Implementation of Appropriate Technology Used to Continuous Monitoring of Weather Conditions and Air Quality on Gili Iyang Island, Sumenep
DOI:
https://doi.org/10.59247/jppmi.v3i4.118Keywords:
Monitoring of Weather, Air Quality, Internet of Things, Automation systems, Sustainable community, Sustainable developmentAbstract
This article discusses community service activities that have been carried out on Gili Iyang Island, Sumenep, Madura. This activity is the application of appropriate technology, in the form of weather and air quality monitoring devices. This device is installed in two locations, namely the east side of the island and the west side of the island. The data generated from these devices can be accessed with Android smartphones by the local community and researchers. With the application of this tool, it is hoped that it can improve and advance the environmental, tourism and renewable energy sectors. In addition, this community service activity also targets training and dissemination of applied technology. Of course, the training and outreach involved the local community, which consisted of tourism awareness groups and youth organizations from the two villages on Gili Iyang Island.
References
E. J. Weber, “Did England’s national home oxygen monitoring programme for COVID-19 work? Yes… and no,” Emerg. Med. J., vol. 40, no. 6, pp. 394–395, Jun. 2023.
B. Rai et al., “Surface Plasmon-Coupled Dual Emission Platform for Ultrafast Oxygen Monitoring after SARS-CoV-2 Infection,” ACS Sensors, vol. 6, no. 12, pp. 4360–4368, Dec. 2021.
F. Liebisch, A. Weltin, J. Marzioch, G. A. Urban, and J. Kieninger, “Zero-consumption Clark-type microsensor for oxygen monitoring in cell culture and organ-on-chip systems,” Sensors Actuators B Chem., vol. 322, p. 128652, Nov. 2020.
L. Patrick and G. Wysocki, “Compact laser spectroscopic sensor head prototype for time-resolved breath oxygen monitoring,” J. Breath Res., vol. 17, no. 2, p. 026003, Apr. 2023.
H. Hoffman, K. Abi-Aad, K. M. Bunch, T. Beutler, F. O. Otite, and L. S. Chin, “Outcomes associated with brain tissue oxygen monitoring in patients with severe traumatic brain injury undergoing intracranial pressure monitoring,” J. Neurosurg., vol. 135, no. 6, pp. 1799–1806, Dec. 2021.
N. Shaghaghi, T. Nguyen, J. Patel, A. Soriano, and J. Mayer, “DOxy: Dissolved Oxygen Monitoring,” in 2020 IEEE Global Humanitarian Technology Conference (GHTC), 2020, pp. 1–4.
T. Beaney and J. Clarke, “Home oxygen monitoring and therapy: learning from the pandemic,” Curr. Opin. Crit. Care, vol. 29, no. 1, pp. 34–39, Feb. 2023.
R. Ubbink, M. A. Wefers Bettink, W. van Weteringen, and E. G. Mik, “Mitochondrial oxygen monitoring with COMET: verification of calibration in man and comparison with vascular occlusion tests in healthy volunteers,” J. Clin. Monit. Comput., vol. 35, no. 6, pp. 1357–1366, Dec. 2021.
M. Oliver, N. D. Caputo, J. R. West, R. Hackett, and J. C. Sakles, “Emergency physician use of end‐tidal oxygen monitoring for rapidsequence intubation,” J. Am. Coll. Emerg. Physicians Open, vol. 1, no. 5, pp. 706–713, Oct. 2020.
P. Baronas, J. L. Elholm, and K. Moth-Poulsen, “Efficient degassing and ppm-level oxygen monitoring flow chemistry system,” React. Chem. Eng., 2023.
S. A. Costerus, M. W. Bettink, D. Tibboel, J. C. de Graaff, and E. G. Mik, “Mitochondrial Oxygen Monitoring During Surgical Repair of Congenital Diaphragmatic Hernia or Esophageal Atresia: A Feasibility Study,” Front. Pediatr., vol. 8, Sep. 2020.
A. Gomez et al., “Cerebrovascular pressure reactivity and brain tissue oxygen monitoring provide complementary information regarding the lower and upper limits of cerebral blood flow control in traumatic brain injury: a CAnadian High Resolution-TBI (CAHR-TBI) cohort study,” Intensive Care Med. Exp., vol. 10, no. 1, p. 54, Dec. 2022.
T. Alexopoulos et al., “Methods used for Gas Tightness Test and percent Oxygen Monitoring of the NSW Micromegas Detectors of LHC-ATLAS Experiment,” J. Phys. Conf. Ser., vol. 2105, no. 1, p. 012022, Nov. 2021.
M. Nosrati, D. Vieira, E. J. Harvey, G. E. Merle, and S. Bhadra, “Development of a Clark Microsensor for Low Concentration Dissolved Oxygen Monitoring,” in 2020 IEEE International Instrumentation and Measurement Technology Conference (I2MTC), 2020, pp. 1–5.
L. Di et al., “Single bond activated AIE of platinum(II) complex achieving expeditious oxygen monitoring and high-efficiency felodipine identification,” Dye. Pigment., vol. 205, p. 110582, Sep. 2022.
P. Kumar G and V. Kakar, “Custodian of Oxygen Monitoring: Is There a Winner?,” Indian J. Crit. Care Med., vol. 25, no. 9, pp. 967–968, Sep. 2021.
S. Sabherwal, C. Gilbert, A. Foster, and P. Kumar, “Status of Oxygen Monitoring in Four Selected Special Care Newborn Units in India,” Indian Pediatr., vol. 57, no. 4, pp. 317–320, Apr. 2020.
N. A. Silverton, I. E. Hall, and K. Kuck, “Urine Oxygen Monitoring in Cardiac Surgery: Reply,” Anesthesiology, vol. 136, no. 4, pp. 662–663, Apr. 2022.
W. Boonsong, “Embedded Wireless Dissolved Oxygen Monitoring Based on Internet of Things Platform,” J. Commun., pp. 363–368, 2021.
A. C. Cushing, C. K. Smith, E. C. Ramsay, S. Nelson, and L. Giori, “TRANSCUTANEOUS OXYGEN MONITORING IN LOUISIANA PINE SNAKES (PITUOPHIS RUTHVENI),” J. Zoo Wildl. Med., vol. 50, no. 4, p. 874, Jan. 2020.
S. C. Cardeñosa et al., “Home Oxygen Monitoring in Patients with Interstitial Lung Disease,” Ann. Am. Thorac. Soc., vol. 19, no. 3, pp. 493–497, Mar. 2022.
N. A. Silverton et al., “Noninvasive Urine Oxygen Monitoring and the Risk of Acute Kidney Injury in Cardiac Surgery,” Anesthesiology, vol. 135, no. 3, pp. 406–418, Sep. 2021.
A. L. Van Slyke et al., “Oxygen Monitoring in Model Solutions and In Vivo in Mice During Proton Irradiation at Conventional and FLASH Dose Rates,” Radiat. Res., vol. 198, no. 2, May 2022.
J. Rodrigues and R. K. Chandra Shekar, “Scalable, Cost Effective IoT Based Medical Oxygen Monitoring System for Resource Constrained Hospital Environment,” in 2022 International Conference on Distributed Computing, VLSI, Electrical Circuits and Robotics ( DISCOVER), 2022, pp. 293–298.
J. Xia and S. Sonkusale, “Flexible thread-based electrochemical sensors for oxygen monitoring,” Analyst, vol. 146, no. 9, pp. 2983–2990, 2021.
D. X. Chen, “Urine Oxygen Monitoring in Cardiac Surgery: Comment,” Anesthesiology, vol. 136, no. 4, pp. 662–662, Apr. 2022.
B. Kahraman, V. Vakhter, I. Costanzo, G. Bu, F. Foroozan, and U. Guler, “A Miniaturized Prototype for Continuous Noninvasive Transcutaneous Oxygen Monitoring,” in 2022 IEEE Biomedical Circuits and Systems Conference (BioCAS), 2022, pp. 486–490.
M. Kommer et al., “Use of Direct Intracranial Pressure and Brain Tissue Oxygen Monitoring in Perioperative Management of Patients with Moyamoya Disease,” 2021, pp. 115–117.
S. H. Ledford, J. S. Diamond, and L. Toran, “Large spatiotemporal variability in metabolic regimes for an urban stream draining four wastewater treatment plants with implications for dissolved oxygen monitoring,” PLoS One, vol. 16, no. 8, p. e0256292, Aug. 2021.
L. G. Olias, A. R. Otero, P. J. Cameron, and M. Di Lorenzo, “A soil microbial fuel cell-based biosensor for dissolved oxygen monitoring in water,” Electrochim. Acta, vol. 362, p. 137108, Dec. 2020.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2023 Prisma Megantoro, Nayu Nurrohma Hidayah, Muhammad Rafi Nabil Arsalan, Arya Dwi Kustiawan, Antik Widi Anugrah, Heru Dwi Cahyono, Rizki Putra Prastio, Tahta Amrillah, Mohammad Ghani, Retna Apsari

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.