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濟寧煤田地熱資源潛力評價及開發利用

Potential evaluation and development utilization technology of geothermal resources in the Jining Coalfield

  • 摘要: “雙碳”目標驅動下,我國將逐漸減少對煤炭、石油等化石能源的依賴,向發展清潔、綠色、低碳能源轉型.為合理開發利用礦區地熱資源,本文以濟寧煤田為研究對象,在查明煤田區地熱地質條件的基礎上,將煤礦開采以及排水后騰出來的空間作為“熱儲層”,采用熱儲法和回收率法計算了各礦山的地熱資源量、可采儲量,評價地熱資源開發利用潛力. 研究結果表明:濟寧煤田地熱資源儲量為1.05×1015 kJ,折合標煤3.60×107 t,可采地熱資源量為1.05×1014 kJ,折合標煤3.60×106 t,可減少CO2排放量 8.59×106 t;煤田內各礦山平均可采資源量潛力為6.82×1010~3.13×1011 kJ?km?2,地熱開發利用程度低,開發利用潛力較大. 針對生產礦山總結提出了礦井回風熱能利用和礦井排水余熱利用2種技術方案,針對閉坑礦山提出了“取熱不取水”和“取熱不耗水”2種地熱利用技術模式. 以典型煤礦為例,根據礦山井下巷道開拓空間分布特征,副井、充填孔、巷道井、直排井、地面排水管道及工業廣場建筑物的供暖改造條件,闡明了煤田地熱開發利用技術,初步建成地熱供暖示范工程,可供暖面積5.0×104 m2,年利用地熱資源量節約標準煤118.04 t,減排二氧化碳281.64 t,實現“取熱不耗水”可持續開發利用地熱資源的新模式. 為礦山地熱能綜合利用、礦山綠色轉型和助力實現“雙碳”目標,提供了技術支撐.

     

    Abstract: Under the guidance of China’s “carbon peaking and carbon neutrality” goals, efforts are underway to optimize and adjust the national energy structure. This involves a gradual reduction in the reliance on traditional fossil fuels such as coal and oil and an accelerated transition to clean, green, and low-carbon energy sources. The rational development and utilization of geothermal resources can significantly reduce greenhouse gas emissions while promoting the green transformation and sustainable development of mining areas. This study uses the Jining Coalfield as a case study, exploring the geothermal geological conditions in the coalfield area. The investigation revealed that the voids left after coal mining and drainage could potentially serve as a “thermal reservoir.” The study utilized thermal reservoir and recovery rate methods to calculate the quantity of geothermal resources and the recoverable reserves for each mine within the coalfield, evaluating their development and utilization potential. The findings indicated that the geothermal resource reserves of the Jining Coalfield amount to 1.05 × 1015 kJ, which is equivalent to 3.6 billion tons of standard coal. The recoverable geothermal resource volume was estimated at 1.05 × 1014 kJ or 360000 tons of standard coal. Development and utilization of these resources are projected to reduce CO2 emissions by approximately 8.59 million tons. The study also determined that the average recoverable resource potential of each mine in the coalfield ranges from 6.82 × 1010 to 3.13 × 1011 kJ·km?2. This indicates that while the current level of geothermal development and utilization is low, there is significant potential for expansion. For operational mines, two technical schemes were proposed: utilizing mine air return heat energy and mine drainage waste heat to enhance energy efficiency and reduce energy waste. For closed mines, two geothermal utilization models were introduced: “extracting heat without extracting water” and “extracting heat without consuming water,” which can effectively conserve water resources while promoting sustainable geothermal utilization. Using a typical coal mine as a case example, the study examined the development potential of underground mine spaces, including roadways, auxiliary shafts, filling holes, tunnel shafts, direct discharge shafts, surface drainage pipelines, industrial square buildings, and other mining facilities. This approach outlined a comprehensive technical pathway for geothermal development and utilization in the coalfield. A geothermal heating demonstration project has now been preliminarily completed, covering a heating area of 50000 square meters. By utilizing geothermal resources, the project can save 118.04 tons of standard coal annually and reduce CO2 emissions by 281.64 t per year, establishing a sustainable model of geothermal resource development and utilization that “extracts heat without consuming water.” This research provides crucial technical support for the comprehensive utilization of geothermal energy in mines and contributes to the green transformation of mining operations, aligning with the “carbon peaking and carbon neutrality” goals. The development and utilization of geothermal resources enable mining areas to optimize their energy structure, reduce reliance on fossil fuels, and promote the diversified growth of the local economy. Additionally, this approach enhances the quality of the ecological environment and paves the way for new avenues of sustainable development.

     

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