Geospatial Predictive Model for Estimating Soil Thermal Conductivity and Diffusivity of Owaza Gas Flaring Site , Southeastern Nigeria
1 Department of Soil Science and Meteorology, Michael Okpara University of Agriculture, Umudike, Abia State, Nigeria
2 Department of Soil Science and Meteorology, Michael Okpara University of Agriculture, Umudike, Abia State
* Corresponding author: nwagbaramo@soilsjournalnigeria.com
2 Department of Soil Science and Meteorology, Michael Okpara University of Agriculture, Umudike, Abia State
* Corresponding author: nwagbaramo@soilsjournalnigeria.com
Abstract
In this study, predictive model for estimating the soil thermal conductivity and diffusivity from fourteen different sample points around a horizontal gas flaring site was employed in two depths (0 – 15 cm and 15 – 30 cm). Seven of these points were within the gas flare bond wall. In contrast, other points were located outside the bond wall at varying distances in the direction of the flaring. Soil temperature was determined in situ using a mercury-in-glass thermometer from these points. Core-samplers were driven into these points for dry bulk density and moisture determination. Simple descriptive statistics of mean, standard deviation and detailed geostatistics were employed to describe the variability and spatial distribution patterns of the soil thermal properties using ArcGIS 10.1. Results showed soil temperature increasing significantly (23.5 – 45 oC) as distance decreased towards the flare point. The predicted soil thermal conductivity and diffusivity values varied from 1.65 - 4.89 Wm-1K-1 and 0.77- 2.05 m2s-1 within the flare bond wall and 1.58 – 1.72 Wm-1K-1 and 0.56 – 0.71 m2s-1 outside the wall at 0 – 15 cm and 15 - 30 cm depths respectively. The spatial distribution maps for both soil depths showed significant variations. From the predictive soil thermal conductivity and diffusivity values, arable soil within the flare site is not suitable for agricultural activities. Therefore, for good soil health and physical characteristics, a distance of 4 km away from the flare site is recommended as soil temperature decreases with increasing distance from the site.
Keywords
moisture determination. simple descriptive statistics of mean
standard deviation
References
- Abu-Hamdeh, N.H. (2000). Effect of tillage treatments on soil thermal conductivity for some Jordanian clay loam and loam soils. Soil Tillage Research, 56, 145–151.
- Abu-Hamdeh, N.H., and Reeder, R.C. (2000). Soil thermal conductivity: Effects of density, moisture, salt concentration, and organic matter. Soil Sci. Soc. Am. J., 64, 1285–1290.
- Akpobome, C.A. (2004). Oil spillage and gas flaring and environmental degradation in the Niger Delta, Nigeria. Journal of Environmental Analysis, 2, 18–26.
- Alakpodia, J. (2000). Soil Characteristics under Gas Flare in Niger Delta, Southern Nigeria Geo-Studies Forum. Am Int. J. Environ, Policy Issues, 1, 1-10.
- APHA (1985). Standard Methods for the examination of wastewater, 15th ed. American Public Health Association, Washington DC.
- Arocena, J. M. and Opio, C. (2003). Prescribed fire-induced changes in properties of sub-boreal forest soils. Geoderma, 113(1), 1-16.
- Benka-Coker, M. O. and Ekundayo, J. A. (1997). Applicability of evaluating the ability of microbes isolated from an oil spill site to degrade oil. Environmental Monitoring and Assessment, 45(3), 259-272.
- Blake G.R and Hartge K.H. (1990). Methods of soil analysis part and physical and mineralogical methods, 2nd edition. Madison. W.I ASA and SSSA, pp. 363-375. Agron. Monogram 9.
- Botkin D.B and Keller E.A. (1995). Environmental Science: The Earth as a Living Planet-2nd Edition. John Wiley and Sons, Canada.
- Botkin, D.B and Keller E.A. (1998). Environmental Science Earth as a Living Planet. 2nd Edition John Wiley and Sons, Canada.
- Bouma, J. (1989). Using soil survey data for quantitative land evaluation. Advances in Soil Science, 9, 177–213.
- Campbell, G.S. (1985). Soil physics with BASIC: Transport models for soil-plant systems. Elsevier, New York.
- Campbell, G.S., Junghauer, J.D., Bidlake, W.R. and Hungerford, R.D. (1994). Predicting the effect of temperature on soil thermal conductivity. Soil Sci., 158, 307–313.
- Chukwu, G.O. (2007). Soil Fertility Capability Classification for Seed Yam (Dioscorea rotundata Poir) on Acid Soils of South-Eastern Nigeria, Unpublished PhD thesis Submitted to Federal University of Technology, Minna, Niger State, Nigeria, pp. 190.
- Cohen, J., Cohen, P., West, S. G., Aiken, L. S. (2013). Applied multiple regression/correlation analysis for the behavioural sciences. Routledge, New York.
- Cruz, C. D. (2013): Genes: a software package for analysis in experimental statistics and quantitative genetics. Acta Scientiarum. Agronomy, 35(3), 271-276.
- Cruz-Rodriguez, L. (2004). Soil organic carbon and nitrogen distribution in a tropical watershed. MSc. Thesis. University of Puerto Rico, Mayagüez campus.
- Danelichen, V. H. M, and Biudes, M. S. (2011). Avaliação da Difusividade Térmica de um Solo no Norte do Pantanal. Ciência Natura, 33(8), 227-240.
- Ekwue, E.I., Stone, R.J., Bhagwat, D. (2006). Thermal conductivity of some compacted Trinidadian soils as affected by peat content, Biosystems Engineering, 94, 461-469.
- Ekwue, E.I., Stone, R.J, Bhagwat, D. (2011). Thermal conductivity of some common soils in Trinidad. West Indian Journal of Engineering, 33, 4 -11.
- Ekwue, E.I., Stone, R.J, Maharaj, V.V., Bhagwat, D. (2005). Thermal conductivity and diffusivity of four Trinidadian soils as affected by peat content. Transactions of the ASAE, 57, 1803-1815.
- Enwezor, W.O., Udo E.J., Ayorade, W.A., Adepuju, J. and Chude V.O. (1990). A Review of Soil and Fertilizer use Research in Nigeria. In: Literature Review on soil Fertility Investigation in Nigeria. Federal Ministry of Agriculture and Natural Resources., Lagos, pp.53-100.
- Gee, G.W., and Or, D. (2002). Particle-size analysis. In J.H. Dane and G.C. Topp (ed) Methods of soil analysis. Part. 4. Physical methods. SSSA Book Ser. 5. SSSA, Madison, WI, pp. 255–293.
- Ghuman, B. S. and Lal R., 1985. Thermal conductivity, organic carbon, and organic matter. In: J.L. Page et al., editors, Methods of soil analysis. Part 2. Chemical and microbiological properties. 2nd ed. AS SSSA, Madison, WI, pp. 179–80.
- Hassan, A. and Koudy, R., (2013). Gas flaring in Nigeria: Analysis of changes in its consequent carbon emission and reporting. Accounting Forum, 37(2), 124–134
- Hewitt, D.N., Sturges, W.T. and Noah, A. (1995). Global Atmospheric Chemical Changes. Chapman and Hall Publishers New York.
- Hillel, D. (1998). Environmental Soil Physics. Academic Press, London, pp. 771.
- Hopmans, J.W., and Dane, J.H. (1986). Thermal conductivity of porous media as a function of water content, temperature and density. Soil Sci., 142, 187–195.
- Ikelegbe, O. O. (1993). Pollution in Nigeria, cause, effect and control. 20th Proceeding of Nigerian Environmental Association Conference, Minna, Nigeria, pp. 17-18
- Jang, H.D. (2004). Environment and crops. In: Uwehi, Z.S. (ed.). Principles of Environmental Management, Ibadan: ONAKS Press, pp. 106–30.
- Lloyd, J. and Taylor, J. A. (1994). On the temperature-dependence of soil respiration. Functional Ecology, 8, 315–323.
- Luo, L. F., Robock, A., Vinnikov, K. Y., Schlosser, C. A., Slater, A. G., Boone, A., Braden, H., Cox, P., de Rosnay, P., Dickinson, R. E., Dai, Y. J., Duan, Q. Y., Etchevers, P., Henderson-Sellers, A., Gedney, N., Gusev, Y. M., Habets, F., Kim, J. W., Kowalczyk, E., Mitchell, K., Nasonova, O. N., Noilhan, J., Pitman, A. J., Schaake, J., Shmakin, A. B., Smirnova, T. G., Wetzel, P., Xue, Y. K., Yang, Z. L. and Zeng, Q. C. (2003). Effects of frozen soil on soil temperature, spring infiltration, and runoff: Results from the PILPS 2(d) experiment at Valdai, Russia. Journal of Hydrometeorology, 4, 334–351.
- Nakshabandi, G.A. and Kohnke, H. (1965). Thermal conductivity and diffusivity of soils as related to moisture tension and other physical properties. Agricultural. Meteorology, 2, 271–279.
- Nelson, D.W. and Sommers, L.E. (1982). Total carbon, organic carbon, and organic matter. In: A.L. Page, editors, Methods of soil analysis. Part 2. Agron. Monogr. 9. SSSA, ASA, Madison, WI, pp. 539–579.
- Odjugo, P.A.O. and Osemwenkhae, E.J. (2009). Global gas flaring affects microclimate and reduces maize (Zea mays) yield. International Journal of Agricultural Biology, 11, 1408e412
- Oladunjoye, M. A. and Sanuade, O. A. (2012). In situ determination of thermal resistivity of soil: case study of Olorunsogo power plant, southwestern Nigeria. International Journal of Recent Research and Applied Studies, 13(2), 502–521.
- Orubu, C. O. (2002). Oil Industry activities, Environmental Quality, and the Paradox of Poverty in Niger Delta. In: The Petroleum Industry, the Economy and the Niger-Delta Environment. (Eds), Orubo, C.O., Ogisi, D.O. and Okoh, R.N., pp. 17-31.
- Rubio, M. C., Cobos, D. R., Josa R. and Ferrer, F. (2009). A new analytical laboratory procedure for determining the thermal properties in porous media, based on the American standard D5334-05, Estudios en la Zona no Saturada del Suelo IX 18-20.
- Singh, D. N. and Devid, K. (2000). Generalized relationships for estimating soil thermal Resistivity. Experimental Thermal and Fluid Sciences, 22, 133-143.
- Smits K.M., Sakaki T., Howington S.E., Peters J.F. and Illangasekare T.H. (2013). Temperature dependence of thermal properties of sands across a wide range of temperatures (30–70°C). Vadose Zone Journal, 12(1), 1-8.
- Udoinyang, G.U. (2005). The effects of gas flaring on sweet potato production in the Niger Delta, Nigeria. Journal of Ecosystem, 10, 77–86.
- USDA Soil Survey Staff (2003). Soil taxonomy: A basic system for making and interpreting soil surveys. 2nd ed. Agriculture Handbook 436, 128-129. Washington, D.C. USDA.
How to Cite
M.O, N., A.O., I., K.C, U., & E.A, A. (2019). Geospatial Predictive Model for Estimating Soil Thermal Conductivity and Diffusivity of Owaza Gas Flaring Site , Southeastern Nigeria. Nigerian Journal of Soil Science, 29(2), 110-121. https://doi.org/10.67042/njss.2019.qtrrtiqp
N. M.O, I. A.O., U. K.C, and A. E.A, "Geospatial Predictive Model for Estimating Soil Thermal Conductivity and Diffusivity of Owaza Gas Flaring Site , Southeastern Nigeria," Nigerian Journal of Soil Science, vol. 29, no. 2, pp. 110-121, April 2019. doi: 10.67042/njss.2019.qtrrtiqp