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Performance Of The Mechanically Pumped Fluid Loop Rover Heat Rejection System Used For Thermal Control Of The Mars Science Laboratory Curiosity Rover On The Surface Of Mars

机译:用于火星表面火星科学实验室好奇号流动站热控制的机械泵送流体回路流动站排热系统的性能

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The challenging range of landing sites for which the Mars Science Laboratory Rover was designed, required a rover thermal management system that is capable of keeping temperatures controlled across a wide variety of environmental conditions. On the Martian surface where temperatures can be as cold as -123°C and as warm as 38°C, the Rover relies upon a Mechanically Pumped Fluid Loop (MPFL) Rover Heat Rejection System (RHRS) and external radiators to maintain the temperature of sensitive electronics and science instruments within a -40°C to +50°C range. The RHRS harnesses some of the waste heat generated from the Rover power source, known as the Multi Mission Radioisotope Thermoelectric Generator (MMRTG), for use as survival heat for the rover during cold conditions. The MMRTG produces 110 Watts of electrical power while generating waste heat equivalent to approximately 2000 Watts. Heat exchanger plates (hot plates) positioned close to the MMRTG pick up this survival heat from it by radiative heat transfer and supply it to the rover. This design is the first instance of use of a RHRS for thermal control of a rover or lander on the surface of a planet. After an extremely successful landing on Mars (August 5), the rover and the RHRS have performed flawlessly for close to an earth year (half the nominal mission life). This paper will share the performance of the RHRS on the Martian surface as well as compare it to its predictions.
机译:设计火星科学实验室流动站所面临的具有挑战性的着陆点范围,需要流动站热管理系统,该系统必须能够在多种环境条件下保持温度受控。在火星表面温度可低至-123°C且可温暖至38°C的情况下,流动站依靠机械泵送流体环路(MPFL)流动站排热系统(RHRS)和外部散热器来维持温度。 -40°C至+ 50°C范围内的敏感电子和科学仪器。 RHRS利用流动站电源(称为多任务放射性同位素热电发生器(MMRTG))产生的一些废热,在寒冷条件下用作流动站的余热。 MMRTG产生110瓦的电能,同时产生相当于约2000瓦的废热。靠近MMRTG的热交换器板(热板)通过辐射热传递从中吸收残留的热量,并将其提供给流动站。该设计是使用RHRS来对行星表面的流动站或着陆器进行热控制的第一个实例。在8月5日在火星上成功降落之后,流动站和RHRS在近一个地球年(标称任务寿命的一半)中表现出色。本文将分享RHRS在火星表面的性能,并将其与预测相比较。

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