Skip to main content

Environmental safety and low velocity of the development of submarine natural gas hydrate with examples of test production in South China Sea

Abstract

As a clean energy, natural gas hydrate should be developed and utilised. The greatest concerns for natural gas hydrate development being still at a preliminary stage are that natural gas hydrate development could cause explosions or environmental disasters. This manuscript addresses these concerns, analyses the principles of natural gas hydrate development, conducts a survey on natural gas hydrate development practice and points out that the most important physical process of natural gas hydrate development is gasification. Restricted by the heat supply speed of the stratum, the development of natural gas hydrate is relatively slow, and large-scale and uncontrollable gasification will not happen. Its development will also not seriously influence marine water, ecological environment or the atmosphere. Conventional problems as seabed collapse and seafloor landslide may occur, but, overall, natural gas hydrate development is safe. These views are consistent with two experiments conducted by the Chinese government in the South China Sea.

This is a preview of subscription content, access via your institution.

Fig. 1
Fig. 2
Fig. 3

Data availability

Yes.

References

  • Ban X, Zhai Y, Liu Y (2015) Research status of gas hydrate mining. Industry 21:39 in Chinese

    Google Scholar 

  • Bhade P, Phirani J (2015) Effect of geological layers on hydrate dissociation in natural gas hydrate reservoirs. J Nat Gas Sci Eng 26:1549–1560

    Article  Google Scholar 

  • Duan Y, Jin H, Zheng Q (2016) Testing study on moisture content effect on thermal conductivity for clay and sand. Yellow River 38(2):114–116 in Chinese

    Google Scholar 

  • Hu Z (2011) Research and application of natural gas hydrates phase equilibrium. Yanshan University, China Qinhuangdao in Chinese

    Google Scholar 

  • Huang W, Liu D, Zhou W, Song M (2004) Thermophysical properties of natural gas hydrade. Nat Gas Chem Ind 29(4):66–71 in Chinese

    CAS  Google Scholar 

  • Huangfu H, Jin H (2015) Experimental study of thermal conductivity of common engineering soil with different water content. Water Resour Power 33(12):122–124 in Chinese

    Google Scholar 

  • Lee JY, Ryu BJ, Yun TS, Lee J, Cho GC (2011) Review on the gas hydrate development and production as a new energy resource. KSCE J Civ Eng 15(4):689–696

    Article  Google Scholar 

  • Li J, Zheng M, Chen X, Li D, Wang S et al (2015a) Connotation analyses, source – reservoir assemblage types and development potential of unconventional hydrocarbon in China. Acta Pet Sin 36(5):521–532 in Chinese

    CAS  Google Scholar 

  • Li P, Wang W, Liu Z (2015b) Research progress in gas hydrate mining technologies. Contemp Chem Ind 44(3):524–526 in Chinese

    CAS  Google Scholar 

  • Liu L, Lu X, Zhang X (2014) Numerical analysis on evolution of natural gas hydrate decomposition region in hydrate-bearing sediment. Acta Pet Sin 35(5):941–951 in Chinese

    CAS  Google Scholar 

  • Makogon YF (2010) Natural gas hydrates – a promising source of energy. J Nat Gas Sci Eng 2:49–59

    CAS  Article  Google Scholar 

  • Makogon YF, Holditch SA, Makogon TY (2007) Natural gas-hydrates – a potential energy source for the 21st century. J Pet Sci Eng 56:14–31

    CAS  Article  Google Scholar 

  • Pang, Wuji (2020) The second round of trial production of natural gas hydrate in China is successful, with a record daily average gas production. https://baijiahao.baidu.com/s?id=1662206094344196382&wfr=spider&for=pc.

  • Shi D, Zheng J (1999) The present situation and prospect of the research and development of natural gas hydrate in the world. Adv Earth Science 14(4):330–339 in Chinese

    Google Scholar 

  • Si N, An L, Deng H, Sun J, Guang X (2016) Discussion on natural gas hydrate production technologies. China Petroleum Exploration 21(5):52–61 in Chinese

    Google Scholar 

  • Vedachalam N, Srinivasalu S, Rajendran G, Ramadass GA, Atmanand MA (2015) Review of unconventional hydrocarbon resources in major energy consuming countries and efforts in realizing natural gas hydrates as a future source of energy. J Nat Gas Sci Eng 26:163–175

    CAS  Article  Google Scholar 

  • Wang F, Zhao B, Li G (2018) Prevention of potential hazards associated with marine gas hydrate exploitation: a review. ENERGIES 11(9):2384

    Article  Google Scholar 

  • Wang H, Wang J (2017) Possible risks in development of natural gas hydrate. Contemp Chem Ind 46(3):485–488 in Chinese

    CAS  Google Scholar 

  • Wei J (2015) Research progress on the mining method of gas hydrate. J Wuhan Eng Inst 27(4):35–38 in Chinese

    Google Scholar 

  • Wei H, Sun Z, Wang L, Zhang X, Cao H et al (2016) Perspective of the environmental effect of natural gas hydrate system. Mar Geol Quat Geol 36(1):1–13 in Chinese

    Google Scholar 

  • Wu C, Zhao K, Sun C, Sun D, Xu X et al (2008) Current research in natural gas hydrate production. Geol Sci Technol Info 27(1):47–52 in Chinese

    CAS  Google Scholar 

  • Wu K, Wang Y, Zhao J, Zhou S, Chen K et al (2017a) Safety evaluation on the solid fluidized goaf zone in marine non-diagenetic hydrate reservoirs. Nat Gas Ind 37(12):81–86 in Chinese

    Google Scholar 

  • Wu N, Huang L, Hu G, Li Y, Chen Q et al (2017b) Geological controlling factors and scientific challenges for offshore gas hydrate development. Mar Geol Quat Geol 37(5):1–11 in Chinese

    CAS  Article  Google Scholar 

  • Wu N, Huang L, Su Z, Yang S, Wang H et al (2013) A study of geological evaluation indicators for the development potential of marine natural gas hydrates: theory and methodology. Nat Gas Ind 33(7):11–17 in Chinese

    Google Scholar 

  • Wu N, Zhang H, Yang S, Ling J, Wang H et al (2007) Reservoir system of natural gas hydrate in Shenhu Area. Nat Gas Ind 27(9):1–6 in Chinese

    Google Scholar 

  • Wu X, Zhang B, Zhang W, Wang Y, Sun Z et al (2015) New developments in gas hydrate recovery technology. Adv New Renew Energy 3(3):218–225 in Chinese

    Google Scholar 

  • Yan D, Farah PD, Gaskova I, Giabardo CV (2020) Evaluating China’s environmental management and risks avoidance policies and regulations on offshore methane hydrate extraction. Sustainability 12(13):5331

    Article  Google Scholar 

  • You S (2016) Study on the effect of moisture content on the thermal conductivity of soil. Modern Business Trade Industry 37(31):194–195 in Chinese

    Google Scholar 

  • Yu M, Cao X, Wang S, Hu A, Guo M (2012) Influence of water content on soil thermal conductivity and the mechanism. J Shandong Jianzhu Uuiv 27(2):152–154 in Chinese

    Google Scholar 

  • Zhang W, Shao M, Tian Q (2017) Technical progress of a pilot project to produce natural gas hydrate in Japanese water. Petroleum Drilling Techniques 45(5):98–102 in Chinese

    Google Scholar 

  • Zhang Y, Li G, Liu F (2016a) Current status of mining technology for natural gas hydrate. Marine Geol Front 32(4):63–68 in Chinese

    CAS  Google Scholar 

  • Zhang Y, Li X, Li X, Wang Z (2016b) Technical progress of gas hydrate production in permafrost and research on oceanic gas hydrate production. Exploration Engineering (Rock & Soil Drilling and Tunneling) 43(10):154–159 in Chinese

    Google Scholar 

  • Zheng Q, Jin H, Liu H, Zhang C, Niu K (2015) Influence of porosity and water content on thermal properties of sandy soil sample. Water Resour Power 33(12):125–128 in Chinese

    Google Scholar 

  • Zhou S, Chen W, Li Q (2014) The green solid fluidization development principle of natural gas hydrate stored in shallow layers of deep water. China Offshore Oil Gas 26(5):1–7 in Chinese

    CAS  Google Scholar 

  • Zhou S, Chen W, Li Q, Zhou J, Shi H (2017a) Research on the solid fluidization well testing and production for shallow non-diagenetic natural gas hydrate in deep water area. China Offshore Oil Gas 29(4):1–8 in Chinese

    Google Scholar 

  • Zhou S, Zhao J, Li Q, Chen W, Zhou J et al (2017b) Optimal design of the engineering parameters for the first global trial production of marine natural gas hydrates through solid fluidization. Nat Gas Ind 37(9):1–14 in Chinese

    CAS  Google Scholar 

  • Zhu C, Zhang M, Liu X, Wang Z, Shen Z et al (2017) Gas hydrates: production, geohazards and monitoring. Journal of Catastrophology 32(3):51–56 in Chinese

    Google Scholar 

Download references

Funding

This work was funded by the National Natural Science Foundation of China (No. 51974277, 51674220 and 51490653)

Author information

Affiliations

Authors

Contributions

Zifeng Li: Conceptualisation and writing. Jie Han: Data collection and draft.

Corresponding author

Correspondence to Zifeng Li.

Ethics declarations

Conflict of interest

The authors declare that there are no conflicts of interest.

Ethical approval

Not applicable.

Consent to participate

Not applicable.

Consent to publish

Yes.

Additional information

Publisher’s note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Responsible editor: Tito Roberto Cadaval Jr

Rights and permissions

Reprints and Permissions

About this article

Verify currency and authenticity via CrossMark

Cite this article

Li, Z., Han, J. Environmental safety and low velocity of the development of submarine natural gas hydrate with examples of test production in South China Sea. Environ Sci Pollut Res 28, 6259–6265 (2021). https://doi.org/10.1007/s11356-020-12159-z

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s11356-020-12159-z

Keywords

  • Disaster
  • Environment safety
  • Marine ecology
  • Natural gas hydrate
  • Submarine
  • Velocity