FREE delivery to all EXCLUSIVE BOOKS stores nationwide. FREE delivery to your door on all orders over R450. Excludes all international deliveries.

Toward Inertial-Navigation-on-Chip

Haoran Wen
    Product form
      FORMAT: Paperback / softback

      R 4,828.45 Price and availability exclusive to website

      YOU COULD EARN 4,828.45 FUTURE RETAIL DISCOUNTS.
      ESTIMATED DELIVERY: Approx. 10 - 15 Business Days
      BUY NOW PAY LATER
      From R 804.74 per month!
      3x monthly payments of R 1,609.48 with
      4x fortnightly payments of R 1,207.11 with
      This thesis develops next-generation multi-degree-of-freedom gyroscopes and inertial measurement units (IMU) using micro-electromechanical-systems (MEMS) technology. It covers both a comprehensive study of the physics of resonator gyroscopes and novel micro/nano-fabrication solutions to key performance limits in MEMS resonator gyroscopes. Firstly, theoretical and experimental studies of physical phenomena including mode localization, nonlinear behavior, and energy dissipation provide new insights into challenges like quadrature errors and flicker noise in resonator gyroscope systems. Secondly, advanced designs and micro/nano-fabrication methods developed in this work demonstrate valuable applications to a wide range of MEMS/NEMS devices. In particular, the HARPSS+ process platform established in this thesis features a novel slanted nano-gap transducer, which enabled the first wafer-level-packaged single-chip IMU prototype with co-fabricated high-frequency resonant triaxial gyroscopes and high-bandwidth triaxial micro-gravity accelerometers. This prototype demonstrates performance amongst the highest to date, with unmatched robustness and potential for flexible substrate integration and ultra-low-power operation. This thesis shows a path toward future low-power IMU-based applications including wearable inertial sensors, health informatics, and personal inertial navigation.
      Format: Paperback / softback CONTRIBUTORS: Haoran Wen EAN: 9783030254728 COUNTRY: Switzerland PAGES: WEIGHT: 454 g HEIGHT: 235 cm
      PUBLISHED BY: Springer Nature Switzerland AG DATE PUBLISHED: 2020-09-25 CITY: GENRE: SCIENCE / Nanoscience, TECHNOLOGY & ENGINEERING / Electronics / General, TECHNOLOGY & ENGINEERING / Mechanical, TECHNOLOGY & ENGINEERING / Measurement, TECHNOLOGY & ENGINEERING / Nanotechnology & MEMS WIDTH: 155 cm SPINE:

      Book Themes:

      Scientific standards, measurement etc, Nanosciences, Condensed matter physics (liquid state and solid state physics), Engineering: Mechanics of solids, Electronics engineering

      Customer Reviews

      Be the first to write a review
      0%
      (0)
      0%
      (0)
      0%
      (0)
      0%
      (0)
      0%
      (0)
      Haoran Wen is a research engineer in the School of Electrical and Computer Engineering at Georgia Tech. He received his PhD from Georgia Tech in 2018.
      This thesis develops next-generation multi-degree-of-freedom gyroscopes and inertial measurement units (IMU) using micro-electromechanical-systems (MEMS) technology. It covers both a comprehensive study of the physics of resonator gyroscopes and novel micro/nano-fabrication solutions to key performance limits in MEMS resonator gyroscopes. Firstly, theoretical and experimental studies of physical phenomena including mode localization, nonlinear behavior, and energy dissipation provide new insights into challenges like quadrature errors and flicker noise in resonator gyroscope systems. Secondly, advanced designs and micro/nano-fabrication methods developed in this work demonstrate valuable applications to a wide range of MEMS/NEMS devices. In particular, the HARPSS+ process platform established in this thesis features a novel slanted nano-gap transducer, which enabled the first wafer-level-packaged single-chip IMU prototype with co-fabricated high-frequency resonant triaxial gyroscopes and high-bandwidth triaxial micro-gravity accelerometers. This prototype demonstrates performance amongst the highest to date, with unmatched robustness and potential for flexible substrate integration and ultra-low-power operation. This thesis shows a path toward future low-power IMU-based applications including wearable inertial sensors, health informatics, and personal inertial navigation.
      Format: Paperback / softback CONTRIBUTORS: Haoran Wen EAN: 9783030254728 COUNTRY: Switzerland PAGES: WEIGHT: 454 g HEIGHT: 235 cm
      PUBLISHED BY: Springer Nature Switzerland AG DATE PUBLISHED: 2020-09-25 CITY: GENRE: SCIENCE / Nanoscience, TECHNOLOGY & ENGINEERING / Electronics / General, TECHNOLOGY & ENGINEERING / Mechanical, TECHNOLOGY & ENGINEERING / Measurement, TECHNOLOGY & ENGINEERING / Nanotechnology & MEMS WIDTH: 155 cm SPINE:

      Book Themes:

      Scientific standards, measurement etc, Nanosciences, Condensed matter physics (liquid state and solid state physics), Engineering: Mechanics of solids, Electronics engineering

      Customer Reviews

      Be the first to write a review
      0%
      (0)
      0%
      (0)
      0%
      (0)
      0%
      (0)
      0%
      (0)
      Haoran Wen is a research engineer in the School of Electrical and Computer Engineering at Georgia Tech. He received his PhD from Georgia Tech in 2018.

      Recently viewed products

      Login

      Forgot your password?

      Don't have an account yet?
      Create account