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The Disruptive Technology That is Additive Construction: System Development Lessons Learned for Terrestrial and Planetary Applications

机译:颠覆性技术,即加性构造:为地面和行星应用学习的系统开发经验

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Disruptive technologies are unique in that they spawn other new technologies and applications as they grow. These activities are usually preceded by the question, "What If?" For example, "What if we could use an emerging technology and in-situ materials to promote exploration on the Moon or Mars, and then use that same technology to keep our troops out of harm's way and/or help the world's homeless?" This question allows us to flip the mindset of "how can people create more valuable innovation?" to "how can innovation create more valuable people?" This approach allows us to view augmented human labor as an inclusive opportunity, not a threat.The discipline of Additive Construction is growing rapidly due to the flexibility, speed, safety and logistics benefits offered as compared to standard construction techniques. Additive construction is a disruptive technology in that it employs the principles of additive manufacturing on a human habitat structure scale. Developed initially for emergency management and disaster relief applications, additive construction has now grown into military infrastructure and planetary (Moon and Mars) surface infrastructure applications as well.Additive Construction with Mobile Emplacement (ACME) is a NASA technology development project that seeks to demonstrate the feasibility of constructing shelters for human crews, and other surface infrastructure, on the Moon or Mars for a future human presence. The ACME project will allow, for the first time, the 3-dimensional printing of surface structures on planetary bodies using local materials for construction, thereby tremendously reducing launch and transportation mass and logistics. Some examples of infrastructure that could be constructed using robotic additive construction methods are landing pads, rocket engine blast protection berms, roads, dust free zones, equipment shelters, habitats and radiation shelters. Terrestrial applications include the development of surface structures using Earth-based materials for emergency response, disaster relief, general construction and housing at all economic levels.This paper will describe the progress made by the NASA ACME project with a focus on prototypes and full scale additive construction demonstrations using both Portland cement concrete and other indigenous material mixtures. Rationale for the use of additive construction for both terrestrial and planetary applications will be explored and a thorough state-of-the-art of additive construction techniques will be presented. An evolutionary history of NASA's additive construction development efforts, dating back to 2004, will be included. The paper will then step through a series of trade studies performed to inform key processing and design decisions in the development of the full-scale ACES-3 system developed by NASA and the Jacobs Space Exploration Group for the U.S. Army Corps of Engineers (USACE) Construction Engineers Research Laboratory (CERL) in Champaign, IL. The selection of aggregate and binders, based on in-situ materials, will also be presented and discussed.
机译:破坏性技术的独特之处在于,它们会随着发展而催生其他新技术和新应用。在这些活动之前,通常会出现“如果...会怎样?”的问题。例如,“如果我们可以使用一种新兴的技术和原位材料来促进对月球或火星的探索,然后使用相同的技术来使我们的部队免受伤害并/或帮助世界无家可归者呢?”这个问题使我们能够颠覆“人们如何创造更有价值的创新?”的观念。 “创新如何创造更多有价值的人?”这种方法使我们可以将增加的人工劳动视为包容性的机会,而不是威胁。与标准建筑技术相比,由于具有灵活性,速度,安全性和物流优势,增材制造学科正在迅速发展。增材制造是一种破坏性技术,因为它采用了在人类栖息地结构规模上进行增材制造的原理。最初为应急管理和救灾应用而开发的增材制造现已发展成军事基础设施和行星(月球和火星)地面基础设施应用。在月球或火星上为人类船员和其他地面基础设施建造庇护所的可行性,以供将来人类居住。 ACME项目将首次允许使用当地建筑材料在行星体上进行3D表面结构的三维打印,从而极大地减少了发射和运输的数量以及物流。可以使用机器人增材制造方法建造的基础设施的一些示例是起降平台,火箭发动机爆炸防护护堤,道路,无尘区,设备防护罩,栖息地和辐射防护罩。地面应用包括使用地基材料开发表面结构以应对各种经济水平的紧急情况,救灾,一般建筑和住房。本文将介绍NASA ACME项目取得的进展,重点是原型和全尺寸添加剂使用波特兰水泥混凝土和其他本地材料混合物的施工示范。将探索在地面和行星应用中使用增材制造的基本原理,并将介绍透彻的最新增材制造技术。包括2004年NASA的增材制造开发工作的演进历史。然后,本文将逐步进行一系列贸易研究,以指导NASA和Jacobs太空探索小组为美国陆军工程兵团(USACE)开发的全尺寸ACES-3系统的开发中的关键处理和设计决策。伊利诺伊州香槟的建筑工程师研究实验室(CERL)。还将介绍和讨论基于原位材料的骨料和粘合剂的选择。

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