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超临界传热主导无量纲数组发现及关联式构建OA

Discovery of Dominant Dimensionless Group and Correlation Development for Supercritical Heat Transfer

中文摘要英文摘要

精度高且通用性强的传热关联式对超临界换热器设计优化及系统高效安全运行至关重要.基于水平管内水、二氧化碳(CO2)和R134a这3种典型超临界工质的大量实验数据评估发现,现有传热关联式在跨工质预测中存在显著误差,难以准确揭示不同工质间的共性传热规律.为提高预测效果,结合白金汉兀定理和活动子空间方法,通过数据驱动方法识别出超临界流体水平管内传热过程的主导无量纲数组.该无量纲数组的归一化特征值高达0.997,能够有效表征超临界传热的关键特性.基于此构建的新关联式表现出优异的跨工质预测效果,对水、CO2和R134a的传热预测平均绝对相对误差为0.05,且98.67%的数据点误差控制在20%以内.进一步地,以R1234yf为测试工质检验其泛化能力,结果显示,新关联式的预测精度显著优于现有模型.研究表明,识别出的主导无量纲数组可有效表征多种超临界工质的传热共性,为构建普适性强的超临界传热关联式提供了新思路.

Accurate and highly generalizable heat transfer correlations are essential for the optimal design of supercritical heat exchangers and the efficient and safe operation of thermal systems.However,an extensive evaluation based on experimental datasets of water,carbon dioxide(CO2),and R134a flowing in horizontal tubes reveals that existing correlations exhibit significant errors in cross-fluid predictions and fail to capture the common heat transfer characteristics among different supercritical fluids.To improve prediction performance,this study employs a data-driven approach combining the Buckingham Pi theorem and the active subspace method to identify the dominant dimensionless group governing supercritical heat transfer in horizontal tubes.The normalized eigenvalue of the identified dimensionless group reach 0.997,effectively capturing the key characteristics of supercritical heat transfer.Based on the dominant dimensionless group,a new heat transfer correlation is developed,demonstrating excellent cross-fluid predictive capability.For water,carbon dioxide,and R134a,the new correlation achieves a mean absolute relative error of 0.05,with 98.67%of data points having relative errors within 20%.Furthermore,validation using R1234yf demonstrates superior generalization capability compared to existing models.These findings indicate that the identified dominant dimensionless group effectively captures the shared heat transfer behavior of various supercritical fluids,offering a new perspective for developing universally applicable supercritical heat transfer correlations.

侯正辉;杨旷;廖海帆;白少喆;王海军

绿色氢电全国重点实验室(西安交通大学),陕西省西安市 710049绿色氢电全国重点实验室(西安交通大学),陕西省西安市 710049绿色氢电全国重点实验室(西安交通大学),陕西省西安市 710049绿色氢电全国重点实验室(西安交通大学),陕西省西安市 710049绿色氢电全国重点实验室(西安交通大学),陕西省西安市 710049

信息技术与安全科学

换热器传热关联式超临界流体主导无量纲数组

heat exchangersheat transfer correlationsupercritical fluidsdominant dimensionless group

《中国电机工程学报》 2026 (12)

5047-5056,中插18,11

国家重点研发计划项目(2023YFB4102205)陕西省科技创新团队计划(2023-CX-TD-18)中核集团领创科研项目(J202309019).National Key R&D Program of China(2023YFB4102205)Innovation Capability Support Program of Shaanxi Province(2023-CX-TD-18)Innovative Scientific Program of CNNC(J202309019).

10.13334/j.0258-8013.pcsee.250814

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