相关实验视频
Updated: Jul 1, 2025

09:10
Fabrication and Testing of Microfluidic Optomechanical Oscillators
Published on: May 29, 2014
12.2K
一个3D打印的微半球外共振器,为科里奥利斯振动陀螺仪提供静电调节
Baoyin Hou1,2,3, Ye Zhu1, Chaofan He3,4
1College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou, 310027 China.
Microsystems & nanoengineering
|March 8, 2024
概括
研究人员开发了第一个可3D打印的微半球外共振器,用于科里奥利斯振动陀螺仪. 这种简化的两步制造过程为惯性导航应用提供了传统MEMS技术的成本效益高的替代方案.
科学领域:
- 微电子机械系统 (MEMS) 是一种微电子机械系统.
- 惯性导航 惯性导航 惯性导航
- 响应器技术 响应器技术
背景情况:
- 微半球共振陀螺仪为全角陀螺仪提供了稳定性和小型化.
- 传统的MEMS制造这些共振器是复杂和昂贵的.
研究的目的:
- 设计,制造和描述一个可3D打印的微半球外共振器.
- 为了克服MEMS技术在共振器制造中的局限性.
主要方法:
- 采用投影微型立体 lithography 进行两步制造过程.
- 制造的3D高比例共振结构和可控制的电容空气间隙.
- 特性共振器性能,包括静电频率调和质量因子.
主要成果:
- 实现了简化的两步制造过程,大大降低了复杂性.
- 成功制造出高比例结构和可调节的空气间隙.
- 与典型的MEMS共振器相比,在空气中显示出更高的质量因子.
结论:
- 可3D打印的共振器可用于快速批量制造.
- 这项技术为便携式惯性导航中的微半球共振器陀螺仪铺平了道路.
- 该设计概念在MEMS社区中具有更广泛的应用.
相关概念视频
Spherical and Cylindrical Capacitor
5.7K
A spherical capacitor consists of two concentric conducting spherical shells of radii R1 (inner shell) and R2 (outer shell). The shells have equal and opposite charges of +Q and −Q, respectively. For an isolated conducting spherical capacitor, the radius of the outer shell can be considered to be infinite.
Conventionally, considering the symmetry, the electric field between the concentric shells of a spherical capacitor is directed radially outward. The magnitude of the field,...
Conventionally, considering the symmetry, the electric field between the concentric shells of a spherical capacitor is directed radially outward. The magnitude of the field,...
5.7K
Gyroscope: Precession
4.1K
Precession can be demonstrated effectively through a spinning top. If a spinning top is placed on a flat surface near the surface of the Earth at a vertical angle and is not spinning, it will fall over due to the force of gravity producing a torque acting on its center of mass. However, if the top is spinning on its axis, it precesses about the vertical direction, rather than topple over due to this torque. Precessional motion is a combination of a steady circular motion of the axis and the...
4.1K
Torsional Pendulum
5.5K
A torsional pendulum involves the oscillation of a rigid body in which the restoring force is provided by the torsion in the string from which the rigid body is suspended. Ideally, the string should be massless; practically, its mass is much smaller than the rigid body's mass and is neglected.
As long as the rigid body's angular displacement is small, its oscillation can be modeled as a linear angular oscillation. The amplitude of the oscillation is an angle. The role of mass is played...
As long as the rigid body's angular displacement is small, its oscillation can be modeled as a linear angular oscillation. The amplitude of the oscillation is an angle. The role of mass is played...
5.5K
Gyroscope
3.0K
A gyroscope is defined as a spinning disk in which the axis of rotation is free to assume any orientation. When spinning, the orientation of the spin axis is unaffected by the orientation of the body that encloses it. The body or vehicle enclosing the gyroscope can be moved from place to place, while the orientation of the spin axis remains the same. This makes gyroscopes very useful in navigation, especially where magnetic compasses cannot be used, such as in crewed and crewless spacecraft,...
3.0K
Galvanometer
2.2K
Common devices, including car instrument panels, battery chargers, and inexpensive electrical instruments, measure potential difference (voltage), current, or resistance using a d'Arsonval galvanometer. This electromechanical instrument is also known as a moving coil galvanometer.
The galvanometer consists of two concave-shaped permanent magnets, providing a uniform radial magnetic field in the annular region. In the center, a pivoted coil of fine copper wire is placed in the uniform...
The galvanometer consists of two concave-shaped permanent magnets, providing a uniform radial magnetic field in the annular region. In the center, a pivoted coil of fine copper wire is placed in the uniform...
2.2K
Standing Waves in a Cavity
919
A household microwave and lasers are examples of standing electromagnetic waves in a cavity. When two conducting metal plates are placed parallel at the nodal planes, it creates a cavity where standing waves are formed. The cavity between the two planes is analogous to a stretched string held at the points x = 0 and x = L. Here, the distance 'L' between the two planes must be an integer multiple of half of the wavelength. The wavelengths that satisfy this condition are given by:
919

