首页> 外文会议>IEEE Holm Conference on Electrical Contacts >Experimental verification/comparison between standard sphere against flat and a new wave structured contact surface topography developed using a numerical contact model; as applied to an existing MQS contact design
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Experimental verification/comparison between standard sphere against flat and a new wave structured contact surface topography developed using a numerical contact model; as applied to an existing MQS contact design

机译:使用数值接触型号开发的标准球与新的波形结构接触表面形貌的实验验证/比较;适用于现有的MQS联系设计

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By using a Papkovich Neuber potential based 3D numerical contact modeling method [1], it has been shown that using a wave structured contact surface topography can reduce contact interface resistance by a factor of 2 at a given normal load. It has been proposed that a wave structured topography can be used to reduce contact normal force as a method to reduce connector mating forces. Since there is more and more pressure to manage/minimize connector engagement forces as advancing technology calls for greater connector circuit/pin counts, using these wave structured topographies represents a way that these demands could be met. A comparative study will show that contacts with wave structured contact surface topographies can meet and exceed the mechanical and electrical performance of similar standard sphere against flat contact interfaces. By applying a wave structure to an existing standard `sphere on flat' contact interface design and subsequently reducing the contact normal force by 50% to cut the contact engagement force in half; the current carrying capability of a contact design still increased by 16% and the specified vibration stability requirement for the contacts was still met. If this is done with no normal force reduction, a 22% increase in interface current carrying capacity can be achieved with a vibration stability superior to the standard sphere against flat surfaced contact design. The functionally evaluated electrical characteristics of such wave structured and standard contact interfaces are in agreement with the numerical predictions.
机译:通过使用Papkovich Neuber基于基于3D数值触点建模方法[1],已经显示使用波形结构化接触表面形貌可以在给定的正常负载下将接触界面电阻降低2倍。已经提出了波结构的形貌可用于减少接触法线力作为减少连接器交配力的方法。由于管理/最小化连接器接合力量越来越大,因为推进技术要求更大的连接器电路/引脚计数,因此使用这些波结构的地形表示可以满足这些需求的方式。比较研究将显示与波结构触点表面拓扑的触点可以满足并超过与平坦接触界面相似标准球体的机械和电气性能。通过将波浪结构应用于现有的标准`球体上的平面“接触界面设计,随后将接触法线减少50±%以切成两半以减少触点接合力;接触设计的电流承载能力仍然增加了16 %,并且仍然满足触点的指定振动稳定性要求。如果这是没有正常力减少的情况下完成的,则可以通过振动稳定性优于平坦的表面接触设计,实现界面电流承载能力的22 %。这种波结构和标准触点接口的功能评估的电特性与数值预测一致。

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