Pickerington, OH, United States of America

Kwan Y Kim


Average Co-Inventor Count = 2.3

ph-index = 2

Forward Citations = 37(Granted Patents)


Company Filing History:


Years Active: 1982-1988

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3 patents (USPTO):Explore Patents

Title: Kwan Y Kim: Innovator in Mineral Fiber Technology

Introduction

Kwan Y Kim is a notable inventor based in Pickerington, OH (US). He has made significant contributions to the field of mineral fiber technology, holding a total of 3 patents. His work focuses on improving methods and apparatuses for heating and producing fibrous materials.

Latest Patents

Kwan Y Kim's latest patents include a "Method and apparatus for heating mineral fibers" and a "Glass fiber-forming apparatus." The first patent describes a method for heating fibrous mineral insulation material using an oven divided into zones, along with a conveyor system. This innovative design allows for efficient heating of the insulation material through the directed hot gases and distinct heating means. The second patent relates to an apparatus for producing fibers from heat-softened mineral material, specifically glass. It introduces an orifice plate with grooves that enhance the fiber drawing process, showcasing Kim's commitment to advancing technology in this area.

Career Highlights

Kwan Y Kim is currently employed at Owens Corning Fiberglas Corporation, where he continues to develop innovative solutions in the field of mineral fibers. His expertise and inventions have contributed to the company's reputation as a leader in fiberglass technology.

Collaborations

Throughout his career, Kwan Y Kim has collaborated with talented individuals such as Yee Lee and James S Belt. These partnerships have fostered a creative environment that encourages innovation and the development of new technologies.

Conclusion

Kwan Y Kim's contributions to mineral fiber technology through his patents and work at Owens Corning Fiberglas Corporation highlight his role as a significant inventor in the industry. His innovative approaches continue to shape the future of fibrous materials.

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