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Heat flow, depth-temperature variations and stored thermal energy for enhanced geothermal systems in Canada

机译:加拿大增强型地热系统的热流,深度-温度变化和存储的热能

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摘要

In order to help assessment of enhanced geothermal energy potential in Canada, we constructed a new series of heatflow and depth-temperature distribution maps (down to 10 km). We focus on high-temperature resources (150 °C) capable of electrical production. Maps presented show large temperature variability, related mainly to heat flow patterns. The highest temperatures occur in western and northern Canada. Here temperatures greater than 150 °C, required for enhanced geothermal systems (EGS), can be reached at reasonable drilling depths of 5 km. Heat flow, by itself however, is not a sufficient tool to predict areas of high energy content. A combination of thick low thermal conductivity sedimentary blankets and moderate to high heat flow areas can generate targets that are as favorable as regions with high conductivity and high heat flow. Some moderate heat flow areas in the deeper parts of the Western Canada Sedimentary Basin have heat content comparable to high heat flow zones of the the Canadian Cordillera. The magnitude of in-place thermal energy available for future heat 'mining/farming' was esitmated throughout Canada by calculating heat released through cooling a defined rock volume through a fixed temperature change. These estimates show the first-order appoximation of available geothermal heat content. The fraction of true heat energy available will be as low as 0.02 of these values. However, even this more limited energy production could be large enough to be a considerable future renewable energy resource for Canada.
机译:为了帮助评估加拿大增强的地热能潜力,我们构建了一系列新的热流图和深度-温度分布图(下至10 km)。我们专注于能够进行电气生产的高温资源(> 150°C)。所显示的地图显示出较大的温度可变性,主要与热流模式有关。最高温度发生在加拿大西部和北部。在此,在<5 km的合理钻孔深度下,可以达到增强型地热系统(EGS)所需的高于150°C的温度。然而,热流本身不足以预测高能量含量的区域。厚的低导热率沉积层和中等至高热流区域的组合可以产生与高导热率和高热流区域一样有利的目标。加拿大西部沉积盆地较深部分的一些中等热流区域的热量含量可与加拿大科尔迪勒拉的高热流区域相媲美。通过计算通过固定温度变化冷却一定体积的岩石所释放的热量,整个加拿大对可用于未来热量“采矿/农业”的就地热能的规模进行了评估。这些估计值显示了可用地热热量的一阶近似。可用的真实热能的分数将低至这些值的0.02。但是,即使这种有限的能源生产也可能足够大,足以成为加拿大相当大的未来可再生能源。

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