Worcester, MA, United States of America

Paul R Nastas


Average Co-Inventor Count = 2.0

ph-index = 1

Forward Citations = 1(Granted Patents)


Company Filing History:


Years Active: 2004

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1 patent (USPTO):Explore Patents

Title: Paul R. Nastas: Innovator in Magnetic Compounds

Introduction

Paul R. Nastas, an inventive mind based in Worcester, MA, has made significant contributions to the field of materials science. With his notable patent, he showcases an innovative approach to creating thermally stable, high-temperature magnetic compounds.

Latest Patents

Nastas holds a patent for a unique thermally stable, high-temperature samarium cobalt molding compound. This innovative magnetic compound consists of three primary components: polyphenylene sulfide (PPS), coated samarium cobalt, and an optional internal lubricant. The formulation includes 25% to 50% by volume of PPS, 50% to 70% by volume of the coated samarium cobalt, which comprises kaolin and potassium silicate. The PPS polymer not only allows for precise injection molding but also provides a low coefficient of linear thermal expansion, while the samarium cobalt ensures thermal stability. The coating of potassium silicate and kaolin serves to protect the PPS from degradation during the manufacturing process.

Career Highlights

Paul Nastas works at the Arnold Engineering Company, where he applies his expertise in material sciences to develop advanced products that meet industry standards. His work emphasizes innovation in high-performance materials, particularly in magnetic applications.

Collaborations

In his professional journey, Nastas collaborates with his coworker, James R. Carlberg, to enhance the development of novel materials and expand the boundaries of engineering solutions in their field. Their partnership underscores the value of teamwork in driving innovative advancements in engineering.

Conclusion

Paul R. Nastas stands out as a dedicated inventor whose work is paving the way for future innovations in advanced materials. His contributions, particularly in the realm of high-temperature magnetic compounds, demonstrate the potential for new technologies and improved performance in various applications.

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