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Rollover Analysis of Heavy Vehicle Bus

机译:重型车辆总线的翻转分析

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Rollover is motor vehicle accident that occurs when vehicle is tipping over onto its side or roof. Due to its fatality rate, the Malaysian government reinforced an Economic Commission for Europe of the United Nations (UN/ECE) Regulation no. 66 (R66) upon bus construction. This is to prevent the catastrophic consequences of rollover accidents. The R66 regulation provides an option of certification based on full-scale vehicle testing that maitaning the survival space. Therefore research that contribute to the development of safe transportation vehicle under rollover is really important. The physical prototype of rollover test can be simplified using simulation model. Using this motivation, the characteristic of heavy vehicle rolleover is investigated in this paper. The simulation was performed using ANSYS simulation tool and simplified by locating the position of the bus in unstable equilibriumm, just before it hit the ground. Another method is to perform a quasi-static loading test. The quasi-static simulation test was performed using impact load that directed towards the side of beam around the centre of frame body. The dynamic response due to rollover impact was determined using an Explicit Dynamic Analysis in ANSYS. The stress maximum stress first developed around the impact area before lag the stress stream to the opposite side. It can be observed that the maximum stress point is located at the middle structure of impact side. After few times of impact, the maximum stress starts to changes to the opposite side. Quasistatic simulation result in higher total deformation on impact side area. It also indicates high maximum stress point around the middle structure.
机译:滚动是当车辆划船到其侧面或屋顶时发生的机动车事故。由于其死亡率,马来西亚政府加强了联合国欧洲经济委员会(联合国/欧洲委员会)条例。 66(R66)在公共汽车施工时。这是为了防止翻转事故的灾难性后果。 R66规定提供了基于Maitaning生存空间的全规模车辆测试的认证选择。因此,在翻转下有助于安全运输车辆的发展的研究非常重要。可以使用仿真模型简化翻转试验的物理原型。使用这种动机,在本文中研究了重型车辆滚动器的特性。使用ANSYS仿真工具进行模拟,并通过在击中地面之前定位公共汽车的位置以不稳定的均衡中的位置进行简化。另一种方法是执行准静态加载测试。使用撞击载荷进行准静态仿真试验,该冲击载荷围绕框架主体围绕梁侧的侧面进行。使用ANSYS中的显式动态分析确定导致的动态响应。在将应力流滞后到相对侧之前,应力最大应力首先在冲击区域周围开发。可以观察到最大应力点位于冲击侧的中间结构。在撞击几次后,最大应力开始变为对面。 Quasistatic模拟导致冲击侧区域更高的总变形。它还表示中间结构周围的高最大应力点。

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