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Effect of wall conduction on the heat transfer characteristics of supercritical n-decane in a horizontal rectangular pipe for cooling of a scramjet combustor

机译:壁传导对水平矩形管中超临界N-癸烷传热特性的影响,以冷却汽轮燃烧室

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Purpose - The purpose of this paper is to numerically study the influence of wall conduction on the heat transfer of supercritical n-decane in the active regenerative cooling channels. Design/methodology/approach - A horizontally placed rectangular pipe with a solid zone and another one without a solid zone were used. A drastic variation of thermo-physical properties was emphatically addressed. After the verification of mesh and turbulence models comparing with the experimental results, a mesh number of 4.5 M and the low Reynolds number SST k-ω turbulence model were chosen. The solution of the governing equations and the acquisition of the numerical results were executed by the commercial software FLUENT 2020 R1. Findings - The numerical results indicate that there is a heat transfer deterioration (HTD) potential for the upper wall, lower wall and sidewall with the decrease of mass flux. Due to wall conduction, the distribution of the fluid temperature at spanwise-normal planes becomes uniform and this feature also takes advantage of the relatively uniform transverse velocity. For the streamwise-normal planes, the low fluid temperature appears close to the upper wall at the region near the sidewall and vice versa for the region near the centre. Undoubtedly, the secondary flow at the cross-section plays a crucial role in this process and the relatively cool mainstream is affected by the vortices. Originality/value - This study warns that the wall conduction must be considered in the practical design and thermal optimization due to the sensibility of thermo-physical properties to the heat flux. The secondary flow caused by the buoyancy force (gravity) plays a significant role in the supercritical heat transfer and mixed convection heat transfer should be further studied.
机译:目的 - 本文的目的是在数字上研究壁传导对主动再生冷却通道中超临界N-癸烷的传热的影响。使用设计/方法/方法 - 使用具有固体区域的水平放置的矩形管,另一个没有固体区。强调地解决了热物理性质的激烈变化。选择与实验结果相比的网格和湍流模型进行验证后,选择了4.5μm的网格数和低雷诺数SSTK-ω湍流模型。管理方程的解决方案和收购数值结果是由商业软件流利的2020 R1执行的。结果 - 数值结果表明,上壁,下壁和侧壁的传热劣化(HTD)电位随着质量磁通而降低。由于壁传导,在翼展正常平面下的流体温度的分布变得均匀,并且该特征也利用了相对均匀的横向速度。对于流动正常平面,低流体温度靠近侧壁附近的区域的上壁,反之亦然,在中心附近的区域。毫无疑问,横截面的二次流动在该过程中起着至关重要的作用,并且相对凉爽的主流受到涡流的影响。原创性/值 - 本研究警告说,由于热物理性质对热通量的感觉,必须在实际设计和热优化中考虑墙壁传导。由浮力力(重力)引起的二次流动在超临界传热中起着重要作用,并进一步研究混合对流热传递。

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