PREDICTION OF SUSPENSION RESOURCEVEHICLE

Dyakov Ivan Fydorovich
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Abstract

The issues of forecasting the resource of the suspension from the leaf spring of the vehicle using energy consumption during cyclic loading are presented. A refined formula for calculating energy consumption is given, which has a closer connection with failures of parts in operating conditions than kilometers of mileage. It is shown that when the vehicle is moving, the suspension is loaded and unloaded, described by the «hysteresis loop» calculation method. The area of the hysteresis loop is used in predicting the suspension resource using a neural network. This makes it possible to increase the utilization rate of the vehicle by reducing costs and downtime during current repairs.
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悬架资源车预测
提出了利用循环加载过程中的能量消耗预测车辆板簧悬架资源的问题。给出了一个精细化的能耗计算公式,它与零件在工作状态下的故障比与公里数的关系更密切。结果表明,在车辆运动过程中,悬架会被加载和卸载,该过程由“滞回线”计算方法描述。利用滞回线的面积,利用神经网络预测悬架资源。这使得通过减少当前维修期间的成本和停机时间来提高车辆的利用率成为可能。
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