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首页> 外文期刊>Journal of Sound and Vibration >Structural optimization of an asymmetric automotive brake disc with cooling channels to avoid squeal
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Structural optimization of an asymmetric automotive brake disc with cooling channels to avoid squeal

机译:具有冷却通道的非对称汽车制动盘的结构优化,可避免发出尖叫声

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摘要

Brake squeal is still a major issue in the automotive industry due to comfort complaints of passengers and resulting high warranty costs. Many measures to avoid squeal have been discussed in the engineering community reaching from purely passive measures like the increase of damping, e.g. by the application of shims, to the active or semiactive suppression of squeal. While active measures can be effective but are elaborate and therefore more expensive, passive measure are less complex in most cases. This leads to the necessity to develop passive, economic and robust measures to avoid squeal. Asymmetry of the brake rotor has been proposed to achieve this goal and the resulting split of all double eigenfrequencies of the brake rotor has lately been shown to stabilize the system. Thus, a structural optimization of an automotive brake disc with cooling channels is presented in this paper with the objective to split all eigenfrequencies of the brake rotor in a certain frequency range by introducing asymmetry to the cooling channels. Constraints of the optimization are balance constraints, to guarantee a balanced operation for all rotor speeds, and minimal and maximal distance constraints of the cooling ribs, due to cooling and material strength requirements. First, a modeling approach of the brake disc with cooling channels is shortly presented which helps to avoid remeshing during the structural optimization. The introduced optimization problem is known to be highly nonlinear, nonconvex and with many local optima to be expected. Therefore, two approaches for the solution of the problem are chosen. The first, a deterministic one, is a Sequential Quadratic Programming (SQP) approach efficiently targeting local optima. In order to increase the possibility to find the global optimum, a set of randomly distributed starting configurations is chosen, leading to satisfying results. The other, a heuristic approach, uses a Genetic Algorithm (GA) directly aiming for the global optimum. The GA also delivers very satisfying results, nevertheless, the best solution has been found with the SQP approach. In order to validate the basic idea that a defined separation of eigenfrequencies helps to avoid squeal, modal analysis and squeal tests have been performed with a simplified disc with radial holes. The conducted experiments strongly support the theoretical findings and demonstrate the superior squeal behavior of the optimized disc.
机译:由于乘客对舒适度的抱怨和随之而来的高额保修成本,制动啸叫仍然是汽车行业的主要问题。在工程界中,已经讨论了许多避免尖叫的措施,这些措施来自纯粹的被动措施,例如增加阻尼。通过使用垫片,可以主动或半主动抑制尖叫。主动措施虽然有效但很复杂,因此成本较高,但被动措施在大多数情况下并不复杂。这导致必须制定被动,经济和有力的措施来避免尖叫声。已经提出了制动转子的不对称性以实现该目标,并且最近已经示出了制动转子的所有双本征频率的所得分裂使系统稳定。因此,本文提出了一种具有冷却通道的汽车制动盘的结构优化,其目的是通过将不对称性引入冷却通道,从而在一定的频率范围内划分制动转子的所有本征频率。由于冷却和材料强度的要求,优化的约束是平衡约束,以确保所有转子速度的平衡运行,以及冷却肋的最小和最大距离约束。首先,简要介绍了带有冷却通道的制动盘的建模方法,这有助于在结构优化过程中避免重新镶嵌。已知引入的优化问题是高度非线性的,非凸的,并且预期会有许多局部最优。因此,选择了两种解决问题的方法。第一种是确定性方法,是一种有效地针对局部最优的顺序二次规划(SQP)方法。为了增加找到全局最优值的可能性,选择了一组随机分布的起始配置,从而获得令人满意的结果。另一种是启发式方法,它直接使用遗传算法(GA)来实现全局最优。遗传算法还提供了非常令人满意的结果,但是,使用SQP方法已经找到了最佳解决方案。为了验证基本思想,即确定的特征频率分离有助于避免发出尖叫声,已经使用带有径向孔的简化圆盘进行了模态分析和尖叫测试。进行的实验有力地支持了理论研究,并证明了优化后椎间盘的出色尖叫行为。

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