuum Burn time110 sPropellantHTPBSecond stageHeight12 8 m 42 ft 7 Diameter2 8 m 9 ft 2 in Propellant mass42 000 kg 93 000 lb each 7 Powered by1 VikasMaximum thrust803 7 kN 180 700 lbf 8 Specific impulse293 s 2 87 km s Burn time133 sPropellantN2O4 UDMHThird stageHeight3 6 m 12 ft 7 Diameter2 m 6 ft 7 in Propellant mass7 600 kg 16 800 lb each 7 Powered byS 7 9 Maximum thrust250 kN 56 000 lbf Specific impulse295 s 2 89 km s Burn time113 5 s 10 PropellantHTPBFourth stageHeight3 m 9 8 ft 7 Diameter1 3 m 4 ft 3 in Propellant mass2 500 kg 5 500 lb each 7 Powered by2 x L 2 5 9 Maximum thrust14 66 kN 3 300 lbf 8 Specific impulse308 s 3 02 km s Burn time525 sPropellantMMH MON edit on Wikidata Some notable payloads launched by PSLV include India s first lunar probe Chandrayaan 1 India s first interplanetary mission Mars Orbiter Mission Mangalyaan India s first space observatory Astrosat and India s first Solar mission Aditya L1 2 PSLV has gained credibility as a leading provider of rideshare services for small satellites owing to its numerous multi satellite deployment campaigns with auxiliary payloads usually ride sharing along with an Indian primary payload 12 As of June 2022 PSLV has launched 345 foreign satellites from 36 countries 13 Most notable among these was the launch of PSLV C37 on 15 February 2017 successfully deploying 104 satellites in Sun synchronous orbit tripling the previous record held by Russia for the highest number of satellites sent to space on a single launch 14 15 until 24 January 2021 when SpaceX launched the Transporter 1 mission on a Falcon 9 rocket carrying 143 satellites into orbit 16 Payloads can be integrated in tandem configuration employing a Dual Launch Adapter 17 18 Smaller payloads are also placed on equipment deck and customized payload adapters 19 Contents 1 Development 2 Vehicle description 2 1 First stage PS1 2 2 Second stage PS2 2 3 Third stage PS3 2 4 Fourth stage PS4 2 4 1 PS4 stage as orbital platform 2 5 Payload fairing 3 Variants 3 1 PSLV G 3 2 PSLV CA 3 3 PSLV XL 3 4 PSLV DL 3 5 PSLV QL 3 6 PSLV 3S concept 4 Launch profile 5 Launch statistics 6 See also 7 References 8 External linksDevelopment edit nbsp PSLV C11 strap onStudies by the PSLV Planning group under S Srinivasan to develop a vehicle capable of delivering a 600 kg payload to a 550 km sun synchronous orbit from SHAR began in 1978 20 21 Among 35 proposed configurations four were picked by November 1980 a vehicle configuration with two strap ons on a core booster S80 with 80 tonne solid propellant loading each a liquid stage with 30 tonne propellant load L30 and an upper stage called the Perigee Apogee System PAS was being considered 22 23 24 25 By 1981 confidence grew in remote sensing spacecraft development with the launch of Bhaskara 1 and the PSLV project objectives were upgraded to have the vehicle deliver a 1000 kg payload into a 900 km SSO As technology transfer of Viking rocket engine firmed up a new lighter configuration with the inclusion of a liquid powered stage was selected 26 Funding was approved in July 1982 for the finalized design employing a single large S125 solid core as first stage with six 9 tonne strap ons S9 derived from the SLV 3 first stage liquid fueled second stage L33 and two solid upper stages S7 and S2 This configuration needed further improvement to meet the orbital injection accuracy requirements of IRS satellites and hence the solid terminal stage S2 was replaced with a pressure fed liquid fueled stage L1 8 or LUS powered by twin engines derived from roll control engines of the first stage Apart from increasing precision liquid upper stage also absorbed any deviation in performance of solid third stage The final configuration of PSLV D1 to fly in 1993 was 6 S9 S125 L37 5 S7 L2 23 24 The inertial navigation systems are developed by ISRO Inertial Systems Unit IISU at Thiruvananthapuram The liquid propulsion for the second and fourth stages of the PSLV as well as the Reaction control systems RCS are developed by the Liquid Propulsion Systems Centre LPSC at Valiamala near Thiruvananthapuram kerala The solid propellant motors are processed at Satish Dhawan Space Centre SHAR at Sriharikota Andhra Pradesh which also carries out launch operations The PSLV was first launched on 20 September 1993 27 28 The first and second stages performed as expected but an attitude control problem led to the collision of the second and third stages at separation and the payload failed to reach orbit 29 After this initial setback the PSLV successfully completed its second mission in 1994 30 The fourth launch of PSLV suffered a partial failure in 1997 leaving its payload in a lower than planned orbit In November 2014 the PSLV had launched 34 times with no further failures 31 Although launch 41 August 2017 PSLV C39 was unsuccessful 2 PSLV continues to support Indian and foreign satellite launches especially for low Earth orbit LEO satellites It has undergone several improvements with each subsequent version especially those involving thrust efficiency as well as weight In November 2013 it was used to launch the Mars Orbiter Mission India s first interplanetary probe 32 In June 2018 the Union Cabinet approved 6 131 crore equivalent to 72 billion or US 900 million in 2023 for 30 operational flights of the PSLV scheduled to take place between 2019 and 2024 33 ISRO is working towards handing over the production and operation of PSLV to private industry through a joint venture 34 On 16 August 2019 NewSpace India Limited issued an invitation to tender for manufacturing PSLV entirely by private industries 35 36 On 5 September 2022 NewSpace India Limited signed a contract with Hindustan Aeronautics Limited and Larsen amp Toubro led conglomerate for the production of five PSLV XL launch vehicles after they won competitive bidding Under this contract they have to deliver their first PSLV XL within 24 months and the remaining four vehicles every six months 37 38 39 Vehicle description editThe PSLV has four stages using solid and liquid propulsion systems alternately First stage PS1 edit nbsp PSLV C44 first stage inside Mobile Service Tower The first stage one of the largest solid rocket boosters in the world carries 138 t 136 long tons 152 short tons of hydroxyl terminated polybutadiene bound HTPB propellant and develops a maximum thrust of about 4 800 kN 1 100 000 lbf The 2 8 m 9 ft 2 in diameter motor case is made of maraging steel and has an empty mass of 30 200 kg 66 600 lb 9 Pitch and yaw control during first stage flight is provided by the Secondary Injection Thrust Vector Control SITVC System which injects an aqueous solution of strontium perchlorate into the S139 exhaust divergent from a ring of 24 injection ports to produce asymmetric thrust The solution is stored in two cylindrical aluminium tanks strapped to the core solid rocket motor and pressurised with nitrogen Underneath these two SITVC tanks Roll Control Thruster RCT modules with small bi propellant MMH MON liquid engine are also attached 28 On the PSLV G and PSLV XL first stage thrust is augmented by six strap on solid boosters Four boosters are ground lit and the remaining two ignite 25 seconds after launch The solid boosters carry 9 t 8 9 long tons 9 9 short tons or 12 t 12 long tons 13 short tons for PSLV XL configuration propellant and produce 510 kN 110 000 lbf and 719 kN 162 000 lbf thrust respectively Two strap on boosters are equipped with SITVC for additional attitude control 9 The PSLV CA uses no strap on boosters First stage separation is aided by four pairs of retro rockets installed on inter stage 1 2L During staging these eight rockets help push away the spent stage away from second stage 40 Second stage PS2 edit nbsp PSLV C50 second stage with Vikas engineThe second stage is powered by a single Vikas engine and carries 41 5 t 40 8 long tons 45 7 short tons of Earth store able liquid propellant unsymmetrical dimethylhydrazine UDMH as fuel and nitrogen tetroxide N2O4 as oxidiser in two tanks separated by a common bulkhead 28 It generates a maximum thrust of 800 kN 180 000 lbf The engine is gimbaled 4 in two planes to provide pitch and yaw control by two actuators while roll control is provided by a Hot gas Reaction Control Motor HRCM that ejects hot gases diverted from gas generator of Vikas engine 41 On inter stage 1 2U of PS2 there are two pairs of ullage rockets to maintain positive acceleration during PS1 PS2 staging and also two pairs of retro rockets to help push away spent stage during PS2 PS3 staging 40 Second stage also carries some quantity of water in a toroidal tank at its bottom 42 Water spray is used to cool hot gases from Vikas gas generator to about 600 C before entering turbopump Propellant and water tanks of second stage are pressurized by Helium 43 44 45 Third stage PS3 edit nbsp Third and fourth stages of PSLV C45The third stage uses 7 6 t 7 5 long tons 8 4 short tons of HTPB solid propellant and produces a maximum thrust of 250 kN 56 000 lbf Its burn duration is 113 5 seconds It has a Kevlar polyamide fibre case and a submerged nozzle equipped with a flex bearing seal gimbaled nozzle with 2 thrust vector for pitch and yaw control Roll control is provided by the fourth stage reaction control system RCS during thrust phase as well as during combined coasting phase under which burnt out PS3 remains attached to PS4 9 10 Fourth stage PS4 edit The fourth stage is powered by regeneratively cooled twin engines 46 burning monomethylhydrazine MMH and mixed oxides of nitrogen MON Each pressure fed engine generates 7 4 kN 1 700 lbf thrust and is gimbaled 3 to provide pitch yaw and roll control during powered flight Coast phase attitude control is provided by six 50N RCS thrusters 47 The stage is pressurized by Helium 48 and carries 1 600 kg 3 500 lb to 2 500 kg 5 500 lb of propellant depending on the mission requirements PS4 has three variants L1 6 L2 0 and L2 5 based on propellant tank capacity 49 50 On PSLV C29 TeLEOS 1 mission the fourth stage demonstrated re ignition capability for the first time which was used in many subsequent flights to deploy payloads in multiple orbits on a single campaign 51 As a space debris mitigation measure PSLV fourth stage gets passivated by venting pressurant and propellant vapour after achieving main mission objectives Such passivation prevents any unintentional fragmentation or explosion due to stored internal energy 52 53 54 PS4 stage as orbital platform edit Main article PSLV Orbital Experiment Module PS4 has carried hosted payloads like AAM on PSLV C8 42 Rubin 9 1 Rubin 9 2 on PSLV C14 55 and mRESINS on PSLV C21 56 But now PS4 is being augmented to serve as a long duration orbital platform after completion of primary mission PS4 Orbital Platform PS4 OP will have its own power supply telemetry package data storage and attitude control for hosted payloads 57 58 59 On PSLV C37 and PSLV C38 campaigns 60 as a demonstration PS4 was kept operational and monitored for over ten orbits after delivering spacecraft 61 62 63 PSLV C44 was the first campaign where PS4 functioned as independent orbital platform for short duration as there was no on board power generation capacity 64 It carried KalamSAT V2 as a fixed payload a 1U cubesat by Space Kidz India based on Interorbital Systems kit 65 66 On PSLV C45 campaign the fourth stage had its own power generation capability as it was augmented with an array of fixed solar cells around PS4 propellant tank 67 The three payloads hosted on PS4 OP were the Advanced Retarding Potential Analyzer for Ionospheric Studies ARIS 101F by IIST 68 an experimental AIS payload by ISRO and AISAT by Satellize 69 To function as orbital platform fourth stage was put in spin stabilized mode using its RCS thrusters 70 On the PSLV C53 campaign the PS4 OP is referred to as the PSLV Orbital Experimental Module POEM and it hosted six payloads POEM was the first PSLV fourth stage based orbital platform to be actively stabilised using Helium based cold gas thrusters after the primary mission and stage passivization 71 72 73 74 Payload fairing edit nbsp PSLV heat shield at HAL Aerospace Museum Bengaluru Payload fairing of PSLV also referred as its Heatshield consists of a conical upper section with spherical nose cap a cylindrical middle section and a lower boat tail section Weighing 1 182 kilograms 2 606 lb it has 3 2 meter diameter and 8 3 meter height 75 It has Isogrid construction and is made out of 7075 aluminum alloy with a 3 mm thick steel nose cap 76 77 The two halves of fairing are separated using a pyrotechnic device based jettisoning system consisting horizontal and lateral separation mechanisms 78 To protect spacecraft from damage due to excessive acoustic loads during launch the heatshield interior is lined with acoustic blankets 28 Stage 1 Stage 2 Stage 3 Stage 4Pitch SITVC Engine Gimbal Nozzle Flex Engine GimbalYaw SITVC Engine Gimbal Nozzle Flex Engine GimbalRoll RCT and SITVC in 2 PSOMs HRCM Hot Gas Reaction Control Motor PS4 RCS PS4 RCSVariants editISRO has envisaged a number of variants of PSLV to cater to different mission requirements There are currently two operational versions of the PSLV the core alone PSLV CA without strap on motors and the PSLV XL version with six extended length XL strap on motors carrying 12 tonnes of HTPB based propellant each 79 These configurations provide wide variations in payload capabilities up to 3 800 kg 8 400 lb in LEO and 1 800 kg 4 000 lb in sun synchronous orbit PSLV G edit The standard or Generic version of the PSLV PSLV G had four stages using solid and liquid propulsion systems alternately and six strap on motors PSOM or S9 with 9 tonne propellant loading It had capability to launch 1 678 kg 3 699 lb to 622 km 386 mi into sun synchronous orbit PSLV C35 was the last operational launch of PSLV G before its discontinuation 80 81 82 PSLV CA edit The PSLV CA CA meaning Core Alone model premiered on 23 April 2007 The CA model does not include the six strap on boosters used by the PSLV standard variant but two SITVC tanks with Roll Control Thruster modules are still attached to the side of the first stage with addition of two cylindrical aerodynamic stabilizers 49 82 The fourth stage of the CA variant has 400 kg 880 lb less propellant when compared to its standard version 49 It currently has capability to launch 1 100 kg 2 400 lb to 622 km 386 mi Sun synchronous orbit 83 PSLV XL edit PSLV XL is the upgraded version of Polar Satellite Launch Vehicle in its standard configuration boosted by more powerful stretched strap on boosters with 12 tonne propellant load 49 Weighing 320 t 310 long tons 350 short tons at lift off the vehicle uses larger strap on motors PSOM XL or S12 to achieve higher payload capability 84 On 29 December 2005 ISRO successfully tested the improved version of strap on booster for the PSLV 85 The first use of PSLV XL was the launch of Chandrayaan 1 by PSLV C11 The payload capability for this variant is 1 800 kg 4 000 lb to Sun synchronous orbit 83 PSLV DL edit PSLV DL variant has only two strap on boosters with 12 tonne propellant load on them PSLV C44 on 24 January 2019 was the first flight to use PSLV DL variant of Polar Satellite Launch Vehicle 86 87 It is capable of launching 1 257 kg 2 771 lb to 600 km 370 mi Sun synchronous orbit 5 PSLV QL edit nbsp PSLV C45 lift offPSLV QL variant has four ground lit strap on boosters each with 12 tonnes of propellant PSLV C45 on 1 April 2019 was the first flight of PSLV QL 88 It has the capacity to launch 1 523 kg 3 358 lb to 600 km 370 mi Sun synchronous orbit 5 PSLV 3S concept edit PSLV 3S was conceived as a three staged version of PSLV with its six strap on boosters and second liquid stage removed The total lift off mass of PSLV 3S was expected to be 175 tonnes with capacity to place 500 kg in 550 km low Earth orbit 83 89 90 91 92 Launch profile editPSLV XL The PS1 ignites at T 0 providing 4846 kN of thrust Within T 1 4 out of the 6 boosters ignite on ground each producing 703 kN of thrust 7658 kN of total thrust is produced by the combined propulsion of the PSOMs and the PS1 At around T 23 26 the remaining 2 unlit boosters are air lit bringing the rocket at its maximum thrust capacity At T 1 10 the first 4 ground lit PSOMs have depleted its propellant and now separates and falls down to the ocean The remaining 2 PSOMs and the PS1 continue to burn At T 1 35 the remaining 2 PSOMs complete its 70 seconds burn and separate leaving the rocket in a Core Alone configuration At T 1 50 the PS1 has completed its 110 second burn and it separates and the Vikas Engine inside the PS2 ignites The second stage burns for around 130 seconds and around T 4 minutes the second stages shuts off and separates The third stage which is a solid rocket booster and burns 80 seconds and then coasts for the remainder of time and around T 8 10 minutes it separates and the 4th stage ignites to give the rocket a final push into the orbit This 4th stage burn is highly variable and depends on the mass and number of payloads and usually is around 500 seconds long The 4th stage may shut off around T 16 18 minutes followed by the Payload Deployment 93 94 95 Launch statistics editMain article List of PSLV launches As of January 1 2024 update the PSLV has made 60 launches with 57 successfully reaching their planned orbits two outright failures and one partial failure yielding a success rate of 95 or 97 including the partial failure 96 All launches have occurred from the Satish Dhawan Space Centre known before 2002 as the Sriharikota Range SHAR Launch system status Retired Variant Launches Successes Failures Partial failuresPSLV G Standard 12 10 1 1PSLV CA Core Alone 17 17 0 0PSLV XL Extended 2 25 24 1 0PSLV DL 2 4 4 0 0PSLV QL 2 2 2 0 0Total as of January 2024 update 97 60 57 2 1Decade wise summary of PSLV launchesDecade Successful Partial success Failure Total1990s 3 1 1 52000s 11 0 0 112010s 33 0 1 342020s 10 0 0 10Total 57 1 2 60See also edit nbsp India portal nbsp Rocketry portal nbsp Spaceflight portalGeosynchronous Satellite Launch Vehicle LVM3 Next Generation Launch Vehicle Comparison of orbital launchers families Medium lift launch vehicle 2 000 to 20 000 kg to LEO Comparison of orbital rocket engines Comparison of orbital launch systemsReferences edit SURPLUS MISSILE MOTORS Sale Price Drives Potential Effects on DOD and Commercial Launch Providers gao gov U S Government Accountability Office 16 August 2017 Archived from the original on 13 April 2018 Retrieved 2 May 2018 nbsp This article incorporates text from this 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PSLV The Travel Beyond the Blue ISRO VikatanInfographic vikatan com in Tamil Retrieved 20 February 2017 Polar Satellite Launch Vehicle Archived from the original on 22 December 2016 Retrieved 29 November 2018 External links edit nbsp Wikimedia Commons has media related to Polar Satellite Launch Vehicle PSLV Official ISRO Page Archived 22 December 2016 at the Wayback Machine India in Space PSLV page Retrieved from https en wikipedia org w index php title Polar Satellite Launch Vehicle amp oldid 1209198054, wikipedia, wiki, book, books, library,

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