Reliability-Informed Life-Cycle Warranty Cost Analysis: A Case Study on a Transmission in Agricultural Equipment

Meng Li, Jinqiang Liu, V. Nemani, Navaid Ahmed, G. Kremer, Chao Hu
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引用次数: 2

Abstract

In agricultural and industrial equipment, both new and remanufactured systems are often available for warranty coverage. In such cases, it may be challenging for equipment manufacturers to properly trade-off between the system reliability and the cost associated with a replacement option (e.g., replace with a new or remanufactured system). To address this problem, we present a reliability-informed life-cycle warranty cost (LCWC) analysis framework that enables equipment manufacturers to evaluate different warranty policies. These warranty policies differ in whether a new or remanufactured system is used for replacement in the case of product failure. The novelty of this LCWC analysis framework lies in its ability to incorporate real-world field reliability data into warranty policy assessment using probabilistic warranty cost models that consider multiple life cycles. First, the reliability functions for the new and remanufactured systems are built as the time-to-failure distributions that provide the best-fit to the field reliability data. Then, these reliability functions and their corresponding warranty policies are used to build the LCWC models according to the specific warranty terms. Finally, Monte Carlo simulation is used to propagate the time-to-failure uncertainty of each system, modeled by its reliability function, through each LCWC model to produce a probability distribution of the LCWC. The effectiveness of the proposed reliability-informed LCWC analysis framework is demonstrated with a real-world case study on a transmission used in some agricultural equipment.
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基于可靠性的全生命周期保修成本分析:以某农业设备变速器为例
在农业和工业设备中,新的和再制造的系统通常都有保修范围。在这种情况下,对于设备制造商来说,在系统可靠性和与替换选项(例如,用新的或再制造的系统替换)相关的成本之间进行适当的权衡可能是具有挑战性的。为了解决这个问题,我们提出了一个基于可靠性的生命周期保修成本(LCWC)分析框架,使设备制造商能够评估不同的保修政策。这些保修政策的不同之处在于,在产品发生故障的情况下,是否使用新的或再制造的系统进行更换。这种LCWC分析框架的新颖之处在于,它能够使用考虑多个生命周期的概率保修成本模型,将实际的现场可靠性数据纳入保修政策评估。首先,将新系统和再制造系统的可靠性函数构建为最适合现场可靠性数据的失效时间分布。然后,根据具体的质保条款,利用这些可靠性函数及其相应的质保政策,建立LCWC模型。最后,利用蒙特卡罗仿真将每个系统的失效时间不确定性,通过可靠性函数建模,传播到每个LCWC模型,得到LCWC的概率分布。通过对一些农业设备中使用的变速器的实际案例研究,证明了所提出的基于可靠性的LCWC分析框架的有效性。
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