School of Mechanical Engineering, Qingdao Technological University, 266033 Qingdao, China.
Recent Pat Nanotechnol. 2013 Jun;7(2):167-81. doi: 10.2174/18722105113079990001.
In recent years, a large number of patents have been devoted to developing minimum quantity lubrication (MQL) grinding techniques that can significantly improve both environmentally conscious and energy saving and costeffective sustainable grinding fluid alternatives. Among them, one patent is about a supply system for the grinding fluid in nano-particle jet MQL, which produced MQL lubricant by adding solid nano-particles in degradable grinding fluid. The MQL supply device turns the lubricant to the pulse drops with fixed pressure, unchanged pulse frequency and the same drop diameter. The drops will be produced and injected in the grinding zone in the form of jet flow under high pressure gas and air seal. As people become increasingly demanding on our environment, minimum quantity lubrication has been widely used in the grinding and processing. Yet, it presents the defect of insufficient cooling performance, which confines its development. To improve the heat transfer efficiency of MQL, nano-particles of a certain mass fraction can be added in the minimum quantity of lubricant oil, which concomitantly will improve the lubrication effects in the processing. In this study, the grinding experiment corroborated the effect of nano-particles in surface grinding. In addition, compared with other forms of lubrication, the results presented that the grinding force, the friction coefficient and specific grinding energy of MQL grinding have been significantly weakened, while G ratio greatly rose. These are attributed to the friction oil-film with excellent anti-friction and anti-wear performance, which is generated nano-particles at the wheel/workpiece interface. In this research, the cooling performance of nano-particle jet MQL was analyzed. Based on tests and experiments, the surface temperature was assayed from different methods, including flood lubricating oil, dry grinding, MQL grinding and nano-particle jet MQL grinding. Because of the outstanding heat transfer performance of nano-particles, the ratio of heat delivered by grinding media was increased, leading to lower temperature in the grinding zone. Results demonstrate that nano-particle jet MQL has satisfactory cooling performance as well as a promising future of extensive application.
近年来,大量专利致力于开发微量润滑(MQL)磨削技术,这可以显著提高环保、节能和成本效益的可持续磨削液替代品。其中,一项专利是关于纳米颗粒射流 MQL 磨削液的供应系统,它在可降解磨削液中添加固体纳米颗粒来生产 MQL 润滑剂。MQL 供应装置以固定压力将润滑剂转化为脉冲滴,脉冲频率不变,滴径相同。在高压气体和空气密封下,滴将以射流的形式在磨削区产生并注入。随着人们对环境的要求越来越高,微量润滑已广泛应用于磨削和加工中。然而,它存在冷却性能不足的缺陷,限制了其发展。为了提高 MQL 的传热效率,可以在微量润滑油中添加一定质量分数的纳米颗粒,同时提高加工中的润滑效果。本研究通过表面磨削实验验证了纳米颗粒的效果。此外,与其他润滑形式相比,结果表明 MQL 磨削的磨削力、摩擦系数和比磨削能显著降低,而 G 比大大提高。这归因于在砂轮/工件界面生成具有优异减摩和耐磨性能的摩擦油膜纳米颗粒。本研究分析了纳米颗粒射流 MQL 的冷却性能。基于测试和实验,通过不同方法测量了表面温度,包括浇注油润滑、干磨、MQL 磨削和纳米颗粒射流 MQL 磨削。由于纳米颗粒具有出色的传热性能,增加了磨削介质传递的热量比例,导致磨削区温度降低。结果表明,纳米颗粒射流 MQL 具有令人满意的冷却性能,具有广泛应用的广阔前景。