Design of a high-sensitivity micromechanical resonant accelerometer with a two-stage microlever

Author(s):  
Wen Yue ◽  
Li Cheng ◽  
Fan Shang-chun ◽  
Kan Bao-xi ◽  
Wang Chao
2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Hongbin Chen ◽  
Shuai Yu ◽  
Haiyang Liu ◽  
Jie Liu ◽  
Yongguang Xiao ◽  
...  

AbstractAssessment of lung and heart states is of critical importance for patients with pneumonia. In this study, we present a small-sized and ultrasensitive accelerometer for continuous monitoring of lung and heart sounds to evaluate the lung and heart states of patients. Based on two-stage amplification, which consists of an asymmetric gapped cantilever and a charge amplifier, our accelerometer exhibited an extremely high ratio of sensitivity to noise compared with conventional structures. Our sensor achieves a high sensitivity of 9.2 V/g at frequencies less than 1000 Hz, making it suitable to use to monitor weak physiological signals, including heart and lung sounds. For the first time, lung injury, heart injury, and both lung and heart injuries in discharged pneumonia patients were revealed by our sensor device. Our sound sensor also successfully tracked the recovery course of the discharged pneumonia patients. Over time, the lung and heart states of the patients gradually improved after discharge. Our observations were in good agreement with clinical reports. Compared with conventional medical instruments, our sensor device provides rapid and highly sensitive detection of lung and heart sounds, which greatly helps in the evaluation of lung and heart states of pneumonia patients. This sensor provides a cost-effective alternative approach to the diagnosis and prognosis of pneumonia and has the potential for clinical and home-use health monitoring.


Sensors ◽  
2015 ◽  
Vol 15 (12) ◽  
pp. 30293-30310 ◽  
Author(s):  
Jing Zhang ◽  
Yan Su ◽  
Qin Shi ◽  
An-Ping Qiu

2014 ◽  
Vol 31 ◽  
pp. 1460302 ◽  
Author(s):  
Y. Yuan ◽  

The COherent Muon to Electron Transition (COMET) experiment aims to search for the charged-lepton-flavor-violating process through measure muon to electron conversion in a muonic atom to very high sensitivity of 2.6 × 10-17. A two-stage approach in order to realize the experiment has been taken and the first-stage (COMET Phase-I) has been approved by KEK.


The Analyst ◽  
2013 ◽  
Vol 138 (11) ◽  
pp. 3117 ◽  
Author(s):  
Charbel Eid ◽  
Giancarlo Garcia-Schwarz ◽  
Juan G. Santiago

2009 ◽  
Vol 1 (1) ◽  
pp. 536-539 ◽  
Author(s):  
D. Pinto ◽  
D. Mercier ◽  
C. Kharrat ◽  
E. Colinet ◽  
V. Nguyen ◽  
...  

Sensors ◽  
2022 ◽  
Vol 22 (2) ◽  
pp. 641
Author(s):  
Yang Xiao ◽  
Feng Hu ◽  
Yuchen Zhang ◽  
Jiaxing Zheng ◽  
Shiqiao Qin

In this paper, a novel two-axis differential resonant accelerometer based on graphene with transmission beams is presented. This accelerometer can not only reduce the cross sensitivity, but also overcome the influence of gravity, realizing fast and accurate measurement of the direction and magnitude of acceleration on the horizontal plane. The simulation results show that the critical buckling acceleration is 460 g, the linear range is 0–89 g, while the differential sensitivity is 50,919 Hz/g, which is generally higher than that of the resonant accelerometer reported previously. Thus, the accelerometer belongs to the ultra-high sensitivity accelerometer. In addition, increasing the length and tension of graphene can obviously increase the critical linear acceleration and critical buckling acceleration with the decreasing sensitivity of the accelerometer. Additionally, the size change of the force transfer structure can significantly affect the detection performance. As the etching accuracy reaches the order of 100 nm, the critical buckling acceleration can reach up to 5 × 104 g, with a sensitivity of 250 Hz/g. To sum up, a feasible design of a biaxial graphene resonant accelerometer is proposed in this work, which provides a theoretical reference for the fabrication of a graphene accelerometer with high precision and stability.


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