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New materials, surface coatings and biodegradable oils for industrial gears.

机译:用于工业齿轮的新材料,表面涂层和可生物降解的油。

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摘要

Ever since gears were first used there has been a constant demand for increasing the power density in gear transmissions, to reduce the power losses, to increase the life time and also to decrease their weight. To satisfy these demands new solutions have been developed, such as the use of new materials, the application of surface coatings, improved surface finishing, different hardening treatments, and the use of new lubricants.;Any new solution presented must have technical performance advantages for its industrial application, and the technical performance must be proved in dedicated tests.;Nowadays some of the main concerns in gear applications are scuffing failures, micropitting fatigue damage (contact fatigue wear phenomenon observed in combined rolling and sliding contacts operating under elastohydrodinamic lubrication (EHL) or mixed EHL/Boundary lubrication conditions) and power loss or efficiency. These were some of the main concerns during this work for the evaluation of new material, surface coatings and lubricants for gears.;The applicability of multilayer composite surface coatings (providing coefficients of friction close to those obtained with solid lubricants like MoS2 and graphite) in gear tooth is discussed in this work, mainly in what concerns to gear efficiency at normal operating conditions and to scuffing load capacity. The average friction coefficient between gear tooth is also discussed and compared with a conventional solution (carburized steel gears).;There is also a growing environmental awareness that leads to an increasing interest in biodegradable non-toxic oils. Of course, higher lubricant performance in what concerns friction, wear, lifetime, etc. has also major impact in the environmental compatibility, because premature wear, high energy needs and low lifetime are also harmful to the environment.;The use of Austempered Ductil Iron (ADI), austempered at 300oC, as a gear material is also discussed, mainly in what concerns fatigue life, both pitting and micropitting, and power loss behaviour.;Two new environmentally friendly lubricants blended for industrial gear applications were investigated in this work. These oils are based on fully or highly saturated esters and are produced from harvestable raw materials. Both oils are biodegradable and have low toxicity and were formulated to replace mineral lubricants in industrial gears, accomplishing CLP specification according to DIN51517.;The overall performance and applicability of the biolubricants was assessed in this work, their tribological performance has been evaluated in combination with the different materials and surface coatings, as well as with the classical carburized steel gears. This will give an overview of the range of tribological systems where ester oils could be used. This research focussed on the scuffing load capacity, micropitting protection and power loss.;The influence of lubricants and material / surface coating combinations on the friction coefficient between gear tooth is discussed and evaluated. A numerical model for the energetic balance of the FZG gearbox has been developed for that purpose, integrating the mechanisms of power loss and heat evacuation. The model also calculates the equilibrium temperature of the gearbox as well as the influence of gearbox components in the overall power loss, providing a better understanding of the variation of the churning and friction losses and their influence in the total power loss.;The ADI material has very interesting properties and presents a behaviour similar to steel, although lower contact pressures must be used.;The surface coatings, specially the MoS2/Ti presented an outstanding increase of scuffing load capacity and also a considerable improvement in the energetic efficiency of gears.;The biodegradable non-toxic lubricants proved to be an advantageous solution for replacing mineral lubricants. They form a better tribological system than the mineral lubricant with all the materials and surface coatings tested.;So, the ester lubricants tested are environmentally compatible not only due to their biodegradability and low-toxicity but also due to the lower power consumption, better load carrying capacity and equal or better micropitting protection.
机译:自从首次使用齿轮以来,一直存在增加齿轮传动中功率密度,减少功率损耗,延长使用寿命和减轻重量的持续需求。为了满足这些需求,已经开发了新的解决方案,例如使用新材料,应用表面涂层,改进的表面处理,不同的硬化处理以及使用新的润滑剂。提出的任何新解决方案都必须具有技术性能优势如今,齿轮应用中的一些主要问题是划伤故障,微点蚀疲劳损伤(在弹性流体动力润滑(EHL)下组合滚动和滑动接触中观察到的接触疲劳磨损现象) )或混合的EHL /边界润滑条件)和功率损耗或效率。这些是在这项工作中用于评估新材料,齿轮的表面涂层和润滑剂的一些主要问题。多层复合表面涂层的适用性(提供的摩擦系数接近于用固体润滑剂如MoS2和石墨获得的摩擦系数)在这项工作中讨论了齿轮齿,主要涉及在正常工作条件下的齿轮效率和磨损负荷能力。还讨论了齿轮齿之间的平均摩擦系数,并将其与常规解决方案(碳化钢齿轮)进行比较。;人们对环境的意识日益增强,人们对可生物降解的无毒油的兴趣日益浓厚。当然,涉及摩擦,磨损,寿命等方面的较高润滑剂性能也对环境相容性有重要影响,因为过早磨损,高能量需求和低寿命也对环境有害。还讨论了在300oC下回火的(ADI)作为齿轮材料,主要涉及疲劳寿命,点蚀和微蚀以及功率损耗行为。;在这项工作中,研究了两种用于工业齿轮应用的新型环保润滑剂。这些油基于完全或高度饱和的酯,由可收获的原料生产。两种油都是可生物降解的,并且毒性低,被配制为替代工业齿轮中的矿物润滑剂,符合DIN51517的CLP规范。在此工作中评估了生物润滑剂的整体性能和适用性,并结合使用对它们的摩擦学性能进行了评估。不同的材料和表面涂层,以及经典的渗碳钢齿轮。这将概述可以使用酯油的摩擦学系统的范围。这项研究的重点是磨损能力,微点蚀保护和功率损耗。;讨论并评估了润滑剂和材料/表面涂层组合对齿轮齿间摩擦系数的影响。为此,已开发出FZG变速箱能量平衡的数值模型,其中整合了功率损失和热量散逸的机制。该模型还可以计算齿轮箱的平衡温度以及齿轮箱组件对总功率损耗的影响,从而可以更好地理解搅拌和摩擦损耗的变化及其对总功率损耗的影响。尽管必须使用较低的接触压力,但它具有非常有趣的性能并表现出与钢相似的性能。表面涂层,特别是MoS2 / Ti,显着提高了划痕负荷能力,并显着提高了齿轮的能量效率。 ;可生物降解的无毒润滑剂被证明是替代矿物润滑剂的有利解决方案。与所有经过测试的材料和表面涂层的矿物润滑剂相比,它们形成了比矿物润滑剂更好的摩擦学体系;因此,所测试的酯润滑剂不仅具有生物降解性和低毒性,而且具有较低的功耗和更好的负载,因此具有环境相容性承载能力和同等或更好的微点蚀保护。

著录项

  • 作者

    Martins, Ramiro Carneiro.;

  • 作者单位

    Universidade do Porto (Portugal).;

  • 授予单位 Universidade do Porto (Portugal).;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 245 p.
  • 总页数 245
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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