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Pressure drop model and influence of structure parameters of helical coil on pressure drop in tube |
Yan-ni GUO( ),Yao YANG*( ),Zheng-liang HUANG,Jing-dai WANG,Yong-rong YANG |
Zhejiang Provincial Key Laboratory of Advanced Chemical Engineering Manufacture Technology, Zhejiang University, Hangzhou 310027, China |
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Abstract The pressure drops of the fluid in the helical coil were measured through the water as the medium and the U-shaped pressure instrument as the measuring tool, to study the law of pressure drop in the helical coil and establish a pressure drop prediction model with a wide range of applications. The effects of structure parameters including coiling diameter, coiling angle and tube diameter on the pressure drop were investigated experimentally. Results show that the pressure drop of the helical coil is larger if the coiling diameter or the tube diameter of the helical coil is smaller in the case of the same flow rate and other structure parameters. The structure parameters of the helical coil have different effects on the pressure drop at different flow rate ranges. The influence of the structure parameters on the pressure drop is small at low flow rates (u<0.5 m/s), and the structure parameters have a significant influence on the pressure drop at high flow rates (u>0.5 m/s). The uniform model parameters made the prediction model of the pressure drop in the helical coil misaligned in the high-pressure drop zone. Therefore, the segmentation characteristic parameter was proposed, which is composed of the flow parameters and the structure parameters. The relative deviation of the pressure drop between the calculated and the measured is less than 10%.
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Received: 21 July 2019
Published: 28 August 2020
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Corresponding Authors:
Yao YANG
E-mail: 974003446@qq.com;yangyao306@gmail.com
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缠绕管结构参数对管内压降的影响及压降模型
为了研究缠绕管内流体的压降规律、建立具有较宽适用范围的压降预测模型,以水为介质,采用U型压差计测量缠绕管内流体进、出口的压降,实验考察缠绕直径、缠绕角度、管径等缠绕管结构参数对管内压降的影响. 结果表明,在流速及其他结构参数相同的情况下,缠绕直径或管径越小,单位长度缠绕管内压降越大;在不同流速区间,缠绕管结构参数对管内压降的影响程度不同. 在低流速(小于0.5 m/s)下,缠绕管结构对管内压降的影响较小;在高流速(大于0.5 m/s)下,缠绕管结构对管内压降的影响显著. 采用统一的压降预测模型对实验数据拟合会使得其在高压降区失准,进而提出由流动参数和缠绕管几何参数组合而成的分段特征参数,并构建分段式压降预测模型. 分段式压降模型的计算值与实验值的相对偏差小于10%.
关键词:
缠绕管,
二次流,
结构参数,
压降模型,
特征参数
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