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Old 09-04-2023, 01:22 AM
Sparty Sparty is offline
Join Date: Mar 2009
Posts: 1,794
Default Some research references: there is a lot going on

Yang, L. H., Zhang, X., Liu, S. Q., Yu, L. & Zhang, W. L. Field test of large-scale hydrogen manufacturing from underground coal gasification (UCG). Int. J. Hydrogen Energy 33, 1275–1285. (2008).

Liu, S. Q., Wang, Y. Y., Zhao, K. & Yang, N. Enhanced-hydrogen gas production through underground gasification of lignite. Min. Sci. Technol. 19, 389–394. (2009).

Stanczyk, K. et al. Experimental simulation of hard coal underground gasification for hydrogen production. Fuel 91, 40–50. (2012).

Bhutto, A. W., Bazmi, A. A. & Zahedi, G. Underground coal gasification: From fundamentals to applications. Prog. Energy Combust. Sci. 39, 189–214. (2013).

Kapusta, K., Stanczyk, K., Wiatowski, M. & Checko, J. Environmental aspects of a field-scale underground coal gasification trial in a shallow coal seam at the Experimental Mine Barbara in Poland. Fuel 113, 196–208. (2013).

Imran, M. et al. Environmental concerns of underground coal gasification. Renew. Sustain. Energy Rev. 31, 600–610. (2014).

Wang, Z. Q., Xu, X. Y. & Cui, Y. Effect of fixed and removable gas-injection patterns on the expansion of reaction zones during underground coal gasification. Energy Fuels 33, 4740–4747. (2019).

Wang, Z. Q. et al. Expansion of three reaction zones during underground coal gasification with free and percolation channels. Fuel 190, 435–443. (2017).

Mellors, R. et al. Advanced geophysical underground coal gasification monitoring. Mitig. Adapt. Strateg. Glob. Chang. 21, 487–500. (2016).

Tatiana, S., Igor, G. & Alexey, B. Control of combustion area using electrical resistivity method for underground coal gasification. Int. J. Min. Sci. Technol. 22, 351–355. (2012).

Kotyrba, A., Kortas, L. & Stanczyk, K. Imaging the underground coal gasification zone with microgravity surveys. Acta Geophys. 63, 634–651. (2015).

Kotyrba, A. & Stanczyk, K. Sensing underground coal gasification by ground penetrating radar. Acta Geophys. 65, 1185–1196. (2017).

Kotyrba, A. & Stanczyk, K. Application of a GP technique for the monitoring of simulated underground coal gasification in a large-scale model. Near Surf. Geophys. 11, 505–515. (2013).

Cui, Y. et al. Forward and reverse combustion gasification of coal with production of high-quality syngas in a simulated pilot system for in situ gasification. Appl. Energy 131, 9–19. (2014).

Khan, M. M. et al. Modelling underground coal gasification—a review. Energies 8, 12603–12668. (2015).

Nourozieh, H., Kariznovi, M., Chen, Z. X. & Abedi, J. Simulation study of underground coal gasification in Alberta reservoirs: Geological structure and process modeling. Energy Fuels 24, 3540–3550. (2010).

Jowkar, A., Sereshki, F. & Najafi, M. A new model for evaluation of cavity shape and volume during Underground Coal Gasification process. Energy 148, 756–765. (2018).

Jiang, C. et al. Experimental study on the evolution of pore-fracture structures and mechanism of permeability enhancement in coal under cyclic thermal shock. Fuel (2021).

Yang, Y. et al. Experimental study on pore-fracture evolution law in the thermal damage process of coal. Int. J. Rock Mech. Min. Sci. 116, 13–24. (2019).

Kasani, H. A. & Chalaturnyk, R. J. Influence of high pressure and temperature on the mechanical behavior and permeability of a fractured coal. Energies

Liu, S. Q., Zhang, S. J., Chen, F., Wang, C. H. & Liu, M. Y. Variation of coal permeability under dehydrating and heating: A case study of ulanqab lignite for underground coal gasification. Energy Fuels 28, 6869–6876. (2014).

Bhaskaran, S. et al. Experimental studies on spalling characteristics of Indian lignite coal in context of underground coal gasification. Fuel 154, 326–337. (2015).

Chang, H. Z. et al. Semicoke contraction kinetics of coal and its macerals in pyrolysis. Acta Phys. Chim. Sin. 24, 675–680. (2008).

Kubota, Y., Ikeda, K., Arima, T., Nomura, S. & Aihara, Y. Contraction behavior of inertinite in coal and formation mechanism of crack around inertinite texture in coke. Tetsu Hagane-J. Iron Steel Inst. Jpn. 99, 175–184. (2013).

Ding, R. et al. Experimental study on acoustic emission characteristics of high-temperature thermal damage in an oxygen-rich environment of long flame coal. J. Therm. Anal. Calorim. 147, 11391–11400. (2022).

Kong, B. et al. A study on fractal characteristics of acoustic emission under multiple heating and loading damage conditions. J. Appl. Geophys. (2022).

Su, F.-Q. et al. Study on the monitoring method of cavity growth in underground coal gasification under laboratory conditions. Energy 263, 126048. (2023).

Su, F. Q. et al. Monitoring and evaluation of simulated underground coal gasification in an ex-situ experimental artificial coal seam system. Appl. Energy 223, 82–92. (2018).

Su, F. Q., Itakura, K., Deguchi, G. & Ohga, K. Monitoring of coal fracturing in underground coal gasification by acoustic emission techniques. Appl. Energy 189, 142–156. (2017).

Su, F. Q. et al. Evaluation of coal combustion zone and gas energy recovery for underground coal gasification (UCG) process. Energy Fuels 31, 154–169. (2017).

Su, F. Q., Nakanowataru, T., Itakura, K., Ohga, K. & Deguchi, G. Evaluation of structural changes in the coal specimen heating process and UCG model experiments for developing efficient UCG systems. Energies 6, 2386–2406. (2013).


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