具有平面内热膨胀系数从正到负动态切换的智能夹层结构

IF 0.8 Q4 ENGINEERING, MANUFACTURING Smart and Sustainable Manufacturing Systems Pub Date : 2022-07-12 DOI:10.1142/s2737549822400014
Yongcun Zhang, Z. Yang, Yimang Feng, Bingda Wang, Shutian Liu
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引用次数: 0

摘要

在系统服务环境或功能需求随时间动态变化的许多场合,具有一些可切换的结构形状/属性/功能的自主响应外部刺激的能力是非常可取的。在本文中,我们从概念上提出了一种新型智能夹层结构,该结构能够通过仅由一定温度刺激触发的内部微观结构转变,将平面内热膨胀系数(CTEs)从初始的正值动态切换到负甚至零值。为此,通过引入由两种具有不同正cte的材料组成的活性球壳组件,在周期性面片的微观结构设计中有意地加入了热驱动的卡通作用。所述点阵芯与所述上下面片相连,以防止在温度变化过程中面片的整体横向变形。通过数值仿真验证了完全可逆的卡通行为,并验证了所设计的动态切换平面内CTE功能。数值结果还表明,随着高层厚度与低层厚度之比的增大,有效面内CTE在卡扣前呈下降趋势,但对卡扣后CTE的影响可以忽略不计。同样,更大的壳跨可以显著提高有效的面内卡扣后CTE,但对卡扣前CTE没有影响。这些重要的结果可以总结为实用的设计技巧,可以同时设计定制的卡扣温度和有效的卡扣前后平面内CTE,所有这些都使所提出的智能夹层结构具有灵活性,以满足更多潜在应用的各种要求。
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Smart sandwich structures with dynamically switchable in-plane thermal expansion coefficients from positive to negative
Capacity to autonomously respond to external stimuli with some switchable structural shapes/properties/functions is highly desirable in many occasions where either system service environments or functional requirements are dynamically changing over time. In this paper, we conceptually propose a new type of smart sandwich structure with the ability to dynamically switch in-plane coefficients of thermal expansion (CTEs) from initially positive to negative or even zero value through internal microstructural transformation triggered solely by a certain temperature stimulus. To this end, a thermally driven snap-through action is purposely added into the design of the microstructure of periodic face-sheets by introducing an active spherical shell component constituted by two materials with different positive CTEs. The lattice core is connected to the upper and lower face-sheets for preventing the overall transverse deformation of face-sheet during temperature variation. Numerical simulations are subsequently carried out to demonstrate the completely reversible snap-through behavior, and the designed function of dynamically switchable in-plane CTE is also validated. Numerical results also reveal that the increasing thickness ratio of high CTE layer to low ones causes a decreased tendency for effective in-plane CTE before snapping, but the influence on after-snapping CTE is negligible. Similarly, the larger shell span brings an obvious increase in effective after-snapping in-plane CTE but without influence on before-snapping CTE. These significant results are beneficial to be summarized as practical design skills for simultaneously designing customized snap-through temperature and effective before or after-snapping in-plane CTE, all of which enable the proposed smart sandwich structure to be flexible to satisfy various requirements in more potential applications.
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来源期刊
Smart and Sustainable Manufacturing Systems
Smart and Sustainable Manufacturing Systems ENGINEERING, MANUFACTURING-
CiteScore
2.50
自引率
0.00%
发文量
17
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