Method for detecting soil total nitrogen contents based on pyrolysis and artificial olfaction
Abstract
Keywords: pyrolysis, artificial olfactory system, soil total nitrogen, gas sensor array, prediction methods
DOI: 10.25165/j.ijabe.20221503.7086
Citation: Li M W, Zhu Q H, Liu H, Xia X M, Huang D Y. Method for detecting soil total nitrogen contents based on pyrolysis and artificial olfaction. Int J Agric & Biol Eng, 2022; 15(3): 167–176.
Keywords
Full Text:
PDFReferences
Guo P T, Li M F, Luo W, Lin Q H, Tang Q F, Liu Z W. Prediction of soil total nitrogen for rubber plantation at regional scale based on environmental variables and random forest approach. Transactions of the CSAE, 2015; 31(5): 194–202. (in Chinese)
Li Y, Wang R H, Guan Y L, Jiang Y L, Wu X Q, Peng Q. Prediction analysis of soil total nitrogen content based on hyperspectral. Remote Sensing Technology and Application, 2017; 32(1): 173–179. (in Chinese)
Zhou P, Yang W, Li M Z, Deng L H, Chen Y Q. Soil total nitrogen content prediction based on gray correlation-extreme learning machine. Transactions of the CSAM, 2017; 48(S1): 271–276. (in Chinese)
Song Q. Study on composition and property of organic nitrogen in several soils of China. Acta Pedologica Sinica, 1988; 25(1): 95–100. (in Chinese)
Guan L Z. General soil science, 2nd ed. Beijing: China Agricultural University Press, 2016; 382p. (in Chinese)
Wang M H. Development of precision agriculture and innovation of engineering technologies. Transactions of the CSAE, 1999; 15(1): 1–8. (in Chinese)
Hou Y P, Han L G, Kong L L, Yi C X, Qin Y B, Li Q, et al. Nutrient absorption, translocation in rice and soil nitrogen equilibrium under different nitrogen application doses. Journal of Plant Nutrition and Fertilizer, 2015; 21(4): 836–845. (in Chinese)
Qin L, Huang S Q, Zhong L L, Zhou H, Zhao S, Xiang B, Lei S R. Comparison of Dumas combustion and Kjeldahl methods for determining total nitrogen content in soil. Soil and Fertilizer Sciences in China, 2020; 4: 258–265. (in Chinese)
Zhang J J, Tian Y C, Yao X, Cao W X, Ma X M, Zhu Y. Estimating model of soil total nitrogen content based on near-infrared spectroscopy analysis. Transactions of the CSAE, 2012; 28(12): 183–188. (in Chinese)
Ben-Dor E, Banin A. Near-Infrared analysis as a rapid method to simultaneously evaluate several soil properties. Soil Science Society of America Journal, 1995; 59(2): 364–372.
Yao X, Ren H, Cao Z, Tian Y, Cao W, Zhu Y, Chen T. Detecting leaf nitrogen content in wheat with canopy hyperspectrum under different soil backgrounds. International Journal of Applied Earth Observation & Geoinformation, 2014; 32: 114–124.
An X F, Li M Z, Deng L H, Liu Y M, Zhang Y J. Performance of portable soil TN detector based on NIR spectroscopy. Transactions of the CCSAM, 2012; 43(S1): 283–288. (in Chinese)
Zhao Y D, Pi T T. Spectral prediction model of soil total nitrogen content of clay loam soil in Beijing. Transactions of the CSAM, 2016; 47(3): 144–149. (in Chinese)
Wang H J, Liu F, Yunger J A, Cui J, Ma L. Fitting model of soil total nitrogen content in different soil particle sizes using hyperspectral analysis. Transactions of the CSAM, 2019; 50(2): 202–211. (in Chinese)
Nie P C, Dong T, He Y, Xiao S P, Qu F F, Lin L. The effects of drying temperature on nitrogen concentration detection in calcium soil studied by NIR spectroscopy. Applied Sciences, 2018; 8(2): 269. doi: 10.3390/app8020269.
He Y, Xiao S P, Nie P C, Dong T, Qu F F, Lin L. Research on the optimum water content of detecting soil nitrogen using near infrared sensor. Sensors, 2017; 17(9): 2045. doi: 10.3390/s17092045.
Stoner E R, Baumgardner M F. Characteristic variations in reflectance of surface soils. Soil Science Society of America Journal, 1981; 45(6): 1161–1165.
Bowers S A, Hanks R J. Reflection of radiant energy from soil. Soil Science, 1965; 100(2): 130–138.
Liu W D, Baret F, Gu X F, Tong Q X, Zheng L F, Zhang B. Relating soil surface moisture to reflectance. Remote Sensing of Environment, 2002; 81(2): 238–246.
De Cesare F, Di Mattia E, Pantalei S, Zampetti E, Vinciguerra V, Canganella F, et al. Use of electronic nose technology to measure soil microbial activity through biogenic volatile organic compounds and gases release. Soil Biology & Biochemistry, 2011; 43(10): 2094–2107.
Sheppard S K, Lloyd D. Direct mass spectrometric measurement of gases in soil monoliths. Journal of Microbiological Methods, 2002; 50(2): 175–188.
Mcneal K S, Herbert B E. Volatile organic metabolites as indicators of soil microbial activity and community composition shifts. Soil Science Society of America Journal, 2009; 73(2): 579–588.
Fernando W G D, Ramarathnam R, Krishnamoorthy A S, Savchuk S C.
Identification and use of potential bacterial organic antifungal volatiles in biocontrol. Soil Biology & Biochemistry, 2005; 37(5): 955–964.
Zhu L T, Li M W, Xia X M, Huang D Y, Jia H L. Soil organic matter detection method based on artificial olfactory system. Transactions of the CSAM 2020; 51(3): 171–179. (in Chinese)
Zhu L T, Jia H L, Chen Y B, Wang Q, Li M W, Huang D Y, et al. A novel method for soil organic matter determination by using an artificial olfactory system. Sensors, 2019; 19(15): 3417. doi: 10.3390/s19153417
Al-Rahbi A S, Onwudili J A, Williams P T. Thermal decomposition and gasification of biomass pyrolysis gases using a hot bed of waste derived pyrolysis char. Bioresource Technology, 2016; 204: 71–79.
Kim Y, Oh J I, Lee S S, Lee K H, Lee J, Kwon E E. Decontamination of petroleum-contaminated soil via pyrolysis under carbon dioxide atmosphere. Journal of Cleaner Production, 2019; 236: 117724. doi: 10.1016/j.jclepro.2019.117724.
Li H L, Qu R H, Li C, Guo W L, Han X M, He F, et al. Selective removal of polycyclic aromatic hydrocarbons (PAHs) from soil washing effluents using biochars produced at different pyrolytic temperatures. Bioresource Technology, 2014; 163: 193–198.
Becker J N, Dippold M A, Hemp A, Kuzyakov Y. Ashes to ashes: Characterization of organic matter in Andosols along a 3400 m elevation transect at Mount Kilimanjaro using analytical pyrolysis. Catena, 2019; 180: 271–281.
Girona-Garcia A, Badia-Villas D, Nicasio T, Jimenez-Morillo N T, Gonzalez-Perez G A. Changes in soil organic matter composition after Scots pine afforestation in a native European beech forest revealed by analytical pyrolysis (Py-GC/MS). Science of the Total Environment, 2019; 691: 1155–1161.
Jackie J, Chua C K, Chong D C Y, Lim S Y, Li S F Y. Rapid and sensitive direct detection of endotoxins by Pyrolysis-Gas Chromatography-Mass Spectrometry. ACS Omega, 2021, 6(23): 15192–15198.
al Sandouk-Lincke N A, Schwarzbauer J, Hartkopf-Froeder C, Volk H, Fuentes D, Young M. The effect of different pyrolysis temperatures on organic microfossils, vitrain and amber-A comparative study between laser assisted- and Curie Point-pyrolysis-gas chromatography/mass spectrometry. Journal of Analytical & Applied Pyrolysis, 2014; 107: 211–223.
Stewart C E. Evaluation of angiosperm and fern contributions to soil organic matter using two methods of pyrolysis-gas chromatography-mass spectrometry. Plant and Soil, 2011; 351(1-2): 31–46.
Wei S Y, Pintus V, Schreiner M. Photochemical degradation study of polyvinyl acetate paints used in artworks by Py-GC/MS. Journal of Analytical & Applied Pyrolysis, 2012; 97: 158–163.
Plum A, Engewald W, Rehorek A. Rapid qualitative pyrolysis GC-MS analysis of carcinogenic aromatic amines from dyed textiles. Chromatographia, 2003; 57(S1): S243–S248.
De La Rosa J M, Faria S R, Varela M E, Knicker H, Gonzalez-Vila F J, Gonzalez-Perez J A, Keizer J. Characterization of wildfire effects on soil organic matter using analytical pyrolysis. Geoderma, 2012; 191(S1): 24–30.
Chen Q Y, Wu Y Q, Lei T Z, Si G C, Zhang G X. Study on the fingerprints of soil organic components in alpine grassland based on Py-GC-MS/MS Technology. Acta Ecologica Sinica, 2018; 38(8): 2864–2873. (in Chinese)
Stafilov T, Spiric Z, Glad M, Barandovski L, Andonovska K, Sajn R, et al.
Study of nitrogen pollution in the Republic of North Macedonia by moss biomonitoring and Kjeldahl method. Journal of Environmental Science and Health, Part A, 2020; 55(6): 759–764.
Hakoda A, Li Y, Naito S, Suzuki T, Yasui A. Determination of crude protein in macaroni products by the combustion method and comparison with the Kjeldahl method: interlaboratory study. Japanese Society for Food Science and Technology, 2011; 17(3): 227–232.
Kiełczewska K, Dąbrowska A, Jankowska A, Wachowska M, Kowalik J. The effect of high-pressure treatment and skimming on caprine milk proteins. Applied Sciences, 2021; 11(13): 5982. doi: 10.3390/app11135982.
Qi N L, Li P W, Zeng X H, Huang H H, Yang Z M, Gong X. Comparison of Kjeldahl and the elemental analysis methods for determination of nitrogen content in raw natural rubber. Advanced Materials Research, 2013; 815: 722–726.
Silva T E D, Detmann E, Franco M D O, Palma M N N, Rocha G C. Evaluation of digestion procedures in Kjeldahl method to quantify total nitrogen in analyses applied to animal nutrition. Acta Scientiarum: Animal Sciences, 2016; 38(1): 45–51.
Ates F, Kaya O. The relationship between iron and nitrogen concentrations based on Kjeldahl method and SPAD-502 readings in grapevine (Vitis vinifera L. cv. ‘Sultana Seedless’). Erwerbs-Obstbau, 2021; 63(S1): 53–59.
De la Rosa J M, Faria S R, Varela M E, Knicker H, Gonzalez-Vila F J, Gonzalez-Perez J A, et al. Characterization of wildfire effects on soil organic matter using analytical pyrolysis. Geoderma, 2012; 191(S1): 24–30.
He Z H, Ma Z H, Li M C, Zhou Y. Selection of a calibration sample subset by a semi-supervised method. Journal of Near Infrared Spectroscopy, 2018; 26(2): 87–94.
Qi H J, Paz-Kagan T, Karnieli A, Jin X, Li S W. Evaluating calibration methods for predicting soil available nutrients using hyperspectral VNIR data. Soil and Tillage Research, 2018; 175: 267–275.
Wold S, Ruhe A, Wold H, Dunn W J. The collinearity problem in linear regression. The partial least squares (PLS) approach to generalized inverses. SIAM J. Sci. Stat. Comput. 1984; 5(3): 735–743.
Rossel R A V, Walvoort D J J, Mcbratney A B, Janik L J, Skjemstad J O. Visible, near infrared, mid infrared or combined diffuse reflectance spectroscopy for simultaneous assessment of various soil properties. Geoderma, 2006; 131(1-2): 59–75.
Ji W J, Shi Z, Huang J Y, Li S. In situ measurement of some soil properties in paddy soil using visible and near-infrared spectroscopy. PloS One, 2014; 9: e105708. doi: 10.1371/journal.pone.0159785
Li B B, Julian M, Martin E B. Model selection for partial least squares regression. Chemometrics and Intelligent Laboratory System, 2002; 64: 79–89.
LI X F, Xiang S Y, Zhu P F, Wu M. Establishing a dynamic self-adaptation learning algorithm of the BP neural network and its applications. International Journal of Bifurcation and Chaos, 2015; 25(14): 1540030. doi: 10.1142/S0218127415400301.
Vohland M, Besold J, Hill J, Frund H C. Comparing different multivariate calibration methods for the determination of soil organic carbon pools with visible to near infrared spectroscopy. Geoderma, 2011; 166(1): 198–205.
Copyright (c) 2022 International Journal of Agricultural and Biological Engineering
This work is licensed under a Creative Commons Attribution 4.0 International License.