Welcome to Scholar Publishing Group

Academic Journal of Environmental Biology, 2020, 1(4); doi: 10.38007/AJEB.2020.010405.

Environmental Biotechnology in Urban Landfills Based on Big Data of the Internet of Things

Author(s)

Bhimani Janki

Corresponding Author:
Bhimani Janki
Affiliation(s)

Autonomous Univ Morelos State UAEM, Cuernavaca 62209, Morelos, Mexico

Abstract

The wide application of environmental biotechnology in various fields has created huge benefits for human beings. However, since the related environmental biotechnology has not kept up with the rapid improvement of biotechnology, how to improve the application of environmental biotechnology in urban landfills and realize the coordination of technological and technological improvement are the key issues to ensure the healthy improvement of biotechnology. The research purpose of this paper is the application of environmental biotechnology in urban landfills based on the Internet of Things big data background. In the experiment, a mathematical simulation in the form of horizontal pipe network recharge was adopted, taking the municipal solid waste in M City as the research object, sampling and analyzing the experimental garbage before the experimental landfill operation to obtain the component data of the experimental garbage sample. Mathematical simulation in the form of horizontal pipe network recharge. Investigate and analyze domestic waste treatment technology and bioreactor landfill technology.

Keywords

IoT Big Data, Environmental Biotechnology, Municipal Waste, Refuse Landfill

Cite This Paper

Bhimani Janki. Environmental Biotechnology in Urban Landfills Based on Big Data of the Internet of Things. Academic Journal of Environmental Biology (2020), Vol. 1, Issue 4: 40-48. https://doi.org/10.38007/AJEB.2020.010405.

References

[1] Mittal R D, George G P, Mishra J, et al. Role of Functional Polymorphisms of P53 and P73 Genes with the Risk of Prostate Cancer in a Case-Control Study from Northern India. Asian Journal of Microbiology, Biotechnology and Environmental Sciences, 2018, 20(4):1189-1194.

[2] Kulikowska D, Gusiatin Z M. Effect Of Temperature Conditions On Cu, Ni, Zn And Fe Complexation By Humic Substances During Sewage Sludge Composting. Environmental Engineering & Management Journal, 2019, 18(1):213-223. https://doi.org/10.30638/eemj.2019.021

[3] Adelopo A O, Haris P I, Alo B, et al. Conversion of landfill composite to activated carbon to improve landfill sustainability. Waste management & research, 2018, 36(8):708-718.

[4] Yamamoto K, Toya S, Sabidi S, et al. Diluted Luria-Bertani medium vs. sewage sludge as growth media: comparison of community structure and diversity in the culturable bacteria. Applied Microbiology and Biotechnology, 2020, 2020(1):1-12.

[5] Mnif I, Ellouz-Chaabouni S, Ghribi D. Glycolipid Biosurfactants, Main Classes, Functional Properties and Related Potential Applications in Environmental Biotechnology. Journal of Polymers and the Environment, 2018, 26(5):2192-2206.

[6] Michalak I. The application of seaweeds in environmental biotechnology. Advances in Botanical Research, 2020, 95(1):85-111. https://doi.org/10.1016/bs.abr.2019.11.006

[7] Tanveer T, Shaheen K, Parveen S, et al. Omics-Based Bioengineering in Environmental Biotechnology - ScienceDirect. Omics Technologies and Bio-Engineering, 2018(1):353-364.

[8] Speight J G, El-Gendy N S. Biotransformation in the Environment - ScienceDirect. Introduction to Petroleum Biotechnology, 2018(1):259-286.

[9] Silva A B, Costa M F, Duarte A C. Biotechnology advances for dealing with environmental pollution by micro(nano)plastics: Lessons on theory and practices. Current Opinion in Environmental Science & Health, 2018, 1(1):30-35. https://doi.org/10.1016/j.coesh.2017.10.005

[10] Dunn J B. Biofuel and bioproduct environmental sustainability analysis. Current Opinion in Biotechnology, 2019, 57(1):88-93. https://doi.org/10.1016/j.copbio.2019.02.008

[11] Eskandari F, Shahnavaz B, Mashreghi M. Optimization of complete RB-5 azo dye decolorization using novel cold-adapted and mesophilic bacterial consortia. Journal of Environmental Management, 2019, 241(7):91-98.

[12] Sharma J, Shamim K, Dubey S K. Phosphatase mediated bioprecipitation of lead as pyromorphite by Achromobacter xylosoxidans. Journal of Environmental Management, 2018, 217(1):754-761.

[13] Guest J, Novak P, Wang A. Anaerobic technology. Environmental Science: Water Research & Technology, 2018, 4(11):1720-1720. https://doi.org/10.1039/C8EW90040J

[14] Tuomela M, Hatakka A. Oxidative Fungal Enzymes for Bioremediation ☆. Comprehensive Biotechnology (Third Edition), 2019, 6(1):224-239.

[15] Fulcher J. Great minds share insights into water research. World water & environmental engineering, 2018, 41(6):24-24.

[16] Pandiyan, Rajesh, Ayyaru, et al. Non-toxic properties of TiO2 and STiO2 nanocomposite PES ultrafiltration membranes for application in membrane-based environmental biotechnology. Ecotoxicology and Environmental Safety, 2018, 158(8):248-255.

[17] Vasenko L, Bonnemain-Fernandes A, Malwade C, et al. Phosphorus recovery from municipal wastewater via a two-step process of ozonation and crystallization: process development, optimization and upscaling. Environmental Science: Water Research & Technology, 2020, 6(3):817-828. https://doi.org/10.1039/C9EW00994A

[18] Akhtar N, Gupta K, Goyal D, et al. Lignocellulosic Biomass Characteristics For Bioenergy Application: An Overview. Environmental engineering and management journal, 2019, 18(2):367-383. https://doi.org/10.30638/eemj.2019.035