Adaptability of space habitats using the Rhythmic Buildings strategy

被引:0
|
作者
van Ellen, Layla [1 ]
Bridgens, Ben [1 ]
Burford, Neil [2 ]
Crown, Matthew [3 ]
Heidrich, Oliver [4 ]
机构
[1] Newcastle Univ, Hub Biotechnol Built Environm, Newcastle Upon Tyne NE1 7RU, England
[2] Newcastle Univ, Sch Architecture Planning & Landscape, Newcastle Upon Tyne, England
[3] Northumbria Univ, Hub Biotechnol Built Environm, Newcastle Upon Tyne NE1 8ST, England
[4] Newcastle Univ, Tyndall Ctr Climate Change Res, Sch Engn, Newcastle Upon Tyne, England
关键词
Space architecture; Adaptability; Design strategy; Sustainability; Martian habitat; LIFE; MARS;
D O I
10.1016/j.actaastro.2023.06.045
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Space habitats, facing extreme conditions in space and on other planetary bodies, should have redundancy and versatility. Although the main challenges in the field have been identified as changes in gravity, radiation protection, extreme temperatures (fluctuations), changes in daylight patterns, and lack of (or less) atmosphere, more (unknown) challenges will inevitably emerge. Therefore, space habitats should extend beyond redundancy and adapt to their surroundings. There are many adaptability strategies for terrestrial habitats but none of these strategies were developed to work in the extreme conditions of outer space. This paper proposes application of a novel adaptability strategy, the Rhythmic Buildings strategy, which aims to develop buildings that adapt to the rhythms of the building's context (frequency, speed, and intensity of changes occurring on the case study location). The strategy is applied to the case study of a Martian habitat at Jezero Crater. The Rhythmic Buildings strategy includes the Rhythmic Framework and its 33 parameters (such as daylight and outdoor temperature) as well as analytical, technical, and design tools - collectively the Rhythmic Toolbox. First, the Framework tool was used to map the changes in the context following the environmental, economy, and society aspects. The rhythms of the case study context include local temperature, pressure, solar radiation, strong weather events (i.e. storms), but also comfort needs of the crew. These rhythms were then translated into a habitat design using an adapted version of the bubble diagram method. Lastly, novel technologies and materials were selected to address the rhythms which includes adaptive properties of materials. Results of the study show that the context's most important challenges are the daily temperature fluctuations and weekly crew schedule, while the most promising adaptability opportunity lies in the daily daylight rhythm. The design that followed the Rhythmic Buildings strategy directly addresses nine out of the 33 parameters and indirectly addresses a further five parameters. The proposed Martian habitat utilises the rhythms of daily temperature cycles and the 24 h daylight rhythm to reinforce the materials structures. The habitat is adaptive and responsive to its surroundings and the crew's needs. In the discussion, speculations are made on how space architecture can develop itself by intrinsically adapting to the rhythms of the environment and evolve into their own typologies, distinctly different than Earth architecture.
引用
收藏
页码:764 / 780
页数:17
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