采灌井群布局驱动的地温场演化规律与可持续开采阈值

Evolution of karst reservoir geothermal fields driven by production-injection well group layout and its sustainable exploitation threshold

  • 摘要: 陈家庄潜山地热田是山东省重要的碳酸盐岩岩溶热储分布区,规模化采灌条件下地温场演化规律尚不明确,尤其缺乏可持续开采资源量的阈值判定依据。通过数值模拟,确定兼顾热突破与水位安全双重约束下的可持续开采阈值(包括临界采灌量、临界井距及可采资源量)。基于区域构造地层条件、实测地温梯度、大地热流及全井段测温数据,系统分析地温场热异常的主控因素;利用COMSOL Multiphysics建立三维水–热耦合数值模型,在采灌均衡约束下,设计多组采灌参数与布井方案,模拟对井及群井采灌系统温度场与水动力场的长期演化特征,并定量核算可持续开采资源量,据此判定阈值。结果表明:低温地热尾水在回灌井周围形成冷堆积与冷锋面,在密度差、水位势能差及热储内水热对流共同驱动下向开采井运移。在对井采灌系统中,开采井发生热突破时间t随着采灌量Q的增大呈幂函数关系减小,拟合方程:t=4819Q–1.06R2=0.9997;随着采灌井间距R0的增加呈指数函数关系增长,拟合方程:t_\rmR = a\rme^bR_0 ,ab为常数,R2 > 0.97。在100 a采灌期内,耦合热突破(储层平均温降≤1 ℃)与最大水位埋深(Dmax≤170 m)双重约束,确定可持续开采阈值为井距600 m、单井采灌量80 m3/h,此为临界安全采灌参数。群井模拟显示,棋盘式布井可形成较均衡的流场,100 a采灌期内开采井热储平均温度降幅仅0.47 ℃,最大水位埋深为159.08~169.41 m,满足双重约束;轨道式布井流场分布不均、热突破风险偏高;集中式布井地温场分布极不均衡,可持续性最差。基于棋盘式布井模式,全区理论可布设采灌井144对,核算潜山岩溶热储可采地热水资源量为27.65×104 m3/d,可采地热资源量为57.11×1014 J/a,折合标准煤为19.49×104 t/a,此为可持续开采的资源量阈值。研究成果可为类似凸起背景岩溶热储的采灌井网设计及资源量核定提供理论依据,也为确定同类地热田的可持续开采阈值提供参考方法。

     

    Abstract: The Chenjiazhuang buried-hill geothermal field is an important carbonate karst geothermal reservoir area in Shandong Province. The evolution of the geothermal field under large-scale production-reinjection conditions remains unclear, and there is a particular lack of criteria for determining the sustainable exploitation resource threshold. Numerical simulation is performed to determine sustainable exploitation thresholds under the dual constraints of thermal breakthrough and water-level safety, covering critical production-reinjection rate, critical well spacing, and recoverable resource amount. Based on regional structural and stratigraphic conditions, measured geothermal gradients, terrestrial heat flow, and full-hole temperature logging data, the main controlling factors of geothermal anomalies are systematically analyzed. A three-dimensional hydrothermal coupling numerical model is established using COMSOL Multiphysics. Under balanced production-reinjection constraints, multiple groups of production-reinjection parameters and well layout schemes are designed to simulate the long-term evolution of temperature and hydrodynamic fields in both doublet and multi-well systems, and the sustainable recoverable geothermal resources are quantitatively calculated to determine the threshold. The results show that: Low-temperature reinjected geothermal water accumulates around reinjection wells and forms a cold front that migrates toward production wells driven by density differences, water-level potential differences, and hydrothermal convection within the reservoir. In the doublet system, the thermal breakthrough time t of production wells decreases in a power function with the increase of production-reinjection rate Q, expressed as t=4819Q−1.06, R2=0.9997. It increases exponentially with the rise of well spacing R0, with the fitting formula t_\rmR = a\rme^bR_0 , where a and b are constants. R2 > 0.97. Within a 100-year production-reinjection period, under the dual constraints of thermal breakthrough (average reservoir temperature drop ≤1 ℃) and maximum water table burial depth (Dmax≤170 m), the sustainable exploitation threshold is determined as a well spacing of 600 m and a single-well production-reinjection rate of 80 m3/h, which are the critical safe production-reinjection parameters. Multi-well simulations show that the checkerboard well pattern forms a relatively uniform flow field, with an average reservoir temperature drop of only 0.47 ℃ and a maximum water table burial depth of 159.08–169.41 m over 100 years, meeting both constraints; the orbital pattern results in an uneven flow field and a higher thermal breakthrough risk; the centralized pattern causes severe imbalance of the geothermal field and has the poorest sustainability. Based on the checkerboard layout, a total of 144 production-reinjection well pairs can be theoretically deployed in the whole area. The calculated recoverable geothermal water yield is 27.65×104 m3/d, the annual recoverable geothermal energy is 57.11×1014 J/a, equivalent to 19.49×104 t/a of standard coal, which represents the resource threshold for sustainable exploitation. The findings provide a theoretical basis for the design of production-reinjection well networks and resource assessment in similar karst reservoirs with buried-hill settings, and also offer a reference method for determining sustainable exploitation thresholds in comparable geothermal fields.

     

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