Henderson, NV, United States of America

Yoji Kosaka



 

Average Co-Inventor Count = 2.3

ph-index = 3

Forward Citations = 63(Granted Patents)


Company Filing History:


Years Active: 2004-2020

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13 patents (USPTO):Explore Patents

Title: The Innovations of Yoji Kosaka

Introduction

Yoji Kosaka is a prominent inventor based in Henderson, NV, known for his significant contributions to the field of materials science, particularly in titanium alloys. With a total of 13 patents to his name, Kosaka has made remarkable advancements that enhance the performance of titanium in various applications.

Latest Patents

Among his latest innovations is a beta titanium alloy sheet designed for elevated temperature applications. This cold rollable beta titanium alloy exhibits excellent tensile strength, as well as creep and oxidation resistance at high temperatures. The alloy composition includes molybdenum, niobium, silicon, aluminum, zirconium, tin, and oxygen, with specific weight percentages that optimize its performance. Additionally, he has developed a method for creating a high-strength alpha-beta titanium alloy, which involves forming a melt and solidifying it to create an ingot. This method ensures precise concentrations of aluminum, vanadium, silicon, iron, and oxygen, resulting in a superior alloy.

Career Highlights

Yoji Kosaka has dedicated his career to advancing titanium technology, working at Titanium Metals Corporation, a leader in the titanium industry. His work has not only contributed to the company's success but has also positioned him as a key figure in the development of high-performance materials.

Collaborations

Throughout his career, Kosaka has collaborated with notable colleagues, including Roger Owen Thomas and Paul Garratt. These partnerships have fostered innovation and have led to the successful development of new materials and processes.

Conclusion

Yoji Kosaka's contributions to the field of titanium alloys have significantly impacted various industries. His innovative patents and collaborative efforts continue to push the boundaries of material science, ensuring that titanium remains a vital resource for advanced applications.

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