High Tc SQUID System for Detection of Small Metallic Contaminant in Industrial Products

被引:13
作者
Tanaka, Saburo [1 ]
Akai, Tomonori [1 ]
Hatsukade, Yoshimi [1 ]
Ohtani, Takeyoshi [2 ]
Suzuki, Shuichi [2 ]
机构
[1] Toyohashi Univ Technol, Toyohashi, Aichi 4418580, Japan
[2] Adv Food Technol Co Ltd, Toyohashi, Aichi 4418113, Japan
关键词
Lithium ion battery; magnetic detection; metallic contaminant; small particles; SQUID; FOOD; MICROSCOPE;
D O I
10.1109/TASC.2009.2019655
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A three channel High-Tc SQUID system for detection of magnetic contaminants in industrial products was developed. Finding ultra-small metallic contaminants is a big issue for manufacturers producing commercial products such as lithium ion batteries. When the contamination does occur, the manufacturer of the product suffers a great loss to recall the tainted products. The outer dimension of metallic particles less than 100 micron can not be detected by X-ray imaging, which is commonly used as the inspection method. Therefore, a highly sensitive detection system for small contaminants is required. We developed a detection system based on a three channel high-Tc SQUID microscope with a high performance magnetic shield. Three SQUIDs were installed in one microscope-type cryostat with a 3 sapphire vacuum window which separates the SQUID and atmosphere. This design enables the SQUID to approach an object to be measured as close as 1 mm. The minimal detectable size of the particle is also highly dependent on the magnetic field noise of the SQUID. Therefore, we employed double transformer coupling, which lowers the noise. One transformer was placed at 77 K and the other was at room temperature (RT). As a result, the magnetic field noise of the SQUID was reduced by 36%. Finally we could successfully measure small iron particles as small as 30 micron. This detection level was difficult to achieve when using a conventional X-ray detection method.
引用
收藏
页码:882 / 885
页数:4
相关论文
共 12 条
[1]   A SQUID-based metal detector - comparison to coil and x-ray systems [J].
Bick, M ;
Sullivan, P ;
Tilbrook, DL ;
Du, J ;
Gnanarajan, S ;
Leslie, KE ;
Foley, CP .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2005, 18 (03) :346-351
[2]  
Donaldson GB, 1996, NATO ADV SCI I E-APP, V329, P599
[3]   Detection of magnetic contaminations in industrial products using HTS SQUIDs [J].
Krause, HJ ;
Panaitov, GI ;
Wolters, N ;
Lomparski, D ;
Zander, W ;
Zhang, Y ;
Oberdoerffer, E ;
Wollersheim, D ;
Wilke, W .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2005, 15 (02) :729-732
[4]   DOUBLE TRANSFORMER COUPLING TO A VERY LOW-NOISE SQUID [J].
MUHLFELDER, B ;
JOHNSON, W ;
CROMAR, MW .
IEEE TRANSACTIONS ON MAGNETICS, 1983, 19 (03) :303-307
[5]   Measurement of metallic contaminants in food with a high-Tc SQUID [J].
Tanaka, S ;
Natsume, M ;
Uchida, M ;
Hotta, N ;
Matsuda, T ;
Spanut, ZA ;
Hatsukade, Y .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2004, 17 (04) :620-623
[6]   High-Tc SQUID metal detection system for food and pharmaceutical contaminants [J].
Tanaka, S ;
Kudo, S ;
Hansukade, Y ;
Nagaishi, T ;
Nishi, K ;
Ota, H ;
Suzuki, S .
IEICE TRANSACTIONS ON ELECTRONICS, 2005, E88C (02) :175-179
[7]   Development of high-Tc SQUID microscope with flux guide [J].
Tanaka, S ;
Matsuda, K ;
Yamazaki, O ;
Natsume, M ;
Ota, H ;
Mizoguchi, T .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2002, 15 (01) :146-149
[8]   High-Tc SQUID microscope with sample chamber [J].
Tanaka, S ;
Yamazaki, O ;
Shimizu, R ;
Saito, Y .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 1999, 12 (11) :809-812
[9]  
TANAKA S, 2008, IEICE T ELECT
[10]   A high-Tc SQUID micro-detector with a high performance magnetic shield for contaminant detection in industrial products [J].
Tanaka, Saburo ;
Fujita, H. ;
Hatsukade, Y. ;
Otani, T. ;
Suzuki, S. ;
Nagaishi, T. .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2007, 20 (11) :S385-S388