首页> 外文期刊>Clean air >MATHEMATICAL MODELING OF THE HOT WATER DISCHARGE EFFECT ON THE AQUATIC ENVIRONMENT OF THE THERMAL POWER PLANT BY USING TWO WATER DISCHARGE PIPES
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MATHEMATICAL MODELING OF THE HOT WATER DISCHARGE EFFECT ON THE AQUATIC ENVIRONMENT OF THE THERMAL POWER PLANT BY USING TWO WATER DISCHARGE PIPES

机译:用两个排水管对热水电厂水环境的热水作用数学模型

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The paper presents a mathematical modeling of the discharge hot water effect on the aquatic environment of a thermal power plant by using two water discharge pipes. It is solved by using the Navier–Stokes and temperature transport equations for an incompressible fluid in a stratified medium. The numerical solution of the system of equations is divided into four stages by using a projection method approximated by the finite volume method. In the first stage, it is assumed that momentum transfer occurred by convection and diffusion where the intermediate velocity field is solved by the 5-step Runge–Kutta method. In the second stage, the pressure field is solved by using the intermediate velocity field where the Poisson equation for the pressure field is solved by the Jacobi method. In the third stage, it is assumed that the momentum transfer is carried out only by the pressure gradient. In the fourth stage, of the temperature transport equation is solved as momentum equations by the 5-step Runge–Kutta method. The obtained numerical results of the stratified turbulent flow for two water discharge pipes were compared with experimental data and with numerical results for one water discharge pipe. In the case where two water discharge pipes were used, a general thermal load in the reservoir-cooler decreases compared to the case with one water discharge pipe. Also revealed is that qualitatively and quantitatively the basic laws of hydrothermal processes occurring in the reservoir-cooler can be approximately seen in the numerical simulations.
机译:本文提出了使用两个排水管对热电厂水环境排放热水影响的数学模型。通过使用Navier–Stokes方程和温度传递方程来解决层状介质中不可压缩流体的问题。利用有限体积法近似的投影法,将方程组的数值解分为四个阶段。在第一阶段,假设动量传递是通过对流和扩散发生的,其中中间速度场是通过5步Runge-Kutta方法求解的。在第二阶段,使用中间速度场求解压力场,其中通过Jacobi方法求解压力场的泊松方程。在第三阶段中,假设仅通过压力梯度来进行动量传递。在第四阶段,通过5步Runge-Kutta方法将温度传递方程作为动量方程求解。将获得的两根排水管的分层湍流数值结果与实验数据和一根排水管的数值结果进行比较。在使用两个排水管的情况下,与只有一个排水管的情况相比,储液冷却器中的总热负荷降低了。还揭示出,在数值模拟中可以大致看到定性和定量地描述水库冷却器中发生的水热过程的基本规律。

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