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A NEW TECHNIQUE FOR EVALUATING DISASSEMBLY AND MAINTENANCE USING AN EXAMPLE OF UNDERGROUND ESCALATOR

机译:一种以地下自动扶梯为例的解体和维修评估新技术

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Few products are designed for disassembly or easy dismantling. As manufacturers recognize their responsibility for products at the end of their operational lives, the dismantling of products has emerged as a serious consideration in manufacturing. Disassembly is generally achieved by taking apart individual components or subassemblies of a large product. In situations involving integrated design principles, certain assembly procedures or joining techniques can make the disassembly of a product and separation of components into useful and non-useful groups very difficult. Designers are becoming steadily aware of the problem, and are employing techniques that allow them to design with greater responsibility - Design for Disassembly (DFD) is such techniques. In the case of a durable good with a long life cycle or a product with parts subject to wear, maintainability/serviceability may be more important than initial product acquisition cost, and the product must be designed for easy maintenance. The DFD principles identify the ease with which products can be fabricated, maintained, serviced, and recycled. This paper examines a special case of evaluation of escalator housing using DFD method. Escalator system plays an important role in transporting passengers safely between underground and station platforms. However, due to the complex working conditions such as uneven load, extreme weather etc. of the escalator system, maintenance is constantly needed and unexpected failure and repair also happens frequently. The escalators used in train subway/metro stations are exposed to some extreme operating conditions such as extreme weather/temperature, uneven loads and shock etc. that can greatly shorten their life span. The increase to labor and maintenance cost impedes the escalator's ability to efficiently serve its riders and affects its overall stability. The failure and repair of the escalator systems take a significant amount of labor and cost, in addition to customer dissatisfactions. This paper examines and identifies different types of failure modes and defects that occur in the major components of escalator drive systems, such as the motor and its drive chain system, handrail and its drive system, bearings/lubrication systems that are in adjunct with the bearing shaft assembly. The normal maintenance and repair of these sub systems is time consuming. For evaluating the design of the in the escalator, a new approach involving Rating Chart is used. This paper examines various existing DFD techniques and compares them with the Rating Chart method to evaluate DFD efficiency. The paper concludes by showing the robustness of the new DFD methodology in an environment where the products are exposed to extreme working conditions.
机译:很少有产品设计用于拆卸或易于拆卸。随着制造商意识到使用寿命结束后对产品的责任,拆卸产品已成为制造中的一个认真考虑。通常通过拆开大产品的单个组件或子组件来实现拆卸。在涉及集成设计原理的情况下,某些组装程序或连接技术可能会使产品的拆卸和将组件分为有用和不有用的组变得非常困难。设计师逐渐意识到问题所在,并采用使他们承担更大责任的技术-拆卸设计(DFD)就是这样的技术。对于使用寿命长的耐用产品或部件易磨损的产品,可维护性/可维修性可能比初始产品购置成本更为重要,并且产品必须设计得易于维护。 DFD原则确定了产品的制造,维护,维修和回收的难易程度。本文探讨了使用DFD方法评估自动扶梯机壳的一种特殊情况。自动扶梯系统在地下和车站平台之间安全运送乘客方面发挥着重要作用。然而,由于自动扶梯系统的复杂工作条件,例如负载不均匀,极端天气等,经常需要维护,并且意外故障和维修也经常发生。火车地铁/地铁站中使用的自动扶梯要承受极端的工作条件,例如极端的天气/温度,不均匀的负载和冲击等,这会大大缩短其使用寿命。人工和维护成本的增加阻碍了自动扶梯有效服务其乘员的能力,并影响了其总体稳定性。除客户不满意之外,自动扶梯系统的故障和维修还需要大量的人工和成本。本文研究并确定了自动扶梯驱动系统主要组件中发生的不同类型的故障模式和缺陷,例如电动机及其驱动链系统,扶手及其驱动系统,与轴承配套的轴承/润滑系统轴组件。这些子系统的正常维护和维修非常耗时。为了评估自动扶梯的设计,使用了一种涉及“评级表”的新方法。本文研究了各种现有的DFD技术,并将其与“评级图”方法进行比较,以评估DFD效率。本文通过展示新的DFD方法在产品处于极端工作条件下的环境中的鲁棒性来结束。

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