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Small Stirling Technology Exploration Power for Future Space Science Missions

机译:未来空间科学任务的小斯特林技术探索权力

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High efficiency dynamic Radioisotope Power Systems (RPS) could be mission enabling for low power space applications such as small probes, landers rovers, and communication repeaters. These applications would contain science instruments and be distributed across planetary surfaces or near objects of interest where solar flux is insufficient for using solar cells. Small RPS could be used to provide power for sensing radiation, temperature, pressure, seismic activity, and other measurements of interest to planetary scientists. Small RPS would use fractional versions of the General Purpose Heat Source (GPHS) or Light Weight Radioisotope Heater Units (LWRHU), to heat power conversion technologies. Dynamic power systems are capable of three to four times higher conversion efficiency compared to static power conversion technologies, and would provide an equal amount of power using less fuel or more power using an equal amount of fuel. Providing spacecraft with more power could decrease duty cycling of basic functions and, therefore, increase the quality and abundance of science data. NASA Glenn Research Center (GRC) is developing a low power dynamic RPS that would convert heat from multiple LWRHU to one watt of usable direct current electric power for spacecraft instrumentation and communication. The power system could be used to charge batteries or capacitors for higher power burst usage. The initial design, called Small Stirling Technology Exploration Power (smallSTEP), is around 3 kg, 11 cm diameter X 32 cm long, and converts 8 watts of heat to one watt of electricity using a Stirling convertor. This low power conversion system represents a new class of RPS with power levels two orders of magnitude lower than prototypes currently being developed for space applications under NASA contracts. Development of the 1-watt RPS includes maturation of convertor and controller designs, performance evaluation of an evacuated metal foil insulation, and development of system interfaces. Initial demonstration of the subsystems has been completed in a laboratory environment and a higher fidelity system is being pursued for demonstration in relevant environments for use on small spacecraft needed to carry out future space science missions.
机译:高效率动态放射性电机电力系统(RPS)可能是使能低功耗空间应用(如小探头,载机罗波和通信中继器)的任务。这些应用程序将包含科学仪器,并分布在行星表面或近的兴趣对象上,太阳能通量不足以使用太阳能电池。小RP可用于为感测辐射,温度,压力,地震活动和行星科学家感兴趣的其他测量提供动力。小RP将使用通用热源(GPHS)或重量级放射性同位素加热器单元(LWRHU)的分数型材,以热电转换技术。与静电电源转换技术相比,动态电力系统能够比较较高的转换效率高出三倍,并且使用较少量的燃料,使用较少的燃料或更多功率提供等量的功率。提供更多电力的航天器可以减少基本功能的职责,因此,提高科学数据的质量和丰富。 NASA Glenn Research Center(GRC)正在开发低功率动态RPS,可以将来自多个LWRHU的热量转换为一个可用的直流电力的瓦特,用于航天器仪器和通信。电力系统可用于对电池或电容器充电以进行更高的功率突发使用。初始设计,称为小型斯特林技术勘探电源(小型),长约3千克,直径为x 32厘米,使用斯特林转换器将8瓦的热量转换为一瓦电力。该低功率转换系统代表了一类具有功率水平的新类RP,比目前正在为航空航天局合约下的空间应用开发的原型低。 1瓦RPS的开发包括转换器和控制器设计的成熟,疏散金属箔绝缘的性能评估,以及系统界面的开发。在实验室环境中已经完成了子系统的初步演示,并且正在追求更高的保真系统,以便在相关环境中用于执行未来空间科学任务所需的小型航天器。

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