DOI QR코드

DOI QR Code

Development of Numerical Model for Mixed Soil Problems Using Dry Bulk Density and Investigation of Its Numerical Stability

건조체적밀도를 적용한 혼합토사 수치모델의 개발과 수치적 안정성 평가

  • 조용환 (일본나고야대학교 토목공학과) ;
  • 이광호 (한국해양대학교 물류.환경.도시인프라공학부 건설공학전공)
  • Received : 2021.06.11
  • Accepted : 2021.06.17
  • Published : 2021.06.30

Abstract

The importance of tidal flats lost due to industrialization has recently received attention, and attention is being paid to the creation of artificial tidal flats and maintenance of natural tidal flats. However, there is still a lack of understanding about the behavioral characteristics of mud, mud, and sand that form tidal flats. Although research on the movement characteristics of mixed soils such as tidal flats has been conducted through field investigations and hydraulic experiments, interest in developing a numerical model based on these results has not yet reached. In this paper, the purpose of this paper is to establish a mixed soil model that can efficiently manage the low quality of the tidal flats. In constructing a model for reproducing the surface movement of mixed soil, the numerical stability of the reproduction and movement of sand and mud constituting the mixed soil in the numerical model should be considered first, so first, the volume of sand and mud constituting the mixed soil A mixed soil model representing the relationship was proposed based on a topographical diagram representing the geometric structure of the mixed soil. In order to consider the dry bulk density of the mixed soil, it was possible to consider the dry bulk density of the mud by introducing the water content of the mud containing water. In addition, it was confirmed that the mud and sand movement calculation according to the slope collapse of the mixed soil was stably performed through the calculation of the slope collapse of the mixed soil through the numerical analysis model to which the proposed mixed soil model was applied.

산업화에 의해 소실된 갯벌의 중요성이 근래에 주목을 받으며 인공 갯벌의 조성 및 자연 갯벌의 유지 관리에 관심을 기울이고 있다. 하지만, 갯벌을 조성하는 실트, 진흙, 모래 등과 같은 저질에 의한 거동특성에 관해서는 충분한 이해가 부족하다. 갯벌과 같이 혼합토사의 이동특성에 관한 연구가 현지조사와 수리실험을 통해 이루어지고 있으나 이러한 연구결과에 기초한 수치모델의 개발은 미진한 실정이다. 본 연구에서는 갯벌을 구성하는 저질의 동적 관리를 효율적으로 수행할 수 있는 혼합토사 모델의 구축을 목적으로 한다. 혼합토사에 대한 표사이동 수치모델을 구축함에 있어서 혼합토사를 구성하는 모래와 진흙의 재현 및 이동에 따른 수치적 안정성이 우선 검토되어야 하므로 혼합토사를 구성하는 모래와 진흙의 체적관계를 토사의 기하학적 구조를 나타내는 시상도를 바탕으로 제안하였다. 혼합토사의 건조체적밀도를 고려하기 위해 진흙이 물을 함유하는 함수비를 도입하여 진흙의 건조체적밀도를 고려할 수 있게 하였다. 또한, 제안된 혼합토사의 수치해석 모델을 혼합토사의 사면 붕괴에 적용하여 사면 붕괴에 따른 진흙과 모래의 이동계산이 안정적으로 수행되는 것을 확인하였다.

Keywords

References

  1. Ashida, K., Egashira, S. and Kamoto, M. (1982). Study on the erosion and variation of mountain streams - on the erosion and transportation of sand-clay mixtures. Disaster Prevention Research Institute Annuals B, 25(B-2), 349-360 (in Japanese).
  2. Cheng, Z., Hsu, T. and Calantoni, J. (2017). SedFoam: A multi-dimensional Eulerian two-phase model for sediment transport and its application to momentary bed failure. Coastal Engineering, 119, 32-50. https://doi.org/10.1016/j.coastaleng.2016.08.007
  3. Cho, Y., Nakamura, T. and Mizutani, N. (2019). Introduction of clay loss to mixed soil calculation, Journal of Japan Society of Civil Engineers, Series B2 (Coastal Engineering), 75(2), I_475-I_480 (in Japanese). https://doi.org/10.2208/kaigan.75.I_475
  4. Hanawa, S. (2006). Present situation and future of tidal flats in Japan. Chikyu Kankyo, 11(2), 235-244 (in Japanese).
  5. Imamura, H., Habara, H. and Fukuda, K. (1993). Creation of artificial tidal flat as mitigation technology. Proceedings of Coastal Engineering, Japan Society of Civil Engineers, 40, 1111-1115 (in Japanese). https://doi.org/10.2208/proce1989.40.1111
  6. Kim, H.Y. and Jeon, B.G. (2015). Technologies of artificial tidal flat creation. Geotechnical Engineering, 31(4), 30-34.
  7. Mang, J.H. and Hong, J.S. (2008). Effective mitigation measures for the loss of tidal flat in coastal development projects. Journal of Wetlands Research, 10(1), 49-57.
  8. Kimura, K., Nishimura, O., Ota, Y., Mishima, Y., Shibata, N., Inamori, Y. and Sudo, R. (2002). Study on the succession processes of fish, wild birds and shore florae in artificial beaches. Doboku Gakkai Ronbunshu, 2002(720), 15-25 (in Japanese).
  9. Kumagai, T., Tsuchida, T., Abe, T., Kikuhara, N. and Nunoya, N. (2012). Experimental study on response of sandy mud to wave action. Journal of Japan Society of Civil Engineers, Series B2 (Coastal Engineering), 68(2), 546-550.
  10. Kuwae, T. (2005). Development and self-stabilization of restored and created intertidal flat ecosystems. Doboku Gakkai Ronbunshu, 2005(790), 790_25-790_34 (in Japanese). https://doi.org/10.2208/jscej.2005.790_25
  11. Mitchener, H. and Torfs, H. (1996), Erosion of mud/sand mixtures. Coastal Engineering, 29(1-2), 1-25. https://doi.org/10.1016/S0378-3839(96)00002-6
  12. Nakamura, T., Cho, Y., Mizutani, N. and Lee, K.-H. (2013). Sediment transport calculation considering cohesive effects and its application to wave-induced topographic change of shallows. Japan Society of Civil Engineers, Series B2 (Coastal Engineering), 69(2), I_1036-I_1041 (in Japanese). https://doi.org/10.2208/kaigan.69.I_1036
  13. Nakamura, T. and Mizutani, N. (2010). Numerical simulation of local scouring around inland structure due to run-up tsunami using three-dimensional coupled fluid-structure-sediment interaction model, 24th CFD Symposium. Japan Society of Fluid Mechanics, E10-4,9p (in Japanese).
  14. Nakamura, T. and Mizutani, N. (2016). Numerical simulation of large-scale experiments on local scouring at the landward toe of a coastal dike due to tsunami overflow, Nagare, Japan Society of Fluid Mechanics, 35(5), 379-390 (in Japanese).
  15. Panagiotopoulos, I., Voulgaris, G. and Collins, M.B. (1997). The influence of clay on the threshold of movement of fine sandy beds. Coastal Engineering, 32(1), 19-43. https://doi.org/10.1016/S0378-3839(97)00013-6
  16. Rafati, Y., Hsu, T., Cheng, Z., Yu, X. and Calantoni, J. (2020). Armoring and exposure effects on the wave-driven sediment transport. Continental Shelf Research, 211, 104291. https://doi.org/10.1016/j.csr.2020.104291
  17. Roulund, A., Sumer, B.M., Fredsoe, J. and Michelsen, J. (2005). Numerical and experimental investigation of flow and scour around a circular pile. Journal of Fluid Mechanics, 534, 351-401. https://doi.org/10.1017/S0022112005004507
  18. Takayama, Y., Kokubu, H. and Ueno, S. (2008). The optimum sediment quality condition for benthos habitat found from the field study of the tidal flat which is constructed by dredged sludge in ago bay. Japan, Doboku Gakkai Ronbunshuu B, 2008, 64(3), 139-150 (in Japanese). https://doi.org/10.2208/jscejb.64.139
  19. Van Rijn, L.C. and Barth, R. (2019). Settling and consolidation of soft mud-sand layers. Journal of Waterway, Port, Coastal, and Ocean Engineering, 145(1), 04018028. https://doi.org/10.1061/(asce)ww.1943-5460.0000483
  20. Van Rijn, L.C. (2020). Erodibility of mud-sand bed mixtures. Journal of Hydraulic Engineering, 146(1), 04019050. https://doi.org/10.1061/(asce)hy.1943-7900.0001677
  21. Wu, W., Perera, C., Smith, J. and Sanchez, A. (2018). Critical shear stress for erosion of sand and mud mixtures. Journal of Hydraulic Research, 56(1), 96-110. https://doi.org/10.1080/00221686.2017.1300195