This paper presents the research, design, and development of an innovative all-terrain evacuation stretcher tailored for use in complex and hazardous environments. The increasing frequency of natural disasters, conflicts, and emergencies necessitates advanced evacuation solutions capable of navigating diverse terrains. A clear and objective understanding of these evolving needs is crucial for developing a product that can truly make a difference. This context analysis draws upon data from reputable sources like the UN statistics to illustrate the growing challenges and inform the design of the all-terrain evacuation stretcher. The study follows a rigorous design process incorporating market analysis, user needs assessment, and functional requirements. A detailed evaluation of existing stretcher models highlights deficiencies over terrain adaptability, ergonomics, and patient immobilization. The proposed stretcher integrates modular adaptability, enhanced ergonomics, and lightweight, durable materials, ensuring optimal performance in challenging environments. Through advanced 3D modeling, structural analysis, and simulation-based validation, the stretcher's design is optimized for manufacturing and deployment. The findings contribute to the advancement of emergency medical transport solutions and provide a foundation for further prototyping and testing.

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Study on Designing and Development of an Innovative All-Terrain Evacuation Stretcher

  • Jouveau Paul Gilbert Francois,
  • Cucu Lucian,
  • Stoica Marilena,
  • Anania Florea Dorel

摘要

This paper presents the research, design, and development of an innovative all-terrain evacuation stretcher tailored for use in complex and hazardous environments. The increasing frequency of natural disasters, conflicts, and emergencies necessitates advanced evacuation solutions capable of navigating diverse terrains. A clear and objective understanding of these evolving needs is crucial for developing a product that can truly make a difference. This context analysis draws upon data from reputable sources like the UN statistics to illustrate the growing challenges and inform the design of the all-terrain evacuation stretcher. The study follows a rigorous design process incorporating market analysis, user needs assessment, and functional requirements. A detailed evaluation of existing stretcher models highlights deficiencies over terrain adaptability, ergonomics, and patient immobilization. The proposed stretcher integrates modular adaptability, enhanced ergonomics, and lightweight, durable materials, ensuring optimal performance in challenging environments. Through advanced 3D modeling, structural analysis, and simulation-based validation, the stretcher's design is optimized for manufacturing and deployment. The findings contribute to the advancement of emergency medical transport solutions and provide a foundation for further prototyping and testing.