标题: 利用压力法之非结构性网格可压缩流计算
A Pressure-Based Unstructured Grid for Compressible Flow Calculation
作者: 吴添成
Tain-Cherng Wu
崔燕勇
Yeng-Yung Tsui
机械工程学系
关键字: 压力修正法;可压缩流;非结构性网格;Pressure Correction Method;Compressible Flow;Unstructured Grid
公开日期: 2000
摘要: 本论文引用预测不可压缩流之SIMPLE压力修正法,以有限容积积分法、重置变数安排之非结构性网格,来离散稳态的统御方程式,求解可压缩流。将密度及速度的变动导入压力修正方程式中,推导出马赫数控制因子,来自动调整压力修正方程式在次音速为椭圆型式及在超音速为双曲线型式之流场特性,可有效处理穿、超音速流场之问题。本文对于扩散项之离散采用中央差分来近似;而对流项之近似则采用二阶中央差分及一阶上风差分混合法,除了可准确捕捉震波之位置与强度,并可消除震波附近之数值震荡,具有计算模拟全速流流场之能力。
以不同之流场及任意边形之非结构网格,来探讨本方法之可适用性,其中包括非黏性流体之一维/二维渐缩-渐扩喷嘴及二维渠道流,以及黏性流体之二维渠道流。并进一步探讨密度混合因子对计算解之影响情况。
In this thesis an extended pressured-correction method using SIMPLE algorithm is developed for the computations of two-dimensional steady compressible flow. The correction of pressure in pressure-correction equation is correlated to the density and velocity in terms of a “Mach control factor” so that it can automatically adopt elliptic or hyperbolic characteristics according to either subsonic or supersonic flow condition.
An unstructured finite volume method with collocated variables arrangement is employed in space discretization where the diffusion fluxes are discretized using central difference scheme (CDS), and the convection terms are discretized using a blended central difference and upwind difference scheme (UDS). The blended scheme is so incorporated to increase the accuracy of the captured shock position and strength while eliminating the oscillations near shock wave.
The method is verified by a series of test problems including invicid flows in a one-dimensional and a two-dimensional converging-diverging nozzle, viscous and invicid flows past a circular arc bump in a channel. Both quadrilateral and triangular cells are used in the computations to illustrate the unstructured capability and grid flexibility of the unstructured flow solver. Some effects of the “density-blending factor” to the numerical solutions are discussed and conclusions are drawn from the verification process. The accuracy and stability properties of the current method demonstrate its capability and potential in the computation of compressible flow past arbitrary body shapes at all flow speeds.
URI: http://140.113.39.130/cdrfb3/record/nctu/#NT890489114
http://hdl.handle.net/11536/67616
显示于类别:Thesis