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Mass and Heat Transfer of Thermochemical Fluids in a Fractured Porous Medium

机译:在裂缝多孔介质中的热化学液体的质量和传热

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摘要

The desire to improve hydraulic fracture complexity has encouraged the use of thermochemical additives with fracturing fluids. These chemicals generate tremendous heat and pressure pulses upon reaction. This study developed a model of thermochemical fluids’ advection-reactive transport in hydraulic fractures to better understand thermochemical fluids’ penetration length and heat propagation distance along the fracture and into the surrounding porous media. These results will help optimize the design of this type of treatment. The model consists of an integrated wellbore, fracture, and reservoir mass and heat transfer models. The wellbore model estimated the fracture fluid temperature at the subsurface injection interval. The integrated model showed that in most cases the thermochemical fluids were consumed within a short distance from the wellbore. However, the heat of reaction propagated a much deeper distance along the hydraulic fracture. In most scenarios, the thermochemical fluids were consumed within 15 ft from the fracture inlet. Among other design parameters, the thermochemical fluid concentration is the most significant in controlling the penetration length, temperature, and pressure response. The model showed that a temperature increase from 280 to 600 °F is possible by increasing the thermochemical concentration. Additionally, acid can be used to trigger the reaction but results in a shorter penetration length and higher temperature response.
机译:提高水力骨折复杂性的愿望促进了使用具有压裂液的热化学添加剂。这些化学品在反应时产生巨大的热和压力脉冲。该研究开发了液压骨折中的热化学液体的平面反应运输模型,以更好地了解沿着骨折和进入周围多孔介质的热化学流体的渗透长度和热传播距离。这些结果将有助于优化这种治疗的设计。该模型包括集成的井筒,骨折和水库质量和传热模型。井筒模型在地下注入间隔处估计了裂缝液温度。综合模型表明,在大多数情况下,热化学流体在距井筒的短距离内消耗。然而,反应热沿液压骨折传播了更深的距离。在大多数情况下,热化学液体在15英尺处的裂缝入口中消耗。在其他设计参数中,热化学流体浓度在控制穿透长度,温度和压力响应方面是最显着的。该模型显示通过增加热化学浓度,可以从280到600°F增加。另外,酸可用于触发反应,但导致较短的渗透长度和更高的温度响应。

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