{"title":"三维打印在换热器传热优化中的潜力--可持续性视角","authors":"Beata Anwajler","doi":"10.3390/inventions9030060","DOIUrl":null,"url":null,"abstract":"In just a few short years, the additive manufacturing (AM) technology known as 3D printing has experienced intense growth from a niche technology to a disruptive innovation that has captured the imagination of mainstream manufacturers and hobbyists alike. The purpose of this article is to introduce the use of 3D printing for specific applications, materials, and manufacturing processes that help to optimize heat transfer in heat exchangers, with an emphasis on sustainability. The ability to create complex geometries, customize designs, and use advanced materials provides opportunities for more efficient and stable heat transfer solutions. One of the key benefits of incremental technology is the potential reduction in material waste compared to traditional manufacturing methods. By optimizing the design and structure of heat transfer components, 3D printing enables lighter yet more efficient solutions and systems. The localized manufacturing of components, which reduces the need for intensive transportation and associated carbon emissions, can lead to reduced energy consumption and improved overall efficiency. The customization and flexibility of 3D printing enables the integration of heat transfer components into renewable energy systems. This article presents the key challenges to be addressed and the fundamental research needed to realize the full potential of incremental manufacturing technologies to optimize heat transfer in heat exchangers. 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引用次数: 0
摘要
在短短几年内,被称为 3D 打印的增材制造(AM)技术经历了从利基技术到颠覆性创新的飞速发展,吸引了主流制造商和业余爱好者的想象力。本文旨在介绍 3D 打印在特定应用、材料和制造工艺中的应用,这些应用、材料和制造工艺有助于优化热交换器中的热传递,同时强调可持续性。创建复杂几何形状、定制设计和使用先进材料的能力为提供更高效、更稳定的传热解决方案提供了机会。与传统制造方法相比,增量技术的主要优势之一是可能减少材料浪费。通过优化传热组件的设计和结构,3D 打印技术可实现更轻便、更高效的解决方案和系统。部件的本地化制造减少了密集运输的需要和相关的碳排放,从而降低了能耗,提高了整体效率。三维打印的定制化和灵活性可将传热组件集成到可再生能源系统中。本文介绍了需要应对的关键挑战,以及充分发挥增量制造技术潜力以优化热交换器传热所需的基础研究。文章还对通过热交换器领域的创新增量制造技术解决全球能源挑战进行了重要讨论和展望。
Potential of 3D Printing for Heat Exchanger Heat Transfer Optimization—Sustainability Perspective
In just a few short years, the additive manufacturing (AM) technology known as 3D printing has experienced intense growth from a niche technology to a disruptive innovation that has captured the imagination of mainstream manufacturers and hobbyists alike. The purpose of this article is to introduce the use of 3D printing for specific applications, materials, and manufacturing processes that help to optimize heat transfer in heat exchangers, with an emphasis on sustainability. The ability to create complex geometries, customize designs, and use advanced materials provides opportunities for more efficient and stable heat transfer solutions. One of the key benefits of incremental technology is the potential reduction in material waste compared to traditional manufacturing methods. By optimizing the design and structure of heat transfer components, 3D printing enables lighter yet more efficient solutions and systems. The localized manufacturing of components, which reduces the need for intensive transportation and associated carbon emissions, can lead to reduced energy consumption and improved overall efficiency. The customization and flexibility of 3D printing enables the integration of heat transfer components into renewable energy systems. This article presents the key challenges to be addressed and the fundamental research needed to realize the full potential of incremental manufacturing technologies to optimize heat transfer in heat exchangers. It also presents a critical discussion and outlook for solving global energy challenges through innovative incremental manufacturing technologies in the heat exchanger sector.