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Remote Management System for IoT-Based Disinfection and Sterilization Devices
  1. case
  2. Remote Management System for IoT-Based Disinfection and Sterilization Devices

Remote Management System for IoT-Based Disinfection and Sterilization Devices

leancode.co
Medical
Information technology

Need for Centralized Remote Monitoring and Control of Disinfection Devices

The client requires a robust solution to remotely manage and monitor their IoT-enabled sterilizers deployed across multiple locations. Current manual oversight is inefficient and lacks real-time insights, risking delayed responses to device malfunctions, suboptimal sterilization processes, and compromised air quality safety standards.

About the Client

A mid-sized medical technology company specializing in innovative sterilization units for various environments such as hospitals, laboratories, and public spaces, aiming to improve operational efficiency and safety through remote device management.

Goals for Developing an IoT-Enabled Device Management Solution

  • Develop a mobile application to enable remote management and monitoring of sterilization devices across multiple locations.
  • Provide real-time data visualization of device status, configuration, and environmental factors.
  • Implement secure device registration, metadata editing, and tenant management functionalities.
  • Ensure compatibility across iOS and Android platforms using cross-platform frameworks.
  • Integrate Bluetooth and network connectivity to facilitate device control and data retrieval.
  • Support scalable deployment capable of handling numerous devices and users with high reliability and performance.

Core Functional Capabilities for IoT Device Management Platform

  • User authentication and multi-tenant management interface for device and user administration.
  • Device registration, metadata editing, and tenant association management.
  • Real-time monitoring dashboard displaying static and dynamic device data such as location, operational parameters, and environmental factors.
  • Remote control of device settings and configurations via secure network or Bluetooth protocols.
  • Live data streaming and polling capabilities to ensure up-to-date device status visibility.
  • Robust safeguards and error handling mechanisms to manage native communication quirks and connectivity disruptions.
  • Role-based access controls for different user types (technicians, administrators, end-users).

Preferred Technologies and Architectural Approach

Flutter framework for cross-platform mobile app development.
Modern .NET backend infrastructure for data processing and API hosting.
Bluetooth Low Energy (BLE) protocols for local device connectivity.
SinclaIR or equivalent sensor/data acquisition technologies for live data streams.

Necessary External System Integrations

  • IoT sensors and device firmware protocol integration for live data and control commands.
  • Backend API integration for device management, metadata editing, and tenant administration.
  • Authentication and authorization services to secure user access.

Non-Functional System Performance and Security Standards

  • System scalability to support managing hundreds to thousands of devices simultaneously.
  • High reliability with 99.9% uptime SLA.
  • Secure data transmission and storage, complying with relevant safety standards.
  • Responsive performance with real-time data updates and low latency control commands.
  • Cross-platform compatibility with seamless user experience on iOS and Android devices.

Anticipated Business Outcomes and Benefits

The implementation of this remote device management system is expected to significantly enhance operational efficiency by reducing manual oversight, enabling real-time device status monitoring, and facilitating prompt maintenance actions. This will lead to improved safety standards, faster response times, and potentially lower operational costs, with an estimated increase in device uptime and compliance adherence due to real-time data-driven decision-making.

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