Fiber Fuse: Light-Induced Continuous Breakdown of Silica Glass Optical Fiber (NIMS Monographs)
Shin-Ichi Todoroki
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Description for Fiber Fuse: Light-Induced Continuous Breakdown of Silica Glass Optical Fiber (NIMS Monographs)
Paperback. Fiber Fuse Series: NIMS Monographs. Num Pages: 71 pages, 35 black & white illustrations, 16 colour illustrations, 6 black & white tables, biography. BIC Classification: TTBF. Category: (P) Professional & Vocational. Dimension: 157 x 235 x 4. Weight in Grams: 122.
This book describes the fiber fuse phenomenon that causes a serious problem for the present optical communication systems. High-power light often brings about catastrophic damage to optical devices. Silica glass optical fibers with ultralow transmission loss are not the exception. A fiber fuse appears in a heated region of the fiber cable delivering a few watts of light and runs toward the light source destroying its core region. Understanding this phenomenon is a necessary first step in the development of future optical communication systems. This book provides supplementary videos and photographs to help understand what occurs in the fiber, including ... Read more
This book describes the fiber fuse phenomenon that causes a serious problem for the present optical communication systems. High-power light often brings about catastrophic damage to optical devices. Silica glass optical fibers with ultralow transmission loss are not the exception. A fiber fuse appears in a heated region of the fiber cable delivering a few watts of light and runs toward the light source destroying its core region. Understanding this phenomenon is a necessary first step in the development of future optical communication systems. This book provides supplementary videos and photographs to help understand what occurs in the fiber, including ... Read more
Product Details
Format
Paperback
Publication date
2014
Publisher
Springer
Condition
New
Series
NIMS Monographs
Number of Pages
58
Place of Publication
Tokyo, Japan
ISBN
9784431545767
SKU
V9784431545767
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15
About Shin-Ichi Todoroki
Todoroki Shin-ichi Photonic Materials Unit, National Institute for Materials Science, Ibaraki, Japan.
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