Urawa, Japan

Kyugo Gotoh


Average Co-Inventor Count = 4.0

ph-index = 1

Forward Citations = 13(Granted Patents)


Company Filing History:


Years Active: 1982

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1 patent (USPTO):Explore Patents

Title: Kyugo Gotoh: Innovator in Refractory Composition

Introduction

Kyugo Gotoh is a notable inventor based in Urawa, Japan. He is recognized for his contributions to the field of refractory materials, particularly through his innovative patent related to unfired refractory compositions. His work has significant implications for industries that rely on high-performance materials in extreme conditions.

Latest Patents

Kyugo Gotoh holds a patent for an unfired refractory composition. This composition comprises a refractory aggregate and a binder, which includes a water-soluble or water-dispersible siliceous binder, a carbonizable organic binder, and a phosphate type hardening agent. The unique formulation allows the composition to be moldable and hardenable at normal temperatures, providing excellent mechanical strength across a range of temperatures. This innovation effectively extends the life of furnace liners and enhances their performance.

Career Highlights

Throughout his career, Kyugo Gotoh has worked with prominent companies, including Mizusawa Kazahu Kogyo and Mitsubishi Corporation. His experience in these organizations has contributed to his expertise in developing advanced refractory materials. His innovative approach has positioned him as a key figure in the field.

Collaborations

Kyugo Gotoh has collaborated with notable professionals in his field, including Hiroyuki Naito and Takashi Maruya. These collaborations have fostered a productive exchange of ideas and have further advanced the development of refractory technologies.

Conclusion

Kyugo Gotoh's contributions to the field of refractory compositions demonstrate his innovative spirit and commitment to enhancing material performance. His patent reflects a significant advancement in the industry, showcasing the potential for improved durability and efficiency in high-temperature applications.

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