螺旋升降机的设计与开发:轻型车辆的输入维修工具

Mary Nena M. Faulve
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摘要

本研究对开发和利用专门设计的千斤顶螺杆进行了创新性调查,这种螺杆专为提升轻型物体而设计。虽然螺旋升降机在机械升降应用中的功效已得到公认,但本研究旨在通过专门解决提升轻型负载的独特需求来扩大其适应性。这项探索包括对设计原理、材料以及与拟议螺旋升降机创新相关的操作方面进行彻底检查。这项研究背后的主要动力是填补现有起重解决方案的空白,这些解决方案是根据涉及轻型物体的任务要求而定制的。通过深入研究螺旋升降机设计的复杂性,这项研究旨在提高小型车间等不同环境中起重作业的效率和安全性,因为在这些环境中,精确和可控的轻型负载起重至关重要。这项研究的预期成果包括开发出一种专用螺旋升降机原型,为提升轻型物体提供可靠、经济、符合人体工程学的解决方案。研究成果旨在为机械工程和起重技术领域提供有价值的见解,为进一步推动设计和应用符合特定负载要求的起重设备奠定基础。根据研究结果,得出了以下结论:该装置可有效提升 2 吨重的物体,其安全性已得到成功验证,所使用的材料可在当地获得。不过,必须指出的是,这种设计仅限于轻载。因此,在需要螺旋式机械千斤顶来承受重物的应用中,必须采用不同的设计。建议包括遵守设备的能力、实施安全措施以防止操作过程中发生意外,以及在未来的研究工作中进一步改进的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Development of a Screw Jack: An Input Repair Tool for Light Vehicles
This study introduces an innovative investigation into the development and utilization of a specially designed jack screw tailored for lifting lightweight objects. While screw jacks are well-established for their efficacy in mechanical lifting applications, this research aims to broaden their adaptability by specifically addressing the unique demands of lifting lighter loads. The exploration encompasses a thorough examination of the design principles, materials, and operational facets associated with the proposed screw jack innovation. The primary impetus behind this research is to fill an existing void in lifting solutions that are customized to the requirements of tasks involving light objects. By delving into the intricacies of screw jack design, the study seeks to improve the efficiency and safety of lifting operations in diverse contexts, such as small-scale workshops, where precision and controlled lifting of lighter loads are crucial. Anticipated outcomes of this study include the development of a specialized screw jack prototype that provides a dependable, cost-effective, and ergonomic solution for lifting light objects. The research findings aim to contribute valuable insights to the fields of mechanical engineering and lifting technology, laying the groundwork for further advancements in the design and application of lifting devices tailored to specific load requirements. Based on the study's findings, the following conclusions were drawn: the device effectively raises objects with a 2-ton capacity, its safety has been successfully verified, and the materials used are locally available. However, it is essential to note that this design is limited to light loads. Therefore, in applications requiring a screw-type mechanical jack for heavy loads, a different design is necessary. Recommendations include adherence to the device's capacity, implementation of safety measures to prevent accidents during operation, and potential modifications for further enhancement in future research endeavors.
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