Latency optimization of magnetic actuator for optics manufacturing

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OriginalspracheEnglisch
Titel des Sammelwerks2023 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023
Herausgeber (Verlag)Institute of Electrical and Electronics Engineers Inc.
ISBN (elektronisch)9798350329612
ISBN (Print)979-8-3503-2962-9
PublikationsstatusVeröffentlicht - 2023
Veranstaltung14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023 - Hannover, Deutschland
Dauer: 28 Juni 202330 Juni 2023

Abstract

Active magnetic bearings can potentially be used for linear guidance of machine components. However, their performance is limited by the system's latency. Reducing the latency leads to an improved dynamic stiffness of the actuator, and thus to a broader range of applications. Therefore, this paper introduces a study that aims to improve a novel linear electromagnetic actuator used in optics manufacturing. To analyze the latency, a testbed consisting of an electromagnet, a rapid DC current controller, and a real-time prototyping system is built. The latency of individual components is determined, and pertinent factors are identified. By integrating position and current controls, the latency is reduced by more than 75%. Thereby the dynamic stiffness of the magnets is increased.

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Latency optimization of magnetic actuator for optics manufacturing. / Denkena, Berend; Klemme, Heinrich; Zhang, Jingcai.
2023 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023. Institute of Electrical and Electronics Engineers Inc., 2023.

Publikation: Beitrag in Buch/Bericht/Sammelwerk/KonferenzbandAufsatz in KonferenzbandForschungPeer-Review

Denkena, B, Klemme, H & Zhang, J 2023, Latency optimization of magnetic actuator for optics manufacturing. in 2023 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023. Institute of Electrical and Electronics Engineers Inc., 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023, Hannover, Deutschland, 28 Juni 2023. https://doi.org/10.1109/LDIA59564.2023.10297491
Denkena, B., Klemme, H., & Zhang, J. (2023). Latency optimization of magnetic actuator for optics manufacturing. In 2023 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023 Institute of Electrical and Electronics Engineers Inc.. https://doi.org/10.1109/LDIA59564.2023.10297491
Denkena B, Klemme H, Zhang J. Latency optimization of magnetic actuator for optics manufacturing. in 2023 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023. Institute of Electrical and Electronics Engineers Inc. 2023 doi: 10.1109/LDIA59564.2023.10297491
Denkena, Berend ; Klemme, Heinrich ; Zhang, Jingcai. / Latency optimization of magnetic actuator for optics manufacturing. 2023 14th International Symposium on Linear Drivers for Industry Applications, LDIA 2023. Institute of Electrical and Electronics Engineers Inc., 2023.
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abstract = "Active magnetic bearings can potentially be used for linear guidance of machine components. However, their performance is limited by the system's latency. Reducing the latency leads to an improved dynamic stiffness of the actuator, and thus to a broader range of applications. Therefore, this paper introduces a study that aims to improve a novel linear electromagnetic actuator used in optics manufacturing. To analyze the latency, a testbed consisting of an electromagnet, a rapid DC current controller, and a real-time prototyping system is built. The latency of individual components is determined, and pertinent factors are identified. By integrating position and current controls, the latency is reduced by more than 75%. Thereby the dynamic stiffness of the magnets is increased.",
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AB - Active magnetic bearings can potentially be used for linear guidance of machine components. However, their performance is limited by the system's latency. Reducing the latency leads to an improved dynamic stiffness of the actuator, and thus to a broader range of applications. Therefore, this paper introduces a study that aims to improve a novel linear electromagnetic actuator used in optics manufacturing. To analyze the latency, a testbed consisting of an electromagnet, a rapid DC current controller, and a real-time prototyping system is built. The latency of individual components is determined, and pertinent factors are identified. By integrating position and current controls, the latency is reduced by more than 75%. Thereby the dynamic stiffness of the magnets is increased.

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