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WIRELESS STARTING SYSTEM AND EMERGENCY STOP FOR TELEOPERATED HYDRAULIC MOBILE MACHINE

机译:无线启动系统和耳务液压移动机的紧急停止

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A small general-purpose teleoperated hydraulic mobile machine is studied at the Institute of Hydraulics and Automation at the Tampere University of Technology. Thanks to teleoperation, the operator of the machine is able to be in safe place during the driving when necessary. However, the actions of the machine can be dangerous for the people or the objects in the environment if problems appear for instance in the control system. On that account, safety issues must be considered carefully. Special attention has to be paid to stop the machine and start the engine again once the machine has recovered from an error situation. The goal of this paper is to describe the design and implementation of different kind of solutions to start and stop the machine wirelessly. The emergency stop can be activated through the wireless connection by the operator or by the automatic diagnostic system of the hydraulic mobile machine. The control system monitors the state of several hydraulic components such as hydraulic valves and motors by means of sensors during the operations of machine. The machine is teleoperated by using WLAN (Wireless Local Area Network) connection. The developed wireless starting system and emergency stop is totally independent of the WLAN link. In the first prototype of the wireless starting system and emergency stop, the wireless connection is carried out by using commercial, cost effective RF (Radio Frequency) modules. The data transfer protocol which is used by the modules is designed for this application. Protocol implementation is carried out with microcontrollers. Another version of the wireless starting system and emergency stop is carried out by using radio modems. The modems have better properties than the cost effective RF modules used in the first prototype due to their higher RF output power. Programmatically carried out automatic emergency stop, which stops the machine, if the WLAN connection between the control station and the machine breaks, is discussed. In that case, the independent wireless emergency stop connection is not needed. Implementations of the system are introduced in this paper. Also, some testing results and user experiences are described. Properties of these different implementations are compared: cost of the system, range, reliability and complexity of the implementation. By means of the studied results the most suitable solution to start the engine and stop the actions of the machine is chosen.
机译:在坦佩雷理工大学的液压和自动化研究所研究了一台小型通用耳机液压移动机。由于遥操作,机器的操作员能够在必要时在驾驶期间处于安全位置。然而,如果在控制系统中出现问题,则机器的操作对于人的人或环境中的对象可能是危险的。在该帐户上,必须仔细考虑安全问题。一旦机器从错误情况恢复,必须特别注意停止机器并再次启动发动机。本文的目标是描述不同类型的解决方案的设计和实施,以便无线启动和停止机器。可以通过操作员的无线连接或通过液压移动机器的自动诊断系统来激活紧急停止。控制系统通过机器操作期间通过传感器监测多个液压部件的状态,例如液压阀和电动机。通过使用WLAN(无线局域网)连接,该机器是秘书处的。开发的无线启动系统和紧急停止完全独立于WLAN链路。在无线启动系统和紧急停止的第一个原型中,通过使用商业,经济高效的RF(射频)模块来执行无线连接。模块使用的数据传输协议专为此应用而设计。协议实现与微控制器进行。使用无线电调制解调器执行无线启动系统和紧急停止的另一个版本。由于其较高的RF输出功率,调制解调器比第一个原型中使用的成本有效的RF模块具有更好的特性。以编程方式进行自动紧急停止,如果讨论了控制站和机器断裂之间的WLAN连接,则停止机器。在这种情况下,不需要独立的无线紧急停止连接。本文介绍了系统的实现。此外,描述了一些测试结果和用户体验。比较这些不同实现的性质:系统的成本,范围,可靠性和复杂性实现。通过研究结果,选择最合适的解决方案来启动发动机并停止机器的动作。

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