Analysis of Tiny Piezoelectric Ultrasonic Linear Motor
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概要
- 論文の詳細を見る
A modified structure for tiny ultrasonic linear motors has been developed, and various shaft materials have been tested in order to improve dynamic properties. The shaft material has a direct influence on efficiency, reliability, and quality of the motors and their dynamic properties. The shaft material is crucial to achieve high performance. Shafts of with various materials, such as a stainless steel, stainless steel coated with diamond like carbon (DLC), a Pyrex, and a graphite, can make it possible to improve dynamic properties of the motors over a wide range of tribological conditions. For the motor with a stainless steel shaft coated with DLC at 47 kHz, its velocity is 6.5 mm/s and its force is 110 mN. When the motor has a Pyrex shaft, a force of 140 mN is reached at 52 kHz. Accordingly, the maximum force produced by a motor with a graphite shaft is estimated as 97 mN. The velocity of this motor was 15 mm/s. We found that graphite has a fine surface and a directional texture which can help a moving element achieve linear motion. Finally, the use of a cap resulted in significantly improving stable operation. A motor with a graphite or a Pyrex shaft showed very stable operation and improved dynamic characteristics.
- Published by the Japan Society of Applied Physics through the Institute of Pure and Applied Physicsの論文
- 2006-05-30
著者
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Kim Sangsig
Department Of Electrical Engineering And Institute For Nano Science Korea University
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KANG Chong-Yun
Thin Film Material Research Center, Korea Institute of Science and Technology
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Yoon Seok-jin
Thin Film Material Research Center Korea Institute Of Science And Technology
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Yoon Seok-Jin
Thin Film material Research Center, KIST, P.O. Box 131, Cheongryang, Seoul 130-650, Korea
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Ko Hyun-Phill
Thin Film material Research Center, KIST, P.O. Box 131, Cheongryang, Seoul 130-650, Korea
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Lee Kyong-Jae
Thin Film material Research Center, KIST, P.O. Box 131, Cheongryang, Seoul 130-650, Korea
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Yoo Kyoung-Ho
Thin Film material Research Center, KIST, P.O. Box 131, Cheongryang, Seoul 130-650, Korea
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Kang Chong-Yun
Thin Film material Research Center, KIST, P.O. Box 131, Cheongryang, Seoul 130-650, Korea
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