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Performance Expectations of Closed-Brayton-Cycle Heat Exchangers in 100-kWe Nuclear Space Power Systems

机译:100 kWe核空间动力系统中密闭布雷顿循环换热器的性能预期

摘要

Performance expectations of closed-Brayton-cycle heat exchangers to be used in 100-kWe nuclear space power systems were forecast. Proposed cycle state points for a system supporting a mission to three of Jupiter s moons required effectiveness values for the heat-source exchanger, recuperator and rejection exchanger (gas cooler) of 0.98,0.95 and 0.97, respectively. Performance parameters such as number of thermal units (Nm), equivalent thermal conductance (UA), and entropy generation numbers (Ns) varied from 11 to 19,23 to 39 kWK, and 0.019 to 0.023 for some standard heat exchanger configurations. Pressure-loss contributions to entropy generation were significant; the largest frictional contribution was 114% of the heat-transfer irreversibility. Using conventional recuperator designs, the 0.95 effectiveness proved difficult to achieve without exceeding other performance targets; a metallic, plate-fin counterflow solution called for 15% more mass and 33% higher pressure-loss than the target values. Two types of gas-coolers showed promise. Single-pass counterflow and multipass cross-counterflow arrangements both met the 0.97 effectiveness requirement. Potential reliability-related advantages of the cross-countefflow design were noted. Cycle modifications, enhanced heat transfer techniques and incorporation of advanced materials were suggested options to reduce system development risk. Carbon-carbon sheeting or foam proved an attractive option to improve overall performance.
机译:预测将在100 kWe核动力系统中使用的密闭式布雷顿循环换热器的性能预期。对于一个支持执行三次木星月球任务的系统,建议的循环状态点要求热源交换器,同流换热器和剔除交换器(气体冷却器)的有效值分别为0.98、0.95和0.97。性能参数,例如热量单位数(Nm),等效导热系数(UA)和熵产生数(Ns)从11到19.23到39 kWK不等,而对于某些标准热交换器配置,则从0.019到0.023不等。压力损失对熵产生的贡献很大;最大的摩擦贡献是传热不可逆性的114%。使用传统的换热器设计,证明在不超过其他性能指标的情况下很难达到0.95的效率。一种金属制的翅片逆流解决方案,要求质量比目标值高15%,压力损失高33%。两种类型的气体冷却器都有望实现。单程逆流和多程交叉逆流安排均满足0.97的有效性要求。注意到了交叉流设计潜在的与可靠性相关的优势。为降低系统开发风险,建议采用周期修改,增强的传热技术以及采用先进的材料。碳-碳片或泡沫被证明是改善整体性能的有吸引力的选择。

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    Barrett Michael J.;

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  • 年度 2003
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