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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >A new approach for numerical-diffusion control of flux-vector-splitting schemes for viscous-compressible flows
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A new approach for numerical-diffusion control of flux-vector-splitting schemes for viscous-compressible flows

机译:用于粘性可压缩流量的磁通矢量分离方案的数值扩散控制的新方法

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Purpose - The flux vector splitting (FVS) schemes are known for their higher resistance to shock instabilities and carbuncle phenomena in high-speed flow computations, which are generally accompanied by relatively large numerical diffusion. However, it is desirable to control the numerical diffusion of FVS schemes inside the boundary layer for improved accuracy in viscous flow computations. This study aims to develop a new methodology for controlling the numerical diffusion of FVS schemes for viscous flow computations with the help of a recently developed boundary layer sensor. Design/methodology/approach - The governing equations are solved using a cell-centered finite volume approach and Euler time integration. The gradients in the viscous fluxes are evaluated by applying the Green's theorem. For the inviscid fluxes, a new approach is introduced, where the original upwind formulation of an FVS scheme is first cast into an equivalent central discretization along with a numerical diffusion term. Subsequently, the numerical diffusion is scaled down by using a novel scaling function that operates based on a boundary layer sensor. The effectiveness of the approach is demonstrated by applying the same on van Leer's FVS and AUSM schemes. The resulting schemes are named as Diffusion-Regulated van Leer's FVS-Viscous (DRvLFV) and Diffusion-Regulated AUSM-Viscous (DRAUSMV) schemes. Findings - The numerical tests show that the DRvLFV scheme shows significant improvement over its parent scheme in resolving the skin friction and wall heat flux profiles. The DRAUSMV scheme is also found marginally more accurate than its parent scheme. However, stability requirements limit the scaling down of only the numerical diffusion term corresponding to the acoustic part of the AUSM scheme. Originality/value - To the best of the authors' knowledge, this is the first successful attempt to regulate the numerical diffusion of FVS schemes inside boundary layers by applying a novel scaling function to their artificial viscosity forms. The new methodology can reduce the erroneous smearing of boundary layers by FVS schemes in high-speed flow applications.
机译:目的 - 已知磁通矢量分裂(FVS)方案以其更高的抗冲突性和高速流量计算的痈现象,通常伴随着相对大的数值扩散。然而,期望控制边界层内的FVS方案的数值扩散,以提高粘性流量计算的精度。该研究旨在通过最近开发的边界层传感器的帮助,开发用于控制FVS方案的数值扩散的新方法。设计/方法/方法 - 使用单元中心的有限体积方法和欧拉时间集成来解决控制方程。通过应用绿色的定理来评估粘性助焊剂中的梯度。对于没有粘性通量,介绍了一种新方法,其中FVS方案的原始上冲式制剂首先以数值扩散术语一起投入到等效的中心离散化。随后,通过使用基于边界层传感器操作的新颖缩放功能来缩放数值扩散。通过在van Leer的FVS和AUSM方案上应用相同来证明该方法的有效性。所得到的方案被命名为扩散调节范立式FVS-粘粘性(DRVLFV)和扩散调节的AUSM粘性(DRAUSMV)方案。结果 - 数值测试表明,DRVLFV方案在解决皮肤摩擦和壁热通量轮廓方面对其母体方案显着改善。 DRAUSMV方案也比其父计划更准确地发现。然而,稳定性要求仅限于对应于AUSM方案的声学部分的数值扩散术语的缩放。原创性/价值 - 据作者所知,这是第一次成功尝试通过将新颖的缩放功能应用于其人工粘度形式来调节边界层内的FVS方案的数值扩散。新方法可以通过高速流动应用中的FVS方案减少边界层的错误涂抹。

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