Hingham, MA, United States of America

Jeffrey Von Loesecke


Average Co-Inventor Count = 6.4

ph-index = 1


Company Filing History:


Years Active: 2023-2025

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3 patents (USPTO):Explore Patents

Title: Innovations by Jeffrey Von Loesecke in Additive Fabrication

Introduction

Jeffrey Von Loesecke is an accomplished inventor based in Hingham, MA, known for his contributions to the field of additive manufacturing. With a total of three patents to his name, he has made significant strides in improving the efficiency of depowdering processes in additive fabrication.

Latest Patents

His latest patents focus on innovative techniques for depowdering additively fabricated parts through vibratory motion. One of his notable patents describes methods that separate powder from parts by applying vibration to the powder, the parts, and any structures mechanically connected to them. This application of vibration enhances the flowability of the powder, making it easier to remove using suitable means. Additionally, he has developed techniques that automate the depowdering process, addressing challenges associated with manual operations. Another patent elaborates on the fabrication of auxiliary structures that assist in the depowdering process, which can be created alongside the main parts during additive fabrication.

Career Highlights

Jeffrey is currently employed at Desktop Metal, Inc., a company that specializes in advanced manufacturing technologies. His work focuses on enhancing the additive manufacturing process, particularly in the area of powder removal, which is crucial for the quality and efficiency of 3D printed parts.

Collaborations

He collaborates with talented individuals such as Jamison Go and Emanuel Michael Sachs, contributing to a dynamic team that drives innovation in the field of additive manufacturing.

Conclusion

Jeffrey Von Loesecke's work in developing techniques for depowdering additively fabricated parts showcases his commitment to advancing manufacturing technologies. His contributions are paving the way for more efficient and effective additive fabrication processes.

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