Design of Fetal Doppler Simulator for Fetal Doppler Calibration
DOI:
https://doi.org/10.59485/jtemp.v6i2.150Keywords:
fetal doppler, simulator, calibration, heartbeat, medical trainingAbstract
The Fetal Doppler Simulator for calibration is a device designed to ensure the accuracy and reliability of Fetal Doppler equipment in monitoring fetal heart rate. Traditionally, calibration of Fetal Doppler devices has relied on limited methods with relatively high costs. Therefore, an alternative calibration medium that is more economical, practical, and reliable is needed. This simulator functions by generating fetal heartbeat signals with various rhythm patterns, ranging from normal conditions to pathological variations such as tachycardia and bradycardia. The research method applied was Research and Development (R&D), which included needs analysis, design planning, feature integration, prototype construction, and performance testing. The test results showed that the Fetal Doppler Simulator was able to generate stable heartbeat simulations with measurement values that remained within acceptable tolerance limits (≤5%). Based on these findings, it can be concluded that the development of this Fetal Doppler Simulator is feasible and effective as a calibration medium. This research is expected to offer a practical alternative for healthcare facilities to perform Fetal Doppler calibration at a lower cost.
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References
Kementerian Kesehatan RI. Pedoman Kalibrasi Alat Kesehatan. Jakarta: Kemenkes; 2023.
Rahmi HF, Maharani S, Fitriyah A. Pengembangan Fetal Doppler Simulator dengan motor solenoid. J Elektromedik. 2021;3(2):45–52.
Nadhirotussolikah A, Pudji A, Mak’ruf MR. Fetal Doppler Simulator berbasis Arduino. J Biomedik. 2020;12(1):33–40.
Espressif Systems. ESP32 Series Datasheet. Shanghai: Espressif; 2022.
Nextion. Intelligent Series HMI Display Datasheet. ITEAD Studio; 2021.
Werdani AT, Syaifudin, Bedjo, Basit UA. Pengaruh jarak sumber suara pada simulasi Fetal Doppler. J Teknol Kesehatan. 2022;4(1):21–7.
Bistos. Fetal Doppler BT-200 Series User Manual. Seoul: Bistos Co. Ltd.; 2020.
Serenity. Portable Fetal Doppler SR-200 User Guide. Shenzhen: Serenity Medical; 2019.
Seiko Instruments. Thermal Printer Mechanism Application Manual. Tokyo: Seiko; 2021.
Zhang L, Wu H, Li Y. Design of lithium-ion battery management system for medical devices. J Med Eng Technol. 2020;44(6):324–31.
Bland JM, Altman DG. Statistical methods for assessing agreement between two methods of clinical measurement. Lancet. 1986;1(8476):307–10.
ISO 17025. General requirements for the competence of testing and calibration laboratories. Geneva: ISO; 2017.
Ngo TD. Additive manufacturing (3D printing) for biomedical applications: A review. J Sci Adv Mater Devices. 2018;3(1):1–14.
Chen M, Song Y, Liu J. Performance evaluation of 18650 lithium-ion batteries in portable medical devices. Energy Procedia. 2019;158:2702–7.
IEC 60601-2-37. Particular requirements for the basic safety and essential performance of ultrasonic medical diagnostic and monitoring equipment. Geneva: IEC; 2020.
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