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Stress/Strain Distributions and Role of Sheathing in Partition Wall Panels Subjected to Compression

机译:压力/应变分布和护套在经过压缩的隔板面板中的作用

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Built upon a companion study on the load carrying capacity of cold-formed steel wall panels, the stress/strain distributions in each constituent of a panel ― middle and side studs, top and bottom tracks, boards, and screws ― are examined in detail with extensive use of strain gauges. These are subsequently synthesized to analyse the structural performance of the panel as a whole. Panels with 1-side sheathing and one middle stud were tested under vertical compressive loading. The main variables considered are screw spacing (300 mm, 400 mm, or 600 mm) in the middle stud, board type (oriented strand board ― OSB, cement particle board―CPB, or calcium silicate board ― CSB), board number (no sheathing, one-side sheathing, or twoside sheathing), and loading type (1 or 3-point loading). The test results show that, at a given cross-section of the stud, the strains and stresses experienced by the flanges are significantly different from those in the web. Along the vertical direction, the stresses in the stud are not uniform, decreasing as the bottom track is approached. Screw connections between stud and board not only restrain the lateral displacement of the stud, but also support and re-distribute a portion of the machine load to the board and then to the bottom track. The axial forces experienced by the screws are negligibly small during the initial stage of loading, increasing slowly as the load is further increased until substantial stud buckling occurs. Buckling drastically increases the forces acting on a screw, often resulting in its pulling-out from the board and studs/tracks. The results also show that the role of board in a partition wall panel is multi-fold. It acts as a shearing member to steady the whole structure, as a supporting member to enhance the overall and local buckling performance of middle and side studs, and as a structural member to support part of the machine load. It is important account for the contributions of load-sharing boards (via screw connections) when designing cold-formed steel wall panels against minimum weight.
机译:根据冷成型钢壁板的负载承载能力建立在伴侣的载荷容量上,详细研究了面板 - 中间螺柱,顶部和底部轨道,顶部和底部轨道,板和螺钉的每个组成部分中的应力/应变分布 - 广泛使用应变仪。随后合成这些以分析整个面板的结构性能。在垂直压缩载荷下测试具有1侧护套和一个中间螺柱的面板。中间螺柱,板式(定向股线 - OSB,水泥刨花板-CPB或钙硅酸钙板 - CSB),板号(NO护套,单侧护套或水性护套)和装载型(1或3点装载)。测试结果表明,在给定的螺柱的横截面,凸缘所经历的菌株和应力与网中的菌株显着不同。沿垂直方向,螺柱中的应力不均匀,接近底部轨道时的减小。螺柱与板之间的螺钉连接不仅限制了螺柱的横向位移,还支持并将一部分机器负载的部分连接到底部轨道上。在装载的初始阶段期间螺钉所经历的轴向力在初始阶段被忽略,随着负载进一步增加,直到发生大量螺柱弯曲,速度缓慢增加。屈曲大大增加了作用在螺钉上的力,通常导致其从板和螺柱/轨道上拉出。结果还表明,板在隔墙面板中的作用是多折。它充当剪切构件以稳定整个结构,作为支撑构件,以提高中间螺柱的整体和局部屈曲性能,以及作为构件以支撑机器负载的一部分的结构构件。在设计冷成型钢壁板以防止最小重量时,这是一个重要的算法。

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