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Rock damage evolution model of pulsating fracturing based on energy evolution theory

机译:基于能量演化理论的脉动压裂岩损伤演化模型

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Pulsating fracturing, as a new technology for unconventional oil and gas exploration, enables to enhance stimulated reservoir volume (SRV) effectively, which further helps to improve well performance. It is of great importance for the evaluation of fracturing performance and optimization of fracturing parameters by accurately calculating variables from formation impairment during pulsating fracturing treatment. Based on the principle of conservation of energy, a novel theoretical model describing the evolution of rock damage was proposed by analyzing energy evolutionary characteristics from the hysteresis loop of rock stress‐strain curve while the treatment. This model was in a good agreement with experimental data. In this paper, our study indicates that the rock damage is caused by the accumulation of damage in each cyclic loading and unloading process during pulsating fracturing. Moreover, the cumulative rock damage would increase with the increment of the number of cyclic loading and unloading. Conversely, the rock strength is negatively correlated with cyclic number. The cumulative damage variable approximates to one as the rock breaks. Additionally, the frequency and the stress level of pulsating fracturing have an obvious impact on the evolution of rock damage. The optimization of these parameters can help to accelerate the rock damage and reduce the corresponding rock strength. The speed of rock damage can be accelerated with the enhancement of the stress level at the later period of the step loading, which facilitates the increment of cumulative damage variable. Our new model provides a guideline for predicting the initial rock damage during pulsating treatment.
机译:脉动压裂,作为非传统石油和天然气勘探的新技术,使得能够有效地增强刺激的储层体积(SRV),这有助于提高性能良好。通过在脉动压裂处理过程中精确计算形成损伤的变量来评估压裂性能和裂缝参数的优化是非常重要的。基于能量守恒原理,提出了一种新颖的理论模型,描述了岩石胁迫曲线滞回曲线的能量进化特征,同时进行治疗。该模型与实验数据一致。在本文中,我们的研究表明,在脉动压裂过程中,岩石损伤是由每个循环加载和卸载过程中损坏的累积引起的。此外,累积岩石损伤将随着循环负载和卸载的数量的增量而增加。相反,岩石强度与循环数负相关。累积损伤变量近似于一个岩石破裂。另外,脉动压裂的频率和应力水平对岩石损伤的演变具有明显的影响。这些参数的优化可以有助于加速岩石损伤并降低相应的岩石强度。通过在步进负载的后期的应力水平增强,可以加速岩石损伤的速度,这有利于累积损伤变量的增量。我们的新模型提供了预测脉动处理期间初始岩石损伤的指导。

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