This inventor holds 1 USPTO granted patent. Top assignee: Simmonds Precision Products, Inc.. Active years: 1989.
Company Filing History:
Years Active: 1989
Title: Michael E Ellinger: Innovator in Optical Shaft Sensing Technology
Introduction
Michael E Ellinger is a notable inventor based in North Ferrisburg, Vermont, USA. He has made significant contributions to the field of optical sensing technology, particularly in the detection of shaft speed and torsional displacement. His innovative approach combines various beam-altering materials to enhance the functionality of sensing systems.
Latest Patents
Michael E Ellinger holds a patent for an "Optical shaft torsional displacement and speed sensing system." This invention features a rotating shaft torsional displacement and speed detector that utilizes a light beam. The system impinges on one or both ends of the rotating shaft, employing different combinations of beam-altering materials such as reflecting and non-reflecting surfaces, wave retarding plates, and linear polarizers. These materials modify the polarization or magnitude of the light beam in a predictable manner, enabling the detection of shaft speed and torsional displacement between the front and rear shaft ends. He has 1 patent to his name.
Career Highlights
Michael E Ellinger has been associated with Simmonds Precision Products, Inc., where he has applied his expertise in optical sensing technology. His work has contributed to advancements in precision measurement systems, enhancing the reliability and accuracy of various applications.
Collaborations
Throughout his career, Michael has collaborated with notable colleagues, including William B Spillman, Jr. and Robert Edward Rudd, III. These partnerships have fostered innovation and development in their respective fields.
Conclusion
Michael E Ellinger's contributions to optical sensing technology exemplify the spirit of innovation. His patent for an optical shaft sensing system showcases his ability to merge technology with practical applications. His work continues to influence advancements in precision measurement systems.