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Specific cutting energy reduction of granite using plasma treatment: A feasibility study for future geothermal drilling

机译:使用等离子体处理的花岗岩的特定切削能量降低:未来地热钻探的可行性研究

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Geothermal Energy is one of the most consistent and viable sources of renewable energy. However, harnessing this energy has proved to be a challenge mainly due to the difficulty in drilling hard igneous rock formations that occur in and around geothermal wells. Therefore, an energy efficient method that can drill hard rocks needs to be developed. In this paper, the effect of micro-scale energy delivery, in the form of plasma, to weaken rock by inducing micro-cracks is studied. Two different types of granite (igneous rock) were sampled and used in this study, out of which the one control group was treated with five, 40kV, 80J pulses of plasma while the other was left uncracked. The effect of the cracks is quantified by conducting facing tests on the plasma cracked and uncracked samples and measuring a reduction in the specific cutting energy. Two different methods were used to estimate the specific cutting energy, where the first method considered the entire cutting process and the second method considered only the stable cutting region. The plasma treatment showed a maximum of 65% and a minimum of 15% reduction in specific cutting energy and was regarded as being dependent on mainly the hardness and size of the samples. All results in this study are validated using statistical analysis.
机译:地热能源是可再生能源最稳定和可行的源之一。然而,利用这种能量已经证明是一个挑战,主要是由于地热井周围和周围发生的耐火性岩层的困难。因此,需要开发一种能够钻孔硬岩的能量有效方法。本文研究了通过诱导微裂纹的血浆形式的微级能量输送的效果削弱岩石。在本研究中取样并使用两种不同类型的花岗岩(火岩),其中一项对照组用五个,40kV,80J脉冲的等离子体处理,而另一个对照组被释放。通过对等离子体裂纹和未包装的样品进行面对测试并测量特定切割能量的降低来量化裂缝的效果。两种不同的方法用于估计特定的切削能量,其中第一方法认为整个切割过程和第二种方法仅考虑稳定的切割区域。等离子体处理显示最大65%,比特定切割能量降低了65%,最小降低了15%,并且被认为是依赖于样品的硬度和大小。通过统计分析验证了本研究的所有结果。

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