Implementation of An Application-Based Motor Vehicle Exhaust Emission Level Detection System

Authors

  • Mochammad Junus Politeknik Negeri Malang
  • Naufal Abdir Rozaq Politeknik Negeri Malang
  • Rachmad Saptono Politeknik Negeri Malang

DOI:

https://doi.org/10.58812/wsis.v2i09.1291

Keywords:

Arduino Uno, Exhaust Gas Emissions, MySQL, MQ-2 Gas Sensor, MQ-7 Gas Sensor, MQ-135 Gas Sensor

Abstract

Currently, air conditions on earth are getting worse over time due to the impact of air pollution. One example of air pollution is motor vehicle exhaust emissions. Exhaust gas emissions are the result of combustion residue in motor vehicle engines that use fuel. Motor vehicle exhaust emissions contain carbon monoxide (CO), hydrocarbons (HC), carbon dioxide gas (CO2) which have a negative impact on the environment and living creatures. This research will create a motor vehicle exhaust emission detection device. In this design, an Arduino microcontroller was used and the manufacture of this tool used an MQ-7 gas sensor to detect carbon monoxide (CO) gas, an MQ-2 sensor to detect hydrocarbon gas (HC), and an MQ-135 to detect carbon dioxide (CO2) gas. The emission test results will be sent to the application, this data includes plate number, vehicle type, vehicle brand, vehicle year and emission test results. The results of the carbon monoxide (CO) gas sensor calibration test taken from 5 data showed an error of 5.51%. The results of the hydrocarbon (HC) gas sensor calibration test taken from 5 data showed an error of 4.23%. The results of the carbon dioxide (CO2) gas sensor calibration test taken from 5 data showed an error of 1.06%. In the implementation of the tool and application, the test results were obtained for 15 vehicles. Where the highest hydrocarbon (HC) gas content value was 412 ppm, the highest carbon monoxide (CO) gas content value was 1.48%, and the highest carbon dioxide (CO2) gas content value was 21.4%.

References

S. Bahri, H. Isyanto, and Z. Fiqih, “RANCANG BANGUN ALAT UKUR EMISI PADA GAS BUANG KENDARAAN BERMOTOR BERBASIS MIKROKONTROLER,” 2016.

M. Junus, M. Marjono, A. Aulanni’am, and S. Wahyudi, “In Malang, Indonesia, a techno-economic analysis of hybrid energy systems in public buildings,” Bull. Electr. Eng. Inform., vol. 11, no. 5, pp. 2434–2441, Oct. 2022, doi: 10.11591/eei.v11i5.3795

A. M. Purba and E. P. Siregar, “Rancang Bangun Alat Ukur Uji Emisi Kendaraan Gas Karbon Monoksida (CO), Karbondioksida (CO2), dan Hidrokarbon (HC) Berbasis IoT,” J. Tek. Elektro, vol. 3, 2021.

M. Junus and S. Wahyudi, “Modeling, Simulation, and Enhancement of Hybrid Renewable Energy Systems for Purification Utilization”.

Kementerian Lingkungan Hidup dan Kehutanan, “PERATURAN MENTERI LINGKUNGAN HIDUP DAN KEHUTANAN REPUBLIK INDONESIA NOMOR 8 TAHUN 2023 TENTANG PENERAPAN BAKU MUTU EMISI KENDARAAN BERMOTOR KATEGORI M, KATEGORI N, KATEGORI O, DAN KATEGORI L,” 2023.

J. Winarno, “STUDI EMISI GAS BUANG KENDARAAN BERMESIN BENSIN PADA BERBAGAI MERK KENDARAAN DAN TAHUN PEMBUATAN,” 2014.

D. Kurniawan, S. R. Sulistiyanti, and U. Murdika, “SISTEM PEMANTAU GAS KARBON MONOKSIDA (CO) DAN KARBON DIOKSIDA (CO2) MENGGUNAKAN SENSOR MQ7 DAN MQ-135 TERINTEGRASI TELEGRAM,” J. Inform. Dan Tek. Elektro Terap., vol. 11, no. 2, Apr. 2023, doi: 10.23960/jitet.v11i2.2963.

V. V. Kosegeran and E. Kendekallo, “Perancangan Alat Ukur Kadar Karbon Monoksida (CO), Karbon Dioksida (CO2) dan Hidro Karbon (HC) Pada Gas Buang Kendaraan Bermotor,” 2013.

Sugiarti, “GAS PENCEMAR UDARA DAN PENGARUHNYA BAGI KESEHATAN MANUSIA,” 2009.

Haris Aydin Ya’kut, Arinto Yudi P.W, and Hari Arief D, “RANCANG BANGUN SISTEM PENGUKUR GAS KARBON MONOKSIDA (CO) MENGGUNAKAN SENSOR MQ-7 BERBASIS MIKROKONTROLER ATMEGA 16A”.

E. Ihsanto and S. Hidayat, “RANCANG BANGUN SISTEM PENGUKURAN Ph METER DENGAN MENGGUNAKAN MIKROKONTROLLER ARDUINO UNO,” J. Teknol. Elektro, vol. 5, no. 3, Sep. 2014, doi: 10.22441/jte.v5i3.769

Dendy Ramdani, Fahrudin Mukti Wibowo, and Yoso Adi Setyoko, “Rancang Bangun Sistem Otomatisasi Suhu Dan Monitoring pH Air Aquascape Berbasis IoT (Internet Of Thing) Menggunakan Nodemcu Esp8266 Pada Aplikasi Telegram,” J. Inform. Inf. Syst. Softw. Eng. Appl. INISTA, vol. 2, no. 2.

F. Ardiansyah, “SISTEM MONITORING DEBU DAN KARBON MONOKSIDA PADA LINGKUNGAN KERJA BOILER DI PT. KARUNIA ALAM SEGAR,” vol. 2, no. 3, 2018

A. Roihan, A. Permana, and D. Mila, “MONITORING KEBOCORAN GAS MENGGUNAKAN MIKROKONTROLER ARDUINO UNO dan ESP8266 BERBASIS INTERNET OF THINGS,” ICIT J., vol. 2, no. 2, pp. 170–183, Aug. 2016, doi: 10.33050/icit.v2i2.30.

R. Mulyana and I. Syahrul, “Alat Monitoring Emisi Gas Buang Kendaraan Bermotor Berbasis Android”.

I. A. Rombang, L. B. Setyawan, and G. Dewantoro, “Perancangan Prototipe Alat Deteksi Asap Rokok dengan Sistem Purifier Menggunakan Sensor MQ-135 dan MQ-2,” Techné J. Ilm. Elektrotek., vol. 21, no. 1, pp. 131–144, Apr. 2022, doi: 10.31358/techne.v21i1.312.

M. S. Pamuji, E. Kurniawan, and I. M. Rodiana, “Rancang Bangun Catu Daya System Water Ionizer Menggunakan Modul Sel Surya dengan Penyimpanan pada Baterai Li-Ion 18650 untuk Produksi Disinfektan”.

D. Rahmawati, M. Ulum, M. Farisal, and K. Joni, “Lantai Pembangkit Listrik Menggunakan Piezoelektrik dengan Buck Converter LM2596,” J. Arus Elektro Indones., vol. 7, no. 3, p. 84, Dec. 2021, doi: 10.19184/jaei.v7i3.28128.

E. Permana and R. Hidayat, “RANCANG BANGUN SISTEM KEAMANAN RUMAH BERBASIS SMS GATEWAY MENGGUNAKAN MIKROKONTROLER,” 2017.

Q. I. Fatimah, R. Marselino, and A. Asnil, “Perancangan dan Pengendalian Kecepatan Motor Berbasis Web,” Motiv. J. Mech. Electr. Ind. Eng., vol. 3, no. 3, pp. 101–112, Sep. 2021, doi: 10.46574/motivection.v3i3.99.

A. Christian, S. Hesinto, and A. Agustina, “Rancang Bangun Website Sekolah Dengan Menggunakan Framework Bootstrap ( Studi Kasus SMP Negeri 6 Prabumulih ),” J. Sisfokom Sist. Inf. Dan Komput., vol. 7, no. 1, pp. 22–27, Mar. 2018, doi: 10.32736/sisfokom.v7i1.278.

I. T. Amri, V. A. Sutanto, and B. Gultom, “Perancangan Sistem Monitoring Area Parkir Berbasis Arduino Uno untuk Mengetahui Ketersediaan Area Parkir,” vol. 1, no. 1, 2023.

M. Stokić, V. Momčilović, and B. Dimitrijević, “A bilinear interpolation model for estimating commercial vehicles’ fuel consumption and exhaust emissions,” Sustain. Futur., vol. 5, p. 100105, Dec. 2023, doi: 10.1016/j.sftr.2023.100105.

A. Pobedinsky, “Assessment of the influence of air temperature and cargo weight on fuel consumption and emissions of harmful substances with vehicle exhaust gases,” Transp. Res. Procedia, vol. 63, pp. 2687–2694, 2022, doi: 10.1016/j.trpro.2022.06.310.

K. H. Lui et al., “Characterization of chemical components of fresh and aged aerosol from vehicle exhaust emissions in Hong Kong,” Chemosphere, vol. 333, p. 138940, Aug. 2023, doi: 10.1016/j.chemosphere.2023.138940.

G. J. Dominguez Calabuig, A. Wilson, S. Bi, M. Vasile, M. Sippel, and M. Tajmar, “Environmental life cycle assessment of reusable launch vehicle fleets: Large climate impact driven by rocket exhaust emissions,” Acta Astronaut., vol. 221, pp. 1–11, Aug. 2024, doi: 10.1016/j.actaastro.2024.05.009

T. S. Singh et al., “Exhaust emission characteristics study of light and heavy-duty diesel vehicles in India,” Case Stud. Therm. Eng., vol. 29, p. 101709, Jan. 2022, doi: 10.1016/j.csite.2021.101709.

H. Hata, M. Okada, K. Yanai, M. Kugata, and J. Hoshi, “Exhaust emissions from gasoline vehicles after parking events evaluated by chassis dynamometer experiment and chemical kinetic model of three-way catalytic converter,” Sci. Total Environ., vol. 848, p. 157578, Nov. 2022, doi: 10.1016/j.scitotenv.2022.157578.

S. Lin et al., “Impact of change in traffic flow on vehicle non-exhaust PM2.5 and PM10 emissions: A case study of the M25 motorway, UK,” Chemosphere, vol. 303, p. 135069, Sep. 2022, doi: 10.1016/j.chemosphere.2022.135069.

M. Kajino, S. Kayaba, Y. Ishihara, Y. Iwamoto, T. Okuda, and H. Okochi, “Numerical simulation of IL-8-based relative inflammation potentials of aerosol particles from vehicle exhaust and non-exhaust emission sources in Japan,” Atmospheric Environ. X, vol. 21, p. 100237, Jan. 2024, doi: 10.1016/j.aeaoa.2024.100237.

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Published

2024-09-30

How to Cite

Junus, M., Rozaq, N. A., & Saptono, R. (2024). Implementation of An Application-Based Motor Vehicle Exhaust Emission Level Detection System. West Science Interdisciplinary Studies, 2(09), 1799–1811. https://doi.org/10.58812/wsis.v2i09.1291