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Concrete breakout strength of single anchors in tension using neural networks

机译:基于神经网络的单锚混凝土抗拉强度

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摘要

A feed forward neural network model for evaluating the concrete breakout strength of single cast-in and post-installed mechanical anchors in tension is presented. The nodes of the neural network input layer represent the embedment depth, anchor head diameter, concrete strength and anchor installation system, and the neural network output is the tensile capacity of anchors as governed by the concrete breakout. Three different techniques have been adopted to represent the anchor installation system in the neural network input layer. The training, validation and testing of the developed networks were based on a database of 451 experimental tests obtained from previous laboratory anchor tests. Testing of the trained neural network indicates good predictions of the concrete breakout strength of cast-in and post-installed mechanical anchors in tension.The relationships between the concrete breakout strength of anchors and different influencing parameters obtained from the trained neural networks were in general agreement with those of the ACI 318-02 for cast-in and post-installed mechanical anchors. It has been shown that the concrete breakout strength of anchors in tension is approximately proportional to the embedment depth of 1.5 power and marginally affected by changing the anchor head diameter. (C) 2004 Elsevier Ltd. All rights reserved.
机译:提出了一种前馈神经网络模型,用于评估单个现浇和后置机械锚的混凝土抗拉强度。神经网络输入层的节点表示埋入深度,锚头直径,混凝土强度和锚固安装系统,而神经网络输出是受混凝土突围控制的锚固抗拉能力。已采用三种不同的技术来表示神经网络输入层中的锚点安装系统。对发达网络的培训,验证和测试是基于从以前的实验室锚定测试获得的451个实验测试的数据库。对训练后的神经网络进行测试表明,可以很好地预测拉力下的现浇和后置机械锚的混凝土破坏强度。锚定的混凝土破坏强度与从训练后的神经网络获得的不同影响参数之间的关系基本一致和ACI 318-02的那些,用于插入式和后装式机械锚。研究表明,锚杆在拉力下的混凝土抗折强度与埋入深度1.5幂近似成比例,并且受锚头直径变化的影响很小。 (C)2004 Elsevier Ltd.保留所有权利。

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