系统仿真学报 ›› 2026, Vol. 38 ›› Issue (7): 2082-2090.doi: 10.16182/j.issn1004731x.joss.25-0882

• • 上一篇    下一篇

基于有限元热分析的主轴对流换热参数优化

张佳丽1, 刘海平1, 蒋勤升2, 党思娜1   

  1. 1.空军工程大学,陕西 西安 710051
    2.解放军93617部队
  • 收稿日期:2025-09-12 修回日期:2025-11-08 出版日期:2026-07-28 发布日期:2026-07-31
  • 通讯作者: 刘海平
  • 第一作者简介:张佳丽(1981-),女,副教授,硕士,研究方向为机械制造。

Optimization of Convective Heat Transfer Parameters for Spindles Based on Finite Element Thermal Analysis

Zhang Jiali1, Liu Haiping1, Jiang Qinsheng2, Dang Sina1   

  1. 1.Air Force Engineering University, Xi'an 710051, China
    2.PLA 93617 Troops
  • Received:2025-09-12 Revised:2025-11-08 Online:2026-07-28 Published:2026-07-31
  • Contact: Liu Haiping

摘要:

针对现有主轴热特性有限元模型在对流换热边界条件设置中因忽略对流面几何特征与流体流态影响、且常采用恒定温度值加载而导致仿真精度较低的问题,提出了一种基于有限元热分析的主轴对流换热参数优化方法。结合主轴系统各对流面的几何形状与空间位置,依据相似性原理通过量纲分析确定了对流换热系数的计算准则;建立了考虑流体流态(自然对流/强迫对流/泰勒‒库特流)的传热模型,并在有限元仿真中引入实时动态温度加载机制。通过宝鸡CH7520数控车床主轴系统的热特性实验,验证了该优化模型的有效性。仿真实验结果表明:优化后的模型能更准确地预测主轴温度场与热变形,其仿真精度明显高于忽略几何因素、流态及采用定值温度加载的传统方法。该研究为高精度机床热误差补偿提供了可靠的建模依据。

关键词: 热分析, 热态特性, 对流换热, 参数优化, 温度场, 变形场

Abstract:

In view of the low simulation accuracy of existing finite element models for thermal characteristics of spindles caused by ignoring the influences of geometric characteristics of convective surfaces and fluid flow patterns and often adopting constant temperature loading in the setting of convective heat transfer boundary conditions, this paper proposed an optimization method for convective heat transfer parameters of spindles based on finite element thermal analysis. Combined with the geometric shapes and spatial positions of various convective surfaces of the spindle system, the calculation criterion of the convective heat transfer coefficient was determined through dimensional analysis according to the similarity principle; a heat transfer model considering fluid flow patterns (natural convection/forced convection/Taylor-Couette flow) was established, and a real-time dynamic temperature loading mechanism was introduced into the finite element simulation. Through the thermal characteristic experiment of the spindle system of a Baoji CH7520 numerical control lathe, the effectiveness of this optimized model was verified. The simulation experiment results show that the optimized model can more accurately predict the temperature field and thermal deformation of the spindle, and its simulation accuracy is significantly higher than that of traditional methods ignoring geometric factors and flow patterns and adopting constant temperature loading. This study provides a reliable modeling basis for the thermal error compensation of high-precision machine tools.

Key words: thermal analysis, thermal characteristic, convective heat transfer, parameter optimization, temperature field, deformation field

中图分类号: