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Mechanics-Based Approach for Modeling Delamination of Fire Insulation from Steel Structures

机译:基于力学的钢结构隔热层分层建模方法

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This paper presents a numerical model for evaluating internal fracture and delamination at the interface of fire insulation and steel surface in structural members. A cohesive zone model in combination with contact condition is employed in a 3D finite-element model to simulate the fire-insulation damage throughout the loading range, from initial loading stage until failure through fracture. The numerical model is validated by comparing model predictions, namely internal fracture and interfacial delamination of insulation, against test data generated at both material and structural levels. The validated model was applied to quantify the effect of critical factors on the extent of delamination between steel and fire insulation. Results from the parametric studies indicate that critical fracture energy at steel–insulation interface, insulation thickness, modulus of elasticity, and internal cohesion of insulation material have significant influence on the spread of delamination at steel– insulation interface. Further, delamination of insulation from steel surface occurs mostly in the plastic hinge zone and specifically in the tensile flange
机译:本文提出了一种数值模型,用于评估结构构件中防火材料与钢表面的界面处的内部断裂和分层。在3D有限元模型中采用结合了接触条件的内聚力区域模型来模拟从初始载荷阶段到断裂破坏的整个载荷范围内的隔热破坏。通过将模型预测(即内部裂缝和绝缘体的界面分层)与在材料和结构水平上生成的测试数据进行比较,可以验证数值模型的有效性。经验证的模型用于量化关键因素对钢与隔热材料之间分层的影响。参数研究的结果表明,钢-绝缘界面处的临界断裂能,绝缘层厚度,弹性模量和绝缘材料的内聚力对钢-绝缘界面处的分层扩展具有重大影响。此外,绝缘层与钢表面的剥离主要发生在塑料铰链区域,特别是在拉伸法兰中

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