• Title/Summary/Keyword: Torsion Joint Yoke

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Development of a Torsion Joint Yoke for Motor-Driven Power Steering System Using a Double-Action Extrusion Process (더블-액션 압출공정을 적용한 전동조향장치용 토션조인트 요크 개발)

  • Kim, H.M.;Kim, Y.K.;Park, Y.B.
    • Transactions of Materials Processing
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    • v.21 no.8
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    • pp.473-478
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    • 2012
  • The yoke, a component of conventional motor-driven power steering system, often contains welding defects from its manufacturing process. To eliminate these defects, the precision cold forging process has been tried. In this study, the double-action complex forging has been used to manufacture a torsion joint yoke. The backward extrusion proved faster than the forward extrusion in forging of the product. The double-action complex forging process utilized an upper die composed of a punch, a punch guide, a disc spring and a coil spring. The forged material pushes up the punch guide, and then the disc spring and the coil spring balances the backward extrusion force. Consequently, the flow of material was essentially in the forward direction, resulting in a successful forging operation. The forging load of Al 6061-T6 was higher than that of the automotive structural hot rolled plate.

A Study on the Development of High Torque Composite Propeller Shaft (고토크 복합재 프로펠러 샤프트 개발에 관한 연구)

  • 박지상;황경정;김태욱;윤형석
    • Proceedings of the Korean Society For Composite Materials Conference
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    • 2002.05a
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    • pp.22-26
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    • 2002
  • The goal of this study is to replace the current forward 2-piece propeller shaft of 8 ton large truck made of steel with 1-piece composite propeller shaft. A low cost Glass/Epoxy composite propeller shafts were successfully developed, which satisfy requirements such as the capacity of static torque transfer, fatigue strength and bending natural frequency. Devising secure joining method of a composite tube and metal yoke was the most critical issue in successful development of a high torque composite propeller shaft. In this study, joining method using thermal interference fit was adopted for composite to metal joint. Optimum conditions of heating temperature and interference level of thermal interference fit were determined from thermal stress analysis using 3D finite element method. Static torsion test, fatigue test, RPM and balance test were performed to verify the design.

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