Innovative Fabrication of Advanced Robots Using the WASPAS Method: A New Era in Robotics Engineering
Abstract
The fabrication of advanced robots represents a pivotal intersection of cutting-edge materials science, artificial intelligence, and innovative manufacturing techniques. However, the rise of these machines also raises important questions about societal impacts, ethical considerations, and job displacement. The ongoing advancements in robot fabrication promise to reshape industries and redefine the role of automation in human life. The significance of research in the fabrication of advanced robots lies in its trans formative potential across numerous sectors. Furthermore, it tackles ethical, social, and economic implications, guiding responsible innovation to ensure positive societal impact while mitigating job displacement and other risks. The fabrication of advanced robots involves a multi-disciplinary methodology combining materials science, manufacturing techniques, and artificial intelligence (AI). The process starts with designing robot structures using lightweight, durable materials like composites and metals. Additive manufacturing (3D printing) and precision machining are employed to create complex components. Sensors, actuators, and processors are integrated to enable movement and functionality. AI and machine learning models are embedded for autonomous decision-making, adapting robot behaviors to dynamic environments. Testing and iterative prototyping ensure performance, reliability, and safety. Finally, robots undergo optimization for energy efficiency, user interaction, and task-specific capabilities in their intended applications. R-Alpha, R-Beta, R-Gamma, R-Delta, R-Epsilon. Precision (B1), Speed (B2), Durability (B3), Energy Efficiency (B4). R-Alpha is getting first place of the table and R-Delta is getting last place of the table