3D-Printed Laboratory Equipment for Vibrations and Control Theory Courses: Pendulum, Cantilever Beam, and Rectilinear System

Martin Garcia, Benjamin Estrada, Elizabeth Lucier, C. Tekes, T. Utschig, A. Tekes
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引用次数: 2

Abstract

Learning by doing has proven to have numerous advantages over traditionally taught courses in which the instructor teaches the topic while students remain passive learners with little engagement. Although laboratories give hands-on opportunities for undergraduate mechanical engineering students, they have to wait for a semester for the lab course for instance the prerequisite of the vibrations and control laboratory is the mechanical vibrations course. Since the nature of the dynamics branch consisted of dynamics, vibrations, and control theory courses are highly mathematical, students struggle comprehending the introduced topic and relate the theory to its real-world application area. Furthermore, it’s almost impossible for an instructor to bring the existing educational laboratory equipment to the class since they are bulky and heavy. The advents in manufacturing technology such as additive manufacturing bring us more opportunities to build complex systems new materials. This study presents the design, development, and implementation of low-cost, 3D printed vibratory mechanisms to be utilized in mechanical vibrations, control theory courses along with their associated laboratories. A pendulum, cantilever beam integrated with springs, and a rectilinear system consisted of two sliding carts, translational springs, and a scotch yoke mechanism are designed. The main parts of the mechanisms are 3D printed using polylactic acid (PLA), polyethylene terephthalate glycol (PETG), and thermoplastic polyurethane (TPU).
3d打印实验室设备振动和控制理论课程:摆,悬臂梁,和直线系统
实践学习已被证明比传统教学课程有许多优势,在传统教学课程中,教师教授主题,而学生仍然是被动的学习者,很少参与。虽然实验室为机械工程专业的本科生提供了动手的机会,但他们必须等待一个学期的实验课程,例如振动和控制实验室的先决条件是机械振动课程。由于动力学分支由动力学,振动和控制理论课程组成的本质是高度数学化的,学生很难理解所介绍的主题并将理论与实际应用领域联系起来。此外,教师几乎不可能把现有的教学实验室设备带到课堂上,因为它们又大又重。增材制造等制造技术的进步为我们提供了更多构建复杂系统和新材料的机会。本研究介绍了设计、开发和实现低成本的3D打印振动机构,用于机械振动、控制理论课程及其相关实验室。设计了一个摆、悬臂梁和弹簧,以及一个由两个滑车、平动弹簧和斜轭机构组成的直线系统。该机制的主要部分是使用聚乳酸(PLA),聚对苯二甲酸乙二醇酯(PETG)和热塑性聚氨酯(TPU)进行3D打印的。
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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