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首页> 外文期刊>Journal of Agricultural Engineering >LOADS INTERACTION DOMAINS METHODOLOGY FOR THE DESIGN OF STEEL GREENHOUSE STRUCTURES
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LOADS INTERACTION DOMAINS METHODOLOGY FOR THE DESIGN OF STEEL GREENHOUSE STRUCTURES

机译:钢温室结构设计的荷载相互作用域方法

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Aim of this research is to develop a design methodology which correlates main structural design parameters, whose production is characterised by high levels of standardization, such as the height of gutter or the distance between frames, with actions on the greenhouse. The methodology, based on the use of charts and abacus, permits a clear and a direct interpretation of the structural response to design load combinations and allows the design of structural improvements with the aim of the optimization of the ratio benefits (structural strength)/costs. The study of structural interaction domains allowed a clear and a direct interpretation of the structural response to design load combinations. The diagrams highlight not only if the structure fulfils the standard requirements but also the safety levels with respect to design load combinations and allow the structural designer how to operate in order to optimize the structural response with standard requirements achieving the best ratio benefits (structural safety)/ costs. The methodology was developed basing on criteria assigned by EN13031 on two different kinds of greenhouse structures: an arched greenhouse with a film plastic covering and a duo pitched roof greenhouse cover with rigid plastic membranes. Structural interaction domains for arched greenhouse showed a better capability of the structure to resist to vertical loads then to horizontal one. Moreover, the climatic load distribution on the structure assigned by EN13031 is such that the combination of climatic actions is less dangerous for the structure then their individual application. Whilst, duo pitched roof steel greenhouse interaction domains, showed a better capability of the structure to resist to vertical loads then to horizontal one and that, in any case, the serviceability limit states analysis is more strict then the ULS one. The shape of structural domains highlighted that the combination of actions is more dangerous for the structure then the application of single loads. Charts and abacus very easy to interpret and can be used also by non technicians in order to arrange a quick and reliable estimate of the costs of the structure. For instance, it is sufficient to know characteristic values of snow loads and wind speed to evaluate what is the distance of frame of the arched greenhouse to fulfil EN13031 requirements.
机译:这项研究的目的是开发一种设计方法,该方法将主要的结构设计参数与温室的作用相关联,主要的结构设计参数的生产以高水平的标准化(例如装订线的高度或框架之间的距离)为特征。该方法基于图表和算盘的使用,可以清晰,直接地解释结构对设计荷载组合的响应,并可以设计结构改进,以优化比率效益(结构强度)/成本。对结构相互作用域的研究可以清楚,直接地解释结构对设计荷载组合的响应。这些图不仅突出了结构是否满足标准要求,而且还突出了有关设计载荷组合的安全级别,并允许结构设计人员如何操作以优化结构响应,以达到最佳比率效益(结构安全)的标准要求/费用。该方法是根据EN13031分配的标准开发的,用于两种不同类型的温室结构:带薄膜塑料覆盖物的拱形温室和带硬质塑料膜的双斜屋顶温室覆盖物。拱形温室的结构相互作用域显示出更好的结构抵抗垂直载荷然后抵抗水平载荷的能力。此外,EN13031分配的结构上的气候负荷分布应使气候作用的组合对该结构的危险性小于其单独应用的危险性。同时,二重斜屋顶钢温室相互作用域显示出该结构具有更好的抵抗垂直载荷然后抵抗水平载荷的能力,并且在任何情况下,可使用性极限状态分析都比ULS更为严格。结构域的形状突出表明,作用的组合对于结构比对单个荷载的应用更为危险。图表和算盘非常易于解释,非技术人员也可以使用它们来快速,可靠地估算结构成本。例如,了解雪荷载和风速的特征值足以评估满足EN13031要求的拱形温室的框架距离是足够的。

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