Design and Implementation of IoT-based Low-Cost Smart Saline Micro Pump

Design and Implementation of IoT-based Low-Cost Smart Saline Micro Pump

  IJETT-book-cover           
  
© 2024 by IJETT Journal
Volume-72 Issue-4
Year of Publication : 2024
Author : S. S. Panda, H. P. Tripathy, S. P. Dash, P. Pattanaik, D. K. Mishra, S. K. Kamilla, W. Holderbaum
DOI : 10.14445/22315381/IJETT-V72I4P113

How to Cite?

S. S. Panda, H. P. Tripathy, S. P. Dash, P. Pattanaik, D. K. Mishra, S. K. Kamilla, W. Holderbaum, "Design and Implementation of IoT-based Low-Cost Smart Saline Micro Pump," International Journal of Engineering Trends and Technology, vol. 72, no. 4, pp. 131-136, 2024. Crossref, https://doi.org/10.14445/22315381/IJETT-V72I4P113

Abstract
The present healthcare scenario teaches quite a lot to humanity. The increasing ratio between patients and nursing staff deteriorates health care services. Simple saline can cause deadly patient situations and chaotic conditions for healthcare workers. A proper intravenous medication system can avoid reverse blood flow, blood clots, vein inflammation, extravasation, air embolism, and hypervolemia. This proposed research article is based on an Internet of Things-based low-cost smart saline micro pump for the healthcare system. The prime objective of this research article is to design an IoT-based micropump, and the micropump is placed between the saline bottle and the patient to control the flow precisely. The entire process is controlled by a mobile application to minimize the staff workload, time, and chaotic conditions. The controlled device has information like the working of the micropump, status parameters such as saline flow rate, saline injection time duration, the inflow of IV infusion to the patient, saline completion status, patient bed number, etc. Implementing the proposed system can be a stepping stone for new healthcare devices.

Keywords
IoT, Piezoelectric Micro Pump, IV infusion, Healthcare Device.

References
[1] Philip J. Schneider, “A Review of the Safety of Intravenous Drug Delivery Systems,” Hospital Pharmacy, vol. 34, no. 9, pp. 1044-1056, 1999.
[CrossRef] [Google Scholar] [Publisher Link]
[2] Yiping Hong, and Fujun Wang, “Flow Rate Effect on Droplet Control in a Co-Flowing Microfluidic Device,” Microfluidics and Nanofluidics, vol. 3, pp. 341-346, 2007.
[CrossRef] [Google Scholar] [Publisher Link]
[3] K.R. Woodburn, and J.A. Murie, “Vascular Complications of Injecting Drug Misuse,” British Journal of Surgery, vol. 83, no. 10, pp. 1329-1334, 1996.
[CrossRef] [Google Scholar] [Publisher Link]
[4] Charles E. Cherubin, and Joseph D. Sapira, “The Medical Complications of Drug Addiction and the Medical Assessment of the Intravenous Drug User: 25 Years Later,” Annals of Internal Medicine, vol. 119, no. 10, pp. 1017 - 1028, 1993.
[CrossRef] [Google Scholar] [Publisher Link]
[5] Eleonora Borgia, “The Internet of Things Vision: Key Features, Applications and Open Issues,” Computer Communications, vol. 54, pp. 1-31, 2014.
[CrossRef] [Google Scholar] [Publisher Link]
[6] Anna Triantafyllou, Panagiotis Sarigiannidis, and Thomas D. Lagkas, “Network Protocols, Schemes, and Mechanisms for Internet of Things (IoT): Features, Open Challenges, and Trends,” Wireless Communications and Mobile Computing, vol. 2018, pp. 1-25, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[7] Md Abu Sayeed et al., “An IoT-Based Drug Delivery System for Refractory Epilepsy,” 2019 IEEE International Conference on Consumer Electronics (ICCE), Las Vegas, NV, USA, pp. 1-4, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[8] H.T.G. Van Lintel, F.C.M. Van De Pol, and S. Bouwstra, “A Piezoelectric Micropump Based on Micromachining of Silicon,” Sensors and Actuators, vol. 15, no. 2, pp. 153-167, 1988.
[CrossRef] [Google Scholar] [Publisher Link]
[9] P. Gravesen, J. Branebjerg, and O.S. Jensen, “Microfluidics - A Review,” Journal of Micromechanics and Microengineering, vol. 3, no. 4, pp. 168-182, 1993.
[CrossRef] [Google Scholar] [Publisher Link]
[10] Nam-Trung Nguyen, Xiaoyang Huang, and Toh Kok Chuan, “MEMS-Micropumps: A Review,” Journal of Fluids Engineering, Transactions of the ASME, vol. 124, no. 2, pp. 384-392, 2002.
[CrossRef] [Google Scholar] [Publisher Link]
[11] D.J. Laser, and J.G. Santiago, “A Review of Micropumps,” Journal of Micromechanics and Microengineering, vol. 14, no. 6, 2004.
[CrossRef] [Google Scholar] [Publisher Link]
[12] H.K. Ma et al., “A Miniature Circular Pump with a Piezoelectric Bimorph and a Disposable Chamber for Biomedical Applications,” Sensors and Actuators A: Physical, vol. 251, pp. 108-118, 2016.
[CrossRef] [Google Scholar] [Publisher Link]
[13] Bernadette Kinzel et al., “A Novel Micropump Driver Used in Environmental Sensor Applications,” 2016 IEEE Sensors, Orlando, FL, USA, pp. 1-3, 2016.
[CrossRef] [Google Scholar] [Publisher Link]
[14] Youssef Kotb et al., “IoT-Based Reconfigurable Micropump for Drug Delivery Applications,” 2021 IEEE Sensors, Sydney, Australia, pp. 1-4, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[15] Guohui Wu, Hong Jiang, and Bo Li, “Design of a Dual-Stage Driving Circuit for Piezoelectric-Actuated Micropump with Bimorph Transducer,” IEEE Sensors Journal, vol. 22, no. 16, pp. 16027-16035, 2022.
[CrossRef] [Google Scholar] [Publisher Link]