DEVELOPMENT OF ADAPTIVE CONNECTORS BASED ON SHAPE MEMORY ALLOYS

被引:0
|
作者
Hofer, Andreas [1 ]
Pagel, Kenny [1 ]
Thuesing, Kai [1 ]
Langbein, Sven [2 ]
Lembke, Dietrich [3 ]
Drossel, Welf-Guntram [1 ]
机构
[1] Fraunhofer Inst Machine Tools & Forming Technol I, Dresden, Germany
[2] Kunststoffverarbeitung Hoffmann GmbH, Heiligenhaus, Germany
[3] Ecl Engn Consultants, Leipzig, Germany
关键词
shape-memory-alloy; actuator; self-sufficient; adaptive; power connectors;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A major limiting factor in the charging time of fast-charging electrical vehicles is the maximum electrical power that can be transmitted through the contact points between the charging plug and the vehicle inlet. The electrical contact resistance (ECR) thereby plays a decisive role. By increasing the contact surface between these contact points, it is possible to decrease the ECR, leading to higher transmission power and reduced charging times. Due to the limited construction space, high contact forces between the charging plug and the vehicle inlet are required to reduce the ECR. However, high contact forces complicate the insertion of the plug by hand. In consequence, lower contact forces and significant heating of the connection have to be accepted. For this reason, today's systems (e.g., Combined Charging Systems (CCS)) include active cooling of the contacts. This paper presents an alternate system that temporarily increases the contact force of connectors during charging with shape memory alloy (SMA) actuators. To ensure industrial applicability, the research is conducted on the example of a CCS Type 2 charging plug. Initially, the correlations between extraction force, contact normal force and resulting ECR are investigated experimentally. Subsequently, basic mechanisms for increasing the contact normal force with SMA wires are presented and experimentally validated. As a result, a reduction in ECR of up to 60% has been experimentally demonstrated.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Machining of NiTi based shape memory alloys
    Weinert, K
    Petzoldt, V
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2004, 378 (1-2): : 180 - 184
  • [32] Processing of CuZr based shape memory alloys
    Biffi, Carlo Alberto
    Bassani, Paola
    Casati, Riccardo
    Vedani, Maurizio
    Tuissi, Ausonio
    ADVANCES IN MATERIALS AND PROCESSING TECHNOLOGIES XV, 2014, 773-774 : 534 - +
  • [33] NiTiHf-based shape memory alloys
    Karaca, H. E.
    Acar, E.
    Tobe, H.
    Saghaian, S. M.
    MATERIALS SCIENCE AND TECHNOLOGY, 2014, 30 (13A) : 1530 - 1544
  • [34] Trimorph actuation based on shape memory alloys
    Craciunescu, CM
    Mihalca, I
    Budau, V
    JOURNAL OF OPTOELECTRONICS AND ADVANCED MATERIALS, 2005, 7 (02): : 1113 - 1120
  • [35] PROPERTIES AND USES OF SHAPE-MEMORY CONNECTORS
    GARRETSON, C
    STOCKEL, D
    METALL, 1987, 41 (01): : 22 - 25
  • [36] Development of an engineering model for ferromagnetic shape memory alloys
    Tani, Yoshiaki
    Todaka, Takashi
    Enokizono, Masato
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2008, 320 (20) : E743 - E745
  • [37] Modelling and control of an adaptive tuned mass damper based on shape memory alloys and eddy currents
    Berardengo, M.
    Cigada, A.
    Guanziroli, F.
    Manzoni, S.
    JOURNAL OF SOUND AND VIBRATION, 2015, 349 : 18 - 38
  • [38] Hinged Adaptive Fiber-Rubber Composites Driven by Shape Memory Alloys-Development and Simulation
    Lohse, Felix
    Annadata, Achyuth Ram
    Haentzsche, Eric
    Gereke, Thomas
    Truemper, Wolfgang
    Cherif, Chokri
    MATERIALS, 2022, 15 (11)
  • [39] Investigation of Shape Memory Behavior in Cu-Based Quaternary Shape Memory Alloys
    Unlu, N.
    Ozkul, I.
    Canbay, C. Aksu
    TURKISH PHYSICAL SOCIETY 34TH INTERNATIONAL PHYSICS CONGRESS (TPS34), 2018, 2042
  • [40] SHAPE MEMORY ALLOYS
    WAYMAN, CM
    MRS BULLETIN, 1993, 18 (04) : 49 - 56