Design and test a converging and de Laval nozzle using additive manufacturing

Mingtai Chen, Ruksana Baby , Seth Dillard , Yi Tsung Lee , Srinath Ekkad 
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引用次数: 1

Abstract

The advent of additive manufacturing technology has facilitated the design and fabrication of parts and models in both academia and aerospace industry. Compressible flow in the nozzles is not a new research topic; however, the accuracy of the experimental results obtained from the nozzles using additive manufacturing has not been assessed comprehensively. Surface roughness and strength of 3D-printed nozzles are two major concerns when they are applied to compressible flows. In this paper, a converging and a de Laval nozzle fabricated by additive manufacturing using ABS filament are designed and tested. Surface roughness inside the converging nozzle is quantified using a nondestructive method. In general, the experimental results compare well with the analytical solutions from isentropic equations for the converging nozzle and the numerical simulations conducted in ANASYS Fluent for the de Laval nozzle. 3D-printed nozzles can be employed to quickly demonstrate and verify novel ideas and concepts in the pedagogy and research at large Reynolds numbers.
使用增材制造设计和测试一个会聚和德拉瓦尔喷嘴
增材制造技术的出现促进了学术界和航空航天工业中零件和模型的设计和制造。喷嘴内可压缩流动并不是一个新的研究课题;然而,利用增材制造技术从喷嘴获得的实验结果的准确性尚未得到全面的评估。3d打印喷嘴的表面粗糙度和强度是应用于可压缩流的两个主要问题。本文采用ABS长丝增材制造技术,设计并测试了一种会聚喷嘴和一种德拉瓦尔喷嘴。采用非破坏性方法对会聚喷嘴内部的表面粗糙度进行了量化。总的来说,实验结果与收敛型喷管的等熵方程解析解和在ansys Fluent中对de Laval喷管的数值模拟结果比较吻合。3d打印喷嘴可用于快速演示和验证大雷诺数教学和研究中的新想法和概念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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