
Wearable, pocket-sized, completely non-contact biomedical vortex flu detector for simultaneous measurement of heart and lung signals.
Wearable Pocket-sized Fully Non-contact Biomedical Eddy Current Sensor for Simultaneous Cardiac and Lung Monitoring
D.-Y. Hsu, Y.-L. Sung, S.-H. Ni, C.-Y. Huang, Y.-X. Huang, E.-Z. Lyu, C.-H. Chen, T.-W. Wang*, “Wearable Pocket-sized Fully Non-contact Biomedical Eddy Current Sensor for Simultaneous Cardiac and Lung Monitoring,” IEEE Transactions on Instrumentation and Measurement, vol. 73, Art no. 4007213, pp. 1-13, 2024.
Cardiopulmonary status measurement device (Invention Patent, Certificate No.: I842492)




Abstract— Continuous monitoring of heart rate (HR) and respiratory rate (RR) plays a pivotal role in evaluating cardiopulmonary coordination (CRC). Wearable technologies have empowered long-term monitoring of cardiopulmonary parameters across a spectrum of activities, including physical exercise, mental states, dietary habits, and the effects of pharmaceutical interventions. This study presents a wearable pocket-sized cardiopulmonary sensor based on biomedical eddy current sensing technology. The novel sensor utilizes the magnetic between coupling AC coil-produced magnetic fields and cardiopulmonary eddy current-induced counteracting magnetic fields to measure resonant frequency variation in response to synchronized cardiac and lung activities without skin contact. The proposed pocket-sized sensor is characterized by its compact form with a diameter of 4.53 cm and supporting wireless data transmission. Importantly, the influence of resonant frequencies on cardiopulmonary signals was investigated through capacitor adjustments, resulting in personalized optimization of measurement conditions. In practical applications, the effect of wide fabric thicknesses on measurement performance was assessed, demonstrating signals for allowing identifiable signals the determination of HR and RR. In real-life scenarios, HR and RR were measured during both resting and physical exercise conditions, effectively showing the potential of a single compact sensor to capture essential CRC indicators. These findings provide strong validation for the novel sensor's promising potential in the realm of wearable, long-term, all-in-one cardiopulmonary healthcare.
Index Terms— Biomedical eddy current sensor, cardiopulmonary monitoring, electromagnetic induction, resonant circuit, wearable sensor.




Abstract: A cardiopulmonary condition measurement device includes a sensor and a control module. The sensor includes a substrate and a coil disposed on the substrate. The coil is used to emit a first electromagnetic signal toward the area to be measured and to generate a sensing signal by receiving at least a second electromagnetic signal generated in response to the first electromagnetic signal. The control module is coupled to the coil and includes a signal generation unit that provides an AC signal to the coil, a filtering unit coupled to the coil, and a processing unit. The filtering unit has at least a first filtering frequency band and a second filtering frequency band, and the sensing signal is divided into at least a first part and a second part after passing through the filtering unit. The processing unit calculates at least one characteristic signal of the subject's heart or lung condition based on at least one of the first part and the second part.