全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Upgraded Analytical Protocols in Bauxite Refining Industry Using Composite Sampling Approach to Minimize Laboratory Analysis Load

DOI: 10.4236/msa.2023.142007, PP. 94-116

Keywords: Composite Sampling, Analytical Methods, Sampling Technique, Bauxite Composite Sampling, Sampling Protocols, Aluminum Ore Sampling Technique, Sampling Methods

Full-Text   Cite this paper   Add to My Lib

Abstract:

The laboratories in the bauxite processing industry are always under a heavy workload of sample collection, analysis, and compilation of the results. After size reduction from grinding mills, the samples of bauxite are collected after intervals of 3 to 4 hours. Large bauxite processing industries producing 1 million tons of pure aluminium can have three grinding mills. Thus, the total number of samples to be tested in one day reaches a figure of 18 to 24. The sample of bauxite ore coming from the grinding mill is tested for its particle size and composition. For testing the composition, the bauxite ore sample is first prepared by fusing it with X-ray flux. Then the sample is sent for X-ray fluorescence analysis. Afterwards, the crucibles are washed in ultrasonic baths to be used for the next testing. The whole procedure takes about 2 - 3 hours. With a large number of samples reaching the laboratory, the chances of error in composition analysis increase. In this study, we have used a composite sampling methodology to reduce the number of samples reaching the laboratory without compromising their validity. The results of the average composition of fifteen samples were measured against composite samples. The mean of difference was calculated. The standard deviation and paired t-test values were evaluated against predetermined critical values obtained using a two-tailed test. It was found from the results that paired test-t values were much lower than the critical values thus validating the composition attained through composite sampling. The composite sampling approach not only reduced the number of samples but also the chemicals used in the laboratory. The objective of improved analytical protocol to reduce the number of samples reaching the laboratory was successfully achieved without compromising the quality of analytical results.

References

[1]  Peng, N.L., Hua, L. and Qing, H.Y. (2013) Determination of Multiple Elements in Wenshan Bauxite by XRF Spectrometry. Acta Mineralogica Sinica, 33, 530-534. (In Chinese)
[2]  Tam, J.H., Ong, Z.C., Ismail, Z., Ang, B.C. and Khoo, S.Y. (2017) Identification of Material Properties of Composite Materials Using Nondestructive Vibrational Evaluation Approaches: A Review. Mechanics of Advanced Materials and Structures, 24, 971-986.
https://doi.org/10.1080/15376494.2016.1196798
[3]  Botelho Junior, A.B., Espinosa, D.C.R. and Tenório, J.A.S. (2021) Characterization of Bauxite Residue from a Press Filter System: Comparative Study and Challenges for Scandium Extraction. Mining, Metallurgy & Exploration, 38, 161-176.
https://doi.org/10.1007/s42461-020-00333-3
[4]  Keith, L.H. (2017) Environmental Sampling and Analysis: A Practical Guide. Routledge, New York.
[5]  Potts, J.R., Shankar, O., Du, L. and Ruoff, R.S. (2012) Processing-Morphology- Property Relationships and Composite Theory Analysis of Reduced Graphene Oxide/Natural Rubber Nano Composites. Macromolecules, 45, 6045-6055.
https://doi.org/10.1021/ma300706k
[6]  Talvitie, J., Mikola, A., Koistinen, A. and Setala, O. (2017) Solutions to Microplastic Pollution-Removal of Microplastics from Wastewater Effluent with Advanced Wastewater Treatment Technologies. Water Research, 123, 401-407.
https://doi.org/10.1016/j.watres.2017.07.005
[7]  Olivieri, G., Romani, A. and Neri, P. (2006) Environmental and Economic Analysis of Aluminium Recycling through Life Cycle Assessment. The International Journal of Sustainable Development & World Ecology, 13, 269-276.
https://doi.org/10.1080/13504500609469678
[8]  Song, Y.K., et al. (2015) A Comparison of Microscopic and Spectroscopic Identification Methods for Analysis of Microplastics in Environmental Samples. Marine Pollution Bulletin, 93, 202-209.
https://doi.org/10.1016/j.marpolbul.2015.01.015
[9]  Pini, A., Stamm, A. and Vantini, S. (2017) Hotelling Meets Hilbert: Inference on the Mean in Functional Hilbert Spaces. In: Petrucci, A. and Verde, R., Eds., SIS2017. Statistics and Data Science: New Challenges, New Generations: Proceedings of the Conference of the Italian Statistical Society, Firenze University Press, Firenze, 791.
[10]  Ooi, C.Y., et al. (2014) Does Integration of Various Ion Channel Measurements Improve Diagnostic Performance in Cystic Fibrosis? Annals of the American Thoracic Society, 11, 562-570.
https://doi.org/10.1513/AnnalsATS.201311-412OC
[11]  Fediuk, R.S., Smoliakov, A.K., Timokhin, R.A., Batarshin, V.O. and Yevdokimova, Y.G. (2017) Using Thermal Power Plants Waste for Building Materials. IOP Conference Series: Earth and Environmental Science, 87, Article ID: 092010.
https://doi.org/10.1088/1755-1315/87/9/092010
[12]  Kumar, P.S., Ravi, B.P., Khanadali, M.D., Reddy, U.M. and Shila, G. (2019) Processing of Bauxite Mine Waste for Metallurgical Applications. Journal of Applied Geochemistry, 21, 428-431.
[13]  Correll, R.L. (2001) The Use of Composite Sampling in Contaminated Sites—A Case Study. Environmental and Ecological Statistics, 8, 185-200.
https://doi.org/10.1023/A:1011395422397
[14]  Tom, A., Djonga, P.N.D., Tsamo, C., Valery, H.G., Azangueu, J. and Noukelack, S.K. (2022) Structural Characterization of Bauxite Red Mud to Utilization in Ceramic Wall/Roofing Tile: Effect of Temperature on Mechanical Properties and Physic-Chemical Stability. Advances in Materials Physics and Chemistry, 12, 1-18.
https://doi.org/10.4236/ampc.2022.121001
[15]  Arseneau, J., et al. (2021) Wood Ash Application in Sugar Maple Stands Rapidly Improves Nutritional Status and Growth at Various Developmental Stages. Forest Ecology and Management, 489, Article ID: 119062.
https://doi.org/10.1016/j.foreco.2021.119062
[16]  Ogunkunle, C.O. and Fatoba, P.O. (2013) Pollution Loads and the Ecological Risk Assessment of Soil Heavy Metals around a Mega Cement Factory in Southwest Nigeria. Polish Journal of Environmental Studies, 22, 487-493.
[17]  Bortoleto, D.A., Chieregati, A.C., Pereira, A.H.R. and Oliveira, R.C. (2014) The Application of Sampling Theory in Bauxite Protocols. Rem: Revista Escola de Minas, 67, 215-220.
https://doi.org/10.1590/S0370-44672014000200014
[18]  Ben-David, E.A., et al. (2021) Microplastic Distributions in a Domestic Wastewater Treatment Plant: Removal Efficiency, Seasonal Variation and Influence of Sampling Technique. Science of the Total Environment, 752, Article ID: 141880.
https://doi.org/10.1016/j.scitotenv.2020.141880
[19]  Reicherts, J.D. and Emerson, C.W. (2010) Monitoring Bathing Beach Water Quality Using Composite Sampling. Environmental Monitoring and Assessment, 168, 33-43.
https://doi.org/10.1007/s10661-009-1089-0
[20]  George, M.M., Paras, K.L., Howell, S.B. and Kaplan, R.M. (2017) Utilization of Composite Fecal Samples for Detection of Anthelmintic Resistance in Gastrointestinal Nematodes of Cattle. Veterinary Parasitology, 240, 24-29.
https://doi.org/10.1016/j.vetpar.2017.04.024
[21]  Cicchella, D., Lima, A., Birke, M., Demetriades, A., Wang, X. and De Vivo, B. (2013) Mapping Geochemical Patterns at Regional to Continental Scales Using Composite Samples to Reduce the Analytical Costs. Journal of Geochemical Exploration, 124, 79-91.
https://doi.org/10.1016/j.gexplo.2012.08.012
[22]  Zhang, L. and Sun, X. (2014) Effects of Rhamnolipid and Initial Compost Particle Size on the Two-Stage Composting of Green Waste. Bioresource Technology, 163, 112-122.
https://doi.org/10.1016/j.biortech.2014.04.041
[23]  Guerrero, C. and Lorenzetti, R. (2021) Use of Composite Samples and NIR Spectroscopy to Detect Changes in SOC Contents. Geoderma, 396, Article ID: 115069.
https://doi.org/10.1016/j.geoderma.2021.115069
[24]  Dahl, M., Liu, Y. and Yin, Y. (2014) Composite Titanium Dioxide Nanomaterials. Chemical Reviews, 114, 9853-9889.
https://doi.org/10.1021/cr400634p
[25]  Leddin, C., Giri, K. and Smith, K. (2020) Application and Analysis of a Composite Sampling Strategy to Cost-Effectively Compare Nutritive Characteristics of Perennial Ryegrass Cultivars in Field Trials. Agronomy, 10, Article No. 1152.
https://doi.org/10.3390/agronomy10081152
[26]  France, B., Bell, W., Chang, E. and Scholten, T. (2015) Composite Sampling Approaches for Bacillus anthracis Surrogate Extracted from Soil. PLOS ONE, 10, e0145799.
https://doi.org/10.1371/journal.pone.0145799
[27]  Tomljanovic, C. (2010) Development of Exposure Point Concentrations with Incremental Sampling Data-Comparing Means and Confidence Intervals of Discrete, Composite, and Incremental Sampling Environmental Study Data. National Defense Center for Energy and Environment, Johnstown.
[28]  Hess, B.M., Amidan, B.G., Anderson, K.K. and Hutchison, J.R. (2016) Evaluating Composite Sampling Methods of Bacillus Spores at Low Concentrations. PLOS ONE, 11, e0164582.
https://doi.org/10.1371/journal.pone.0164582
[29]  Patil, G.P., Gore, S.D. and Taillie, C. (2011) Composite Sampling of Soils and Sediments. In: Composite Sampling. Environmental and Ecological Statistics, Vol. 4, Springer, Boston, 209-225.
https://doi.org/10.1007/978-1-4419-7628-4_11
[30]  Horta, A., et al. (2015) Potential of Integrated Field Spectroscopy and Spatial Analysis for Enhanced Assessment of Soil Contamination: A Prospective Review. Geoderma, 241, 180-209.
https://doi.org/10.1016/j.geoderma.2014.11.024
[31]  Allbed, A., Kumar, L. and Aldakheel, Y.Y. (2014) Assessing Soil Salinity Using Soil Salinity and Vegetation Indices Derived from IKONOS High-Spatial Resolution Imageries: Applications in a Date Palm Dominated Region. Geoderma, 230, 1-8.
https://doi.org/10.1016/j.geoderma.2014.03.025
[32]  Patil, G.P. (1995) Composite Sampling. Environmental and Ecological Statistics, 2, 169-179.
https://doi.org/10.1007/BF00456662
[33]  Brumelle, S., Nemetz, P. and Casey, D. (1984) Estimating Means and Variances: The Comparative Efficiency of Composite and Grab Samples. Environmental Monitoring and Assessment, 4, 81-84.
https://doi.org/10.1007/BF01047623
[34]  Kosmelj, K., Cedilnik, A. and Kalan, P. (2001) Comparison of a Two-Stage Sampling Design and Its Composite Sample Alternative: An Application to Soil Studies. Environmental and Ecological Statistics, 8, 109-119.
https://doi.org/10.1023/A:1011378431085
[35]  Poudel, D.D. and Jeong, C.Y. (2009) Manual Composite Sampling in Edge-of-Field Surface Runoff for Assessing Nonpoint Source Pollution from Agricultural Lands and Residential Areas. Journal of Soil and Water Conservation, 64, 324-335.
https://doi.org/10.2489/jswc.64.5.324
[36]  Drechsler, H.D. and Nemetz, P.N. (1978) The Impact of Composite Sampling and Other Data Aggregation Procedures on Pollution Detection in the Pulp and Paper Industry. Canadian Journal of Forest Research, 8, 328-340.
https://doi.org/10.1139/x78-049
[37]  Ma, J.-S., Kang, J.-H., Kayhanian, M. and Stenstrom, M. K. (2009) Sampling Issues in Urban Runoff Monitoring Programs: Composite versus Grab. Journal of Environmental Engineering, 135, 118-127.
https://doi.org/10.1061/(ASCE)0733-9372(2009)135:3(118)
[38]  Gore, S.D., Patil, G.P. and Taillie, C. (1996) Identification of the Largest Individual Sample Value Using Composite Sample Data and Certain Modifications of the Sweep-out Method. Environmental and Ecological Statistics, 3, 219-234.
https://doi.org/10.1007/BF00453011
[39]  Applegate, C.K., Buchanan, B.A. and Postle, R. (2001) Modifying Root-Zone Spoil Sampling Methods Using Vertical and Horizontal Composite Sampling Techniques. Proceedings of America Society of Mining and Reclamation, 373-378.
https://doi.org/10.21000/JASMR01010373
[40]  Lohr, S.L. (2021) Sampling: Design and Analysis. Chapman and Hall/CRC, New York.
https://doi.org/10.1201/9780429298899
[41]  Hathaway, J.E., Schaalje, G.B., Gilbert, R.O., Pulsipher, B.A. and Matzke, B.D. (2008) Determining the Optimum Number of Increments in Composite Sampling. Environmental and Ecological Statistics, 15, 313-327.
https://doi.org/10.1007/s10651-007-0089-x
[42]  van Belle, G., Griffith, W.C. and Edland, S.D. (2001) Contributions to Composite Sampling. Environmental and Ecological Statistics, 8, 171-180.
https://doi.org/10.1023/A:1011363522424
[43]  Som, R.K. (1995) Practical Sampling Techniques. CRC Press, Boca Raton.
https://doi.org/10.1201/9781482273465
[44]  Splitstone, D.E. (2001) Sample Support and Related Scale Issues in Composite Sampling. Environmental and Ecological Statistics, 8, 137-149.
https://doi.org/10.1023/A:1011342919698
[45]  Patil, G.P., Gore, S.D. and Taillie, C. (2011) Composite Sampling with Random Weights. In: Composite Sampling. Environmental and Ecological Statistics, Vol. 4, Springer, Boston, 115-134.
https://doi.org/10.1007/978-1-4419-7628-4_7
[46]  Bjerrum, S., Kenu, E., Lartey, M., et al. (2015) Diagnostic Accuracy of the Rapid Urine Lipoarabinomannan Test for Pulmonary Tuberculosis among HIV-Infected Adults in Ghana-Findings from the DETECT HIV-TB study. BMC Infectious Diseases, 15, Article No. 407.
https://doi.org/10.1186/s12879-015-1151-1
[47]  Ike, I.A., Linden, K.G., Orbell, J.D. and Duke, M. (2018) Critical Review of the Science and Sustainability of Persulphate Advanced Oxidation Processes. Chemical Engineering Journal, 338, 651-669.
https://doi.org/10.1016/j.cej.2018.01.034
[48]  EPA (2005) Composite Soil Sampling in Site Contamination Assessment and Management. United States Environmental Protection Agency, Washington DC.

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133

WeChat 1538708413