Mold Steel Grinding Process Application in Furniture Design Based on Machine Vision and Wireless Sensor Network Equipment

Jinling Xu, Guodong Wang
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Abstract

With the continuous development of furniture design, the machining accuracy and surface quality of die steel have been paid more and more attention. The traditional grinding process has problems such as low efficiency and unstable quality, so it is urgent to introduce advanced technical means to improve the intelligent level of the processing process. This study aims to explore the application of the die steel grinding process based on machine vision and wireless sensor network equipment in furniture design, and improve the efficiency and quality of the grinding process through real-time monitoring and data analysis. A grinding monitoring platform integrating machine vision system and wireless sensor network was developed. A machine vision system is used to capture critical image data during the grinding process in real time, while a wireless sensor network is used to collect and transmit grinding parameters, including temperature, vibration and acoustic emission signals. By analyzing the acquired data, the optimized grinding parameters and control strategy are worked out. The experimental results show that the grinding process using machine vision and wireless sensor network has improved the relevant parameters compared with the traditional methods. The real-time monitoring capability of the system significantly reduces the failure rate during grinding and provides a more stable and reliable die steel processing solution for furniture design.

Abstract Image

基于机器视觉和无线传感器网络设备的家具设计中的模具钢打磨工艺应用
随着家具设计的不断发展,模具钢的加工精度和表面质量越来越受到重视。传统的磨削工艺存在效率低、质量不稳定等问题,因此迫切需要引进先进的技术手段,提高加工过程的智能化水平。本研究旨在探索基于机器视觉和无线传感网络设备的模具钢磨削工艺在家具设计中的应用,通过实时监控和数据分析,提高磨削工艺的效率和质量。本研究开发了集机器视觉系统和无线传感器网络于一体的打磨监控平台。机器视觉系统用于实时捕捉打磨过程中的关键图像数据,而无线传感器网络则用于采集和传输打磨参数,包括温度、振动和声发射信号。通过分析获取的数据,制定出优化的磨削参数和控制策略。实验结果表明,与传统方法相比,使用机器视觉和无线传感器网络的磨削过程改善了相关参数。系统的实时监控能力大大降低了磨削过程中的故障率,为家具设计提供了更加稳定可靠的模具钢加工解决方案。
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