剪切率对粗砂破碎影响的实验和 ANN 分析

Samer R. Rabab’ah, Omar H. Al Hattamleh, Ahmad N. Tarawneh, Hussien H. Aldeeky
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摘要

本研究采用人工神经网络(ANN)分析法,对剪切速率如何影响天然粗砂的剪切强度和可破碎性进行了实验室实验分析。本研究测试了从天然岩石破碎中获得的三种不同粗砂:黑处女凝灰岩、风化沸凝灰岩和钙质石灰岩。使用直接剪切箱分析了通过 4 号筛并保留在 8 号筛上的等级一致的碎砂试样的行为。对试样施加了不同的法向载荷和剪切速度,以检查其在不同相对密度下的行为。使用方差分析法分析了试验结果,以研究剪切速率对剪切强度参数的影响,特别是内摩擦峰值、恒定体积(残余)内摩擦角以及剪切速率对颗粒破碎指数的影响。所选的法向(高斯)速率对剪切强度参数和破碎率都有显著影响。加载速率增加了剪切强度参数和颗粒破碎率。因此,强烈建议保留安全的剪切强度值集和全面的测试数据,以评估典型应变速率下的参数,并尽可能优先使用较慢的速率。Doi: 10.28991/CEJ-2024-010-03-011 全文:PDF
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Experimental and ANN Analysis of Shearing Rate Effects on Coarse Sand Crushing
The present study analyzes laboratory experiments on how shearing rate affects the shear strength and crushability of natural coarse sand, employing artificial neural network (ANN) analysis. This study tested three different coarse sands obtained from the crushing of natural rocks: Black Virgin Tuff, weathered Zeolitic Tuff, and calcareous limestone. The behavior of crushed sand specimens with consistent grading, which passed through sieve #4 and were retained on sieve #8, was analyzed using a direct shear box. The specimens were subjected to varied normal loads and shearing speeds to examine their behavior at different relative densities. The test results were analyzed using ANN to investigate the significance of shearing rates on shearing strength parameters, specifically internal mobilized peak friction, the constant volume (residual) internal friction angle, and the consequence of shearing rate on the particle's breakage index. The selected normal (Gaussian) rate significantly affected both the shear strength parameters and breakage. The loading rate increased both shear strength parameters and particle breakage. Therefore, it's highly recommended to maintain secure sets of shear strength values and comprehensive test data for assessing parameters at typical strain rates, prioritizing using slower rates whenever possible. Doi: 10.28991/CEJ-2024-010-03-011 Full Text: PDF
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