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Understanding and Pathways to Avoid Major Fuel Failures and Radionuclide Releases in Fluoride Salt-Cooled High-Temperature Reactor Severe Accidents

机译:避免和解决避免氟盐冷却的高温反应堆严重事故中的重大燃料故障和放射性核素释放的方法

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Fluoride salt-cooled High-temperature Reactors (FHRs) are a new type of power reactor that delivers heat to the power cycle between 600℃ and 700℃. The FHR uses High-Temperature Gas-cooled Reactor (HTGR) graphite-matrix coated-particle fuel with failure temperatures of ~1650℃. The FHR coolants are clean fluoride salts that have melting points above 350℃ and boiling points above 1400℃. This combination may enable the design of a large FHR that will not have significant fuel failure and thus radionuclide releases to the environment even in a beyond-design-basis accident (BDBA) that includes failure of all cooling systems, the vessel, and containment systems. A first effort has been undertaken to understand FHR BDBAs and develop an FHR BDBA system to prevent major fuel failure if an accident occurs in a large FHR. Four design features limit BDBA fuel temperatures to lower than fuel failure temperatures. First, there is a large temperature drop to transfer decay heat from the fuel to the environment in a BDBA. Second, the large temperature difference between normal operating temperatures and fuel failure temperatures allows the use of increasing temperatures in an accident to degrade the insulation system and other barriers that prevent efficient transfer of decay heat from the reactor core to the environment in an accident. Third, the silo around the reactor vessel contains a BDBA salt that in an accident heats up, melts, and partly floods the silo to improve heat transfer from fuel to the environment. Fourth, the fuel and coolant retain fission products and actinides at high temperatures.
机译:氟化物盐冷高温反应堆(FHR)是一种新型的动力反应堆,可为600至700℃的动力循环提供热量。 FHR使用高温气冷堆(HTGR)石墨基涂层颗粒燃料,故障温度约为1650℃。 FHR冷却剂是清洁的氟化物盐,熔点高于350℃,沸点高于1400℃。这种结合可以使大型FHR的设计不会发生重大的燃料故障,因此即使在超设计基准事故(BDBA)(包括所有冷却系统,船舶和安全壳系统故障)的情况下,放射性核素也会释放到环境中。 。为了了解FHR BDBA,并已开发出FHR BDBA系统以防止大型FHR发生事故而导致重大燃油故障,已进行了第一项工作。四个设计特征将BDBA燃料温度限制为低于燃料故障温度。首先,在BDBA中存在很大的温度降,以将衰减热量从燃料传递到环境中。第二,正常工作温度和燃料故障温度之间的较大温差允许在事故中使用升高的温度来降低绝缘系统和其他屏障的性能,从而防止事故中腐烂热从反应堆堆芯向环境的有效传递。第三,反应堆容器周围的筒仓中含有BDBA盐,在意外情况下,该盐会加热,熔化并部分充满筒仓,以改善从燃料到环境的热传递。第四,燃料和冷却剂在高温下会保留裂变产物和act系元素。

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