超临界CO2基逆流紧凑型三维换热器的共轭传热分析

Janhavi Chitale, A. Abdoli, G. Dulikravich, A. Sabau, James B. Black
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引用次数: 1

摘要

使用超临界流体(如CO2)的紧凑型热交换器由于其高传热能力和更小的占地面积而成为首选。对几种壳管逆流式微通道换热器进行了三维共轭强制对流换热分析。通过数值模拟测试了质量流量、水力直径和不同截面对换热的影响。质量流量的增加使换热达到最大值,然后随着湍流的增加而降低。水力直径最小的微通道换热效果最好。在圆形、方形、带径向肋的圆形和带径向肋的方形截面中,带径向肋的圆形截面温度分布最均匀,换热量最大。考虑这些因素,在多目标约束优化几何参数和增材制造要求的过程中,可以实现换热器的最优高效运行。
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Conjugate Heat Transfer Analysis of the Supercritical CO2 Based Counter Flow Compact 3D Heat Exchangers
Compact heat exchangers using supercritical fluids such as CO2 are preferred due to their high heat transfer capacity and smaller footprint. Three-dimensional conjugate forced convection heat transfer analysis was performed on several shell-and-tube counter-flow microchannel heat exchangers. Numerical simulations were conducted to test effect of change in mass flow rate, hydraulic diameter and various cross sections on the heat transfer. Increasing mass flow rate improved heat transfer up to a maximum value and then decreased downstream with increasing turbulence. Maximum heat transfer was obtained for the micro channel with the smallest hydraulic diameter. Amongst the cross sections analyzed (circular, square, circular with radial ribs, and square with radial ribs), the most uniform distribution of temperature and maximum heat transfer were obtained for circular cross section with radial ribs. An optimally efficient operation of such a heat exchanger can be attained by considering these factors during multi-objective constrained optimization of geometric parameters and requirements for additive manufacturing of such compact heat exchangers.
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