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A HIGH-PRESSURE PULSED WATER JET CUTTING SYSTEM BY MEANS OF WATER HAMMER IN A CONVERGENT PIPELINE

机译:通过在会聚管道中的水锤进行高压脉冲水射流系统

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One of the authors has developed a high-pressure fuel injection system using an oil hammer for diesel engines in 1993. In the present study, we applied this novel principle of the fuel injection system to the water-jet cutting system, and a pulsed water jet cutting system by means of water hammer in convergent pipeline caused by strong spool acceleration was developed. The system consisted of a pump having a small size plunger and spool, a convergent pipeline, and automatic injector having a hole-type nozzle with a small orifice. This pump, generating strong compression waves at the convergent pipeline inlet by strong acceleration of spool and plunger, is controlled by the low source oil pressure and electromagnetic valve. The wave propagated in the convergent pipeline is dynamically intensified by water hammering in the pipeline. High pressure is then developed at the nozzle. The injection pressure and injection frequency are fully controllable by the source pressure, and by the valve-opening frequency of the electromagnetic valve (EMPV). A computer simulation demonstrated that an operation and the injection pressure are satisfactory as a water jet cutting system. It is shown that a pressure of 140 MPa is obtained in nozzle inlet by a source pressure of 11.8MPa in experiments. The dimension of the nozzle orifice was determined by visualizing the spray origin using a laser-sheet imaging technique. Stagnation force and its spectrum of water jet on work was measured to evaluate effects of injection period and standoff distance on punching time and area. Practical feasibility of water jet cutting system was demonstrated by cutting/punching tests for soft/no-heating materials or metal plates and by paint removing tests.
机译:其中一位作者开发了一种高压燃料喷射系统,在1993年使用柴油发动机的油锤。在本研究中,我们将这种新颖的燃料喷射系统原理应用于水射流切割系统,以及脉冲水开发了通过强大的阀芯加速引起的收敛管道中的喷射切割系统。该系统由具有小尺寸柱塞和阀芯的泵,收敛管道和具有具有小孔的空穴式喷嘴的自动注射器。该泵通过强大的线轴和柱塞加速器产生强大的压缩波,由低源油压和电磁阀控制。在收敛管道中传播的波通过管道中的水锤动态增强。然后在喷嘴上开发高压。注射压力和喷射频率通过源压力完全控制,并且通过电磁阀(EMPV)的阀开口频率。计算机仿真证明了操作和喷射压力令人满意的水射流切割系统。结果表明,在实验中,在喷嘴入口中获得140MPa的压力。通过使用激光片成像技术可视化喷射来源来确定喷嘴孔的尺寸。测量了在工作中的水射流停滞力及其光谱,评价喷射周期和支架距离对冲压时间和区域的影响。通过切割/冲压测试来证明水射流切割系统的实用可行性,用于软/无加热材料或金属板以及通过涂料去除测试。

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