钢件淬火数值模拟中工艺参数优化的多目标优化方法

B. Hrnjica, Š. Behrem
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引用次数: 2

摘要

本文对圆柱钢试样在水、5%水藤烯酸溶液和异速油三种不同淬火介质中的淬火过程进行了数值模拟。淬火过程从钢瓶的初始温度850℃开始,在空气中移动,直到到达淬火浴。淬火液保持在40℃的恒定温度下。钢瓶由精挑细选的钢材制成,在淬火和加热过程中不会改变其结构。圆柱形样品制作成3种不同尺寸(R, H), (mm): (12.5 × 100), (25 × 150)和(37.5 × 225),每个样品安装4个测量点。每个测点由安装在圆柱体表面下的热电偶组成,能够每半秒测量一次温度。在实验的基础上,将数值模拟识别为瞬态非线性二维热传导问题,包括两个主要任务:直接传热问题(DHTP)和逆传热问题(IHTP)。本文提出了一种新的多目标优化方法来估计圆柱钢试样淬火数值模拟过程中的传热系数。与文献结果相比,该方法获得了更好的结果和更短的收敛时间。本文给出了热交换器温度场的时域计算和传热系数的估计方法、算法和源代码。仿真软件是用c#编程语言实现的,可以在http://github.com/bhrnjica/quenching_simulation上找到。
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A new multi-objective optimization approach for process parameters optimization during numerical simulation of quenching steel parts
The paper presents the numerical simulation of quenching cylindrical steel sample immersed in three different quenchants: water, 5 % aquatensid solution, and isorapid oil. The quenching process starts from the initial temperature of the cylinder at 850 °C and moves through the air until it reaches the quenching bath. The quenchant is held at constant temperature of 40 °C. The cylinder is made of carefully selected steel which does not change its structure during quenching and heating. Cylindrical samples were manufactured in three different dimensions (R, H), (mm): (12.5 × 100), (25 × 150) and (37.5 × 225), so that four measuring points were installed in each sample. Each measuring point consists of thermocouple installed beneath the cylinder surface, capable of measuring the temperature every half second. Based on the experiment, the numerical simulation is recognized as transient and nonlinear two-dimensional heat conduction problem consisting of the two main tasks: direct heat transfer problem (DHTP) and inverse heat transfer problem (IHTP). The paper proposes a new multi-objective optimization approach for the estimation of heat transfer coefficients during the numerical simulation of quenching cylindrical steel sample. The proposed approach gained better results and less convergence time compared to the results from the literature. The paper includes methods, algorithms and the source code for the calculation of the temperature fields in time and heat transfer coefficient estimation of the IHTP. The simulation software has been implemented in C# programming language and can be found at http://github.com/bhrnjica/quenching_simulation.
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