A Novel Drone Design Based on a Reconfigurable Unmanned Aerial Vehicle for Wildfire Management

Drones Pub Date : 2024-05-16 DOI:10.3390/drones8050203
Dimitris Perikleous, George Koustas, Spyros Velanas, Katerina Margariti, Pantelis Velanas, Diego Gonzalez-Aguilera
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Abstract

Our study introduces a new approach, leveraging robotics technology and remote sensing for multifaceted applications in forest and wildfire management. Presented in this paper is PULSAR, an innovative UAV with reconfigurable capabilities, able of operating as a quadcopter, a co-axial quadcopter, and a standalone octocopter. Tailored to diverse operational requirements, PULSAR accommodates multiple payloads, showcasing its adaptability and versatility. This paper meticulously details material selection and design methods, encompassing both initial and detailed design, while the electronics design section seamlessly integrates essential avionic components. The 3D drone layout design, accomplished using SOLIDWORKS, enhances understanding by showcasing all three different configurations of PULSAR’s structure. Serving a dual purpose, this study highlights UAV applications in forest and wildfire management, particularly in detailed forest mapping, edge computing, and cartographic product generation, as well as detection and tracking of elements, illustrating how a UAV can be a valuable tool. Following the analysis of applications, this paper presents the selection and integration of payloads onto the UAV. Simultaneously, each of the three distinct UAV configurations is matched with a specific forest application, ensuring optimal performance and efficiency. Lastly, computational validation of the UAV’s main components’ structural integrity is achieved through finite element analysis (FEA), affirming the absence of issues regarding stress and displacement. In conclusion, this research underscores the efficacy of PULSAR, marking a significant leap forward in applying robotics technology for wildfire science.
基于可重构无人飞行器的新型无人机设计,用于野火管理
我们的研究引入了一种新方法,利用机器人技术和遥感技术在森林和野火管理中进行多方面应用。本文介绍的 PULSAR 是一种创新型无人机,具有可重新配置的功能,能够作为四旋翼飞行器、同轴四旋翼飞行器和独立八旋翼飞行器运行。PULSAR 可满足不同的操作要求,可容纳多种有效载荷,展示了其适应性和多功能性。本文详细介绍了材料选择和设计方法,包括初始设计和详细设计,而电子设计部分则无缝集成了重要的航空电子元件。使用 SOLIDWORKS 完成的三维无人机布局设计展示了 PULSAR 结构的所有三种不同配置,从而加深了读者的理解。本研究具有双重目的,重点介绍了无人机在森林和野火管理方面的应用,尤其是在详细的森林测绘、边缘计算、制图产品生成以及要素探测和跟踪方面,说明了无人机如何成为一种有价值的工具。在对应用进行分析之后,本文介绍了无人机有效载荷的选择和集成。同时,三种不同的无人机配置分别与特定的森林应用相匹配,以确保最佳性能和效率。最后,通过有限元分析(FEA)对无人机主要部件的结构完整性进行了计算验证,确认不存在应力和位移问题。总之,这项研究强调了 PULSAR 的功效,标志着将机器人技术应用于野火科学的重大飞跃。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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