基于形状优化的北极地面建筑积雪控制措施研究

IF 4.9 2区 工程技术 Q1 ENGINEERING, CIVIL Cold Regions Science and Technology Pub Date : 2025-03-01 Epub Date: 2024-12-02 DOI:10.1016/j.coldregions.2024.104382
Qingwen Zhang , Guolong Zhang , Ruixiang Zheng , Huamei Mo , Xudong Zhi , Jinzhi Wu , Feng Fan
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引用次数: 0

摘要

北极地区的高架结构已经被证明可以有效地通过增强下面的气流来减轻周围的积雪,并成为首选的建筑形式。然而,由于建筑成本和基础条件的限制,地面建筑仍占主导地位。减少和防止此类建筑物周围积雪的有效措施之一是改变其空气动力学形状。因此,本研究试图探索通过形状优化控制地面建筑周围积雪的措施。首先,通过风洞试验结果验证了用于模拟地面结构周围积雪的精细混合模型的预测准确性。基于已验证的数值模型和具有代表性的北极气象条件,分别研究了改变建筑整体形状和局部形状对积雪的控制效果。总的来说,对于侧壁较光滑的地面建筑,例如圆形平面的建筑,可以有效地达到减少和预防积雪的效果。相反,对于传统的矩形地基建筑,较大的下风宽高比和更倾斜的迎风面可以显著减小峰值雪深。此外,增加迎风侧倒角的措施可以有效地管理雪蚀区域的位置,从而实现灵活的出入口布置。
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Research on controlling measures of snowdrifts around Arctic ground-based buildings through shape optimization
Elevated structures in the Arctic region have proven effective in mitigating surrounding snowdrifts by enhancing the airflow beneath, and serve as a preferred architectural form. However, ground-based buildings still occupy the dominant position due to the constraints posed by construction costs and foundation conditions. One of the effective measures to reduce and prevent snowdrifts around such buildings is to modify their aerodynamic shapes. Therefore, this research endeavors to explore measures for controlling snowdrifts around ground-based buildings through shape optimization. Initially, the predictive accuracy of a refined Mixture model for simulating snowdrifts around ground-based structures was checked against wind tunnel test results. Based on the validated numerical model and representative Arctic meteorological conditions, the snowdrift controlling effects by changing the overall and local building shapes were investigated separately. Overall, the snow reduction and prevention effects can be effectively achieved for ground-based buildings with smoother sidewalls, such as those featuring a circular plane. Conversely, for traditional rectangular ground-based buildings, a larger downwind aspect ratio and a more inclined windward surface can significantly diminish peak snow depth. Additionally, the measures by adding windward side chamfering can effectively manage the locations of snow erosion areas, thereby enabling flexible placement of entrances and exits.
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来源期刊
Cold Regions Science and Technology
Cold Regions Science and Technology 工程技术-地球科学综合
CiteScore
7.40
自引率
12.20%
发文量
209
审稿时长
4.9 months
期刊介绍: Cold Regions Science and Technology is an international journal dealing with the science and technical problems of cold environments in both the polar regions and more temperate locations. It includes fundamental aspects of cryospheric sciences which have applications for cold regions problems as well as engineering topics which relate to the cryosphere. Emphasis is given to applied science with broad coverage of the physical and mechanical aspects of ice (including glaciers and sea ice), snow and snow avalanches, ice-water systems, ice-bonded soils and permafrost. Relevant aspects of Earth science, materials science, offshore and river ice engineering are also of primary interest. These include icing of ships and structures as well as trafficability in cold environments. Technological advances for cold regions in research, development, and engineering practice are relevant to the journal. Theoretical papers must include a detailed discussion of the potential application of the theory to address cold regions problems. The journal serves a wide range of specialists, providing a medium for interdisciplinary communication and a convenient source of reference.
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