Somerville, MA, United States of America

Joseph Gabay


Average Co-Inventor Count = 8.5

ph-index = 1


Company Filing History:


Years Active: 2023-2025

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4 patents (USPTO):

Title: Joseph Gabay: Innovator in Additive Manufacturing

Introduction

Joseph Gabay is a notable inventor based in Somerville, MA, who has made significant contributions to the field of additive manufacturing. With a total of four patents to his name, Gabay has focused on developing innovative techniques that enhance the efficiency and effectiveness of depowdering processes in additive fabrication.

Latest Patents

Gabay's latest patents include groundbreaking techniques for depowdering additively fabricated parts through vibratory motion. These techniques aim to separate powder from parts by applying vibration, which can dislodge and aerate the powder, improving its flowability. This innovation not only simplifies the removal of powder but also allows for automation, addressing challenges associated with manual depowdering operations. Another significant patent involves techniques for depowdering via gas flow, which directs gas onto or near the powder. This method is particularly beneficial for fragile green parts produced by binder jetting, as it minimizes the risk of damage while effectively removing powder.

Career Highlights

Joseph Gabay is currently employed at Desktop Metal, Inc., a company renowned for its advancements in metal 3D printing technology. His work at Desktop Metal has positioned him as a key player in the evolution of additive manufacturing processes.

Collaborations

Gabay collaborates with talented individuals such as Jamison Go and Michael Daniel Santorella, contributing to a dynamic team focused on pushing the boundaries of innovation in the industry.

Conclusion

Joseph Gabay's contributions to additive manufacturing through his innovative patents and collaborative efforts at Desktop Metal, Inc. highlight his role as a leading inventor in the field. His work continues to pave the way for advancements in the efficiency of additive fabrication processes.

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