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April 15, 20260 citationsOpen Access

IoT Based Smart Saline Drip Monitoring System Using Load Cell

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MSMohini kontamwar, Aastha Mohale, Pratiksha Ashtankar, Sanjana Kapgate, Aditya Sarkate

Key Points

  • The aim is to develop an IoT-based system for real-time monitoring of saline drip volume to enhance patient safety.
  • Developed MediDrip using a load cell and ESP32 microcontroller
  • Integrated with Blynk IoT cloud for wireless data transmission
  • Used a 1.3-inch OLED display for local monitoring
  • Conducted experimental validation with 100 mL saline bags over 30 test cycles
  • Achieved a mean absolute weight error of 1.8 g
  • Demonstrated a percentage level accuracy of ±2.3%
  • Triggered alerts and alarms within 1.2 seconds of a breach in configured thresholds

Abstract

Intravenous (IV) drip therapy is one of the most common clinical procedures performed in healthcare facilities worldwide. Manual monitoring of IV drip bags by nursing staff is resource-intensive, error-prone, and may lead to critical patient safety incidents when drip bags run dry undetected. This paper presents MediDrip, a low-cost, real-time IoT-based intravenous drip monitoring system that employs a high-precision HX711-interfaced load cell to continuously measure the remaining saline volume by weight. The proposed system integrates an ESP32 microcontroller with the Blynk IoT cloud platform to enable wireless data transmission, remote monitoring via a web dashboard, and configurable multi-threshold alert generation. A 1.3-inch OLED display, tri-color LED indicator array (green, yellow, red), and an audible buzzer provide local real-time feedback. Experimental validation was conducted using 100 mL saline bags across 30 test cycles, demonstrating a mean absolute weight error of 1.8 g and percentage level accuracy of ±2.3%. The system successfully triggered remote alerts and local alarms within 1.2 seconds of threshold breach. MediDrip offers a cost-effective, scalable, and clinically practical solution for automated IV drip monitoring, with potential for multi-bed deployment in resource-constrained healthcare environments.

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Cite This Study

Mohini kontamwar, Aastha Mohale, Pratiksha Ashtankar, Sanjana Kapgate, Aditya Sarkate (2026) studied this question.

synapsesocial.com/papers/69df2cf7e4eeef8a2a6b20cbhttps://doi.org/10.5281/zenodo.19552684
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