Kakrapar Atomic Power Station with two IPHWR-700 units under construction in the Indian state of Gujarat

The IPHWR (Indian Pressurized Heavy Water Reactor) is a class of Indian pressurized heavy-water reactors designed by the Bhabha Atomic Research Centre. The baseline 220MWe design was developed from the CANDU based RAPS-1 and RAPS-2 reactors built at Rawatbhata, Rajasthan. Later the design was indigenised and scaled to 540MWe and 700MWe. Currently there are 19 units of various types operational at various locations in India (14 IPHWR-220, 2 IPHWR - 540 and 3 IPHWR-700) and 13 more IPHWR-700 reactors planned or under construction.

Design

Primary circuit diagram of Pressurized Heavy Water Reactor

The IPHWR reactor is a horizontal pressure tube type. It is derived from the CANDU reactor. These tubes are housed in a horizontal vessel called Calandria. It is filled with heavy water moderator. The each independent tubes are in tubes with circulating carbon dioxide gas. The tubes contain 12 fuel assemblies each and circulating pressurized heavy water coolant. This coolant collects heat from the fuel (natural uranium dioxide) and transfers it to the secondary coolant water to generate steam in the steam generators. This steam turns the turbine coupled to a AC synchronous generator producing 11kV or 20kV 50 Hz AC current. This steam is then condensed, reheated, deaerated and pumped back to the reactor. The moderator heavy water is kept circulating and is maintained at around 70 degrees Celsius. The fission chain reaction is controlled using control rods of cadmium or boron. There is a scram system to inject a poison called gadolinium nitrate in the moderator. The reactors can be refuelled while on full power giving additional advantages. The reactor has a efficiency of around 29 to 30% gross. These reactors are highly safe. They have many innovative safety systems. They form the first stage of India's three stage nuclear power program.[citation needed]

IPHWR-220

The first PHWR units built in India (RAPS-1 and RAPS-2) are of Canadian CANDU design similar to the first full-scale Canadian reactor built at Douglas point, Ontario. The reactors were set up in collaboration with Government of Canada. Starting in 1963, 100MWe RAPS-1 was mostly built with equipment and technology supplied by AECL, Canada. RAPS-1 was commissioned in 1973 but the cessation of Canadian cooperation in light of successful development of nuclear weapons by India as part of Operation Smiling Buddha the RAPS-2 commissioning could only be completed by 1981. Later on higher capacity derivatives were developed by Bhabha Atomic Research Centre in partnership with Indian manufacturers Larsen & Toubro and Bharat Heavy Electricals Limited. Successively, a totally Indian design of 220MWe power capacity was designed and two units were built at Kalpakkam in Tamil Nadu state christened MAPS-1 and MAPS-2. MAPS-1&2 design was evolved from RAPS-1&2, with modifications carried out to suit the coastal location and also introduction of suppression pool to limit containment peak pressure under loss of coolant accident (LOCA) in lieu of dousing tanks in RAPS-1&2. In addition, MAPS-1&2 have partial double containment. This design was further improved and all subsequent PHWR units in India have double containment.

With experience of design and operation of earlier units and indigenous R&D efforts, major modifications were introduced in NAPS-1&2. These units are the basis of standardized Indian PHWR units later designated as IPHWR-220.

The design of subsequent units i.e. KGS-1, KGS-2, RAPS-3, RAPS-4, RAPS-5, RAPS-6, KGS-3 and KGS-4 is of standard Indian PHWR design. The major improvements in these designs include valve-less primary heat transport system and a unitized control room concept. In addition, the design of these units included improvements in Control and Instrumentation system and incorporation of computer based systems to match with the advancement in technology.

IPHWR-540

Upon completion of the design of IPHWR-220, a larger 540MWe design was started c.1984 under the aegis of the Bhabha Atomic Research Centre (BARC) in partnership with the Nuclear Power Corporation of India Limited (NPCIL). Two reactors of this design were built in Tarapur, Maharashtra starting in the year 2000 and the first was commissioned on 12 September 2005. Only two such reactors i.e. Tarapur-3 & Tarapur-4 were built. The design was later upgraded to a 700MWe design.

IPHWR-700

The IPHWR-540 design was later upgraded to 700MWe with the main objective to improve fuel efficiency and develop a standardized design to be installed at many locations across India as a fleet-mode effort. The design was also upgraded to incorporate Generation III+ features.

The 700MWe PHWR design includes some features, which are introduced for the first time in Indian PHWRs which include partial boiling at the coolant channel outlet, interleaving of primary heat transport system feeders, passive decay heat removal system, regional over power protection, containment spray system, mobile fuel transfer machine, and a steel liner on the inner containment wall.

By 2031–2032, NPCIL plans to construct 18 more nuclear power reactors, which together have the potential to produce 13,800MWe of electricity. This will bring the total amount of atomic power in the energy mix to 22,480MWe.

Reactor fleet

IPHWR Reactors
LocationTypeOnlineStatusNet capacity (MWe)Gross capacity (MWe)Note
Narora-1IPHWR-2201991Operational202220
Narora-2IPHWR-2201992Operational202220
Kakrapar-1IPHWR-2201993Operational202220
Kakrapar-2IPHWR-2201995Operational202220
Kaiga-1IPHWR-2202000Operational202220
Kaiga-2IPHWR-2202000Operational202220
Kaiga-3IPHWR-2202007Operational202220
Kaiga-4IPHWR-2202011Operational202220
Madras-1IPHWR-2201984Operation suspended (under maintenance)202220
Madras-2IPHWR-2201986Operational202220
Rajastan-3IPHWR-2202000Operational202220
Rajastan-4IPHWR-2202000Operational202220
Rajastan-5IPHWR-2202010Operational202220
Rajastan-6IPHWR-2202010Operational202220
Tarapur-3IPHWR-5402006Operational490540
Tarapur-4IPHWR-5402005Operational490540
Kakrapar-3IPHWR-7002023Operational630700
Kakrapar-4IPHWR-7002024Operational630700
Kaiga-5IPHWR-700Under construction630700
Kaiga-6IPHWR-700Under construction630700
Gorakhpur-1IPHWR-700Under construction630700
Gorakhpur-2IPHWR-700Under construction630700
Gorakhpur-3IPHWR-700Planned630700
Gorakhpur-4IPHWR-700Planned630700
Rajastan-7IPHWR-7002025Operational630700
Rajastan-8IPHWR-700Under construction630700
Mahi Banswara-1IPHWR-700Planned630700
Mahi Banswara-2IPHWR-700Planned630700
Mahi Banswara-3IPHWR-700Planned630700
Mahi Banswara-4IPHWR-700Planned630700

Technical specifications

Technical specifications of IPHWR
ParametersIPHWR-220IPHWR-540IPHWR-700
Reference
Thermal output, MWth754.517302166/2177
Active power, MWe220540700
Efficiency, net%27.828.0829.08
Coolant temperature, °C:
core coolant inlet249266266
core coolant outlet293.4310310
Primary coolant materialHeavy Water
Secondary coolant materialLight Water
Moderator materialHeavy Water
Reactor operating pressure, kg/cm2 (g)87100100
Active core height, cm508.5594594
Equivalent core diameter, cm451-638.4
Average fuel power density9.24 KW/KgU-235 MW/m3
Average core power density, MW/m310.13-12.1
FuelSintered Natural UO2 pellets
Cladding tube materialZircaloy-2Zircaloy-4
Fuel assemblies367250964704 fuel bundles in 392 channels
Number of fuel rods in assembly19 elements in 3 rings3737 elements in 4 rings
Enrichment of reload fuel0.7% U-235
Fuel cycle length, Months241212
Average fuel burnup, MW · day / ton670075007050
Control rodsSS/CoCadmium/SS
Neutron absorberBoric AnhydrideBoron
Active residual heat removal systemShutdown cooling system
Passive residual heat removal systemNatural circulation through steam generators
-Passive Decay heat removal system
Safety injection systemEmergency core cooling system

Further development

NPCIL is developing the Bharat Small Modular Reactor (BSMR) and has asked for orders from private companies for construction of BSR at their manufacturing sites to which till now six companies have responded. It is a 220MWe compact PHWR Small modular reactor derived from the larger IPHWR-220.

See also