Evaluation of evaporative cooler models using cotton-based fabric pads for tropical housing units

Penulis

  • I Gusti Ngurah Antaryama Department of Architecture, Institut Teknologi Sepuluh Nopember , Department of Architecture, Institut Teknologi Sepuluh Nopember
  • Sri Nastiti Nugrahani Ekasiwi Department of Architecture, Institut Teknologi Sepuluh Nopember , Department of Architecture, Institut Teknologi Sepuluh Nopember https://orcid.org/0000-0002-7447-3156 (tidak diautentikasi)
  • Collinthia Erwindi Department of Architecture, Institut Teknologi Sepuluh Nopember , Department of Architecture, Institut Teknologi Sepuluh Nopember

DOI:

https://doi.org/10.30822/arteks.v7i2.1449
Crossmark

Kata Kunci:

Bantalan pendingin kain, Lingkungan termal, Pendingin evaporatif, Rumah susun, Tropis

Abstrak

Pendinginan pasif adalah salah sarana untuk menciptakan kenyamanan termal pada bangunan di daerah panas. Penggunaan strategi ini bertujuan untuk mengurangi konsumsi energi dan dampak buruk pada lingkungan. Salah satu teknik yang dapat digunakan adalah pendinginan evaporasi langsung (PEL). Penggunaan PEL di daerah beriklim hangat-lembab sangat terbatas. Hal ini disebabkan oleh konsekuensi kenaikan kelembaban udara yang dihasilkan oleh PEL. Meskipun demikian beberapa penelitian menyarankan penggunaan teknik ini dengan kombinasi teknik lain yang dapat membatasi kenaikan kelembaban udara. Penelitian ini akan mengeksplorasi penggunaan kain berbahan katun sebagai media pendingin pada sistem PEL dengan jalan menganalis kemampuan media ini dalam menurunkan suhu dan membatasi kenaikan kelembaban udara. Model berskala digunakan dalam eksperimen penelitian. Pengukuruan suhu serta kelembaban dilakukan untuk mendeskripsikan kondisi termal unit hunian. Hasil penelitian menunjukkan bahwa bahan kain berpengaruh pada kondisi termal unit hunian, dan dari tiga bahan kain yang digunakan bahan selimut katun yang paling memenuhi tujuan penelitian.

Unduhan

Data unduhan tidak tersedia.

Biografi Penulis

  • I Gusti Ngurah Antaryama, Department of Architecture, Institut Teknologi Sepuluh Nopember, Department of Architecture, Institut Teknologi Sepuluh Nopember

    I Gusti Ngurah Antaryama contributed to the research concepts, preparation, literature review, methodologies, data analysis, article drafting, and validation.

  • Sri Nastiti Nugrahani Ekasiwi, Department of Architecture, Institut Teknologi Sepuluh Nopember, Department of Architecture, Institut Teknologi Sepuluh Nopember

    Sri Nastiti Nugrahani Ekasiwi contributed to the preparation, literature review, methodologies, data analysis, and article drafting.

  • Collinthia Erwindi, Department of Architecture, Institut Teknologi Sepuluh Nopember, Department of Architecture, Institut Teknologi Sepuluh Nopember

    Collinthia Erwindi contributed to preparation, data collection and analysis, and visualization.

Referensi

Abaranji, Sujatha, Karthik Panchabikesan, and Velraj Ramalingam. 2020. ‘Experimental Investigation of a Direct Evaporative Cooling System for Year-Round Thermal Management with Solar-Assisted Dryer’. Edited by Kumarasamy Sudhakar. International Journal of Photoenergy 2020 (December): 1–24. https://doi.org/10.1155/2020/6698904.

Abohorlu Doğramacı, Pervin, Saffa Riffat, Guohui Gan, and Devrim Aydın. 2019. ‘Experimental Study of the Potential of Eucalyptus Fibres for Evaporative Cooling’. Renewable Energy 131 (February): 250–60. https://doi.org/10.1016/j.renene.2018.07.005.

Ahmad, Hidayah, Abdul Malek, and Abdul Rahman. 2017. ‘The Potential of Evaporative Cooling Window System Using Labu Sayong in Tropical Malaysia : A Review’. Advanced Journal of Technical and Vocational Education 1 (October): 262–72.

Alfata, M.N.F., N. Hirata, T. Kubota, A.M. Nugroho, T. Uno, S.N.N. Ekasiwi, and I.G.N. Antaryama. 2015. ‘Field Investigation of Indoor Thermal Environments in Apartments of Surabaya, Indonesia: Potential Passive Cooling Strategies for Middle-Class Apartments’. Energy Procedia 78 (November): 2947–52. https://doi.org/10.1016/j.egypro.2015.11.674.

Alwetaishi, Mamdooh, Ashraf Balabel, Ahmed Abdelhafiz, Usama Issa, Ibrahim Sharaky, Amal Shamseldin, Mohammed Al-Surf, Mosleh Al-Harthi, and Mohamed Gadi. 2020. ‘User Thermal Comfort in Historic Buildings: Evaluation of the Potential of Thermal Mass, Orientation, Evaporative Cooling and Ventilation’. Sustainability 12 (22): 9672. https://doi.org/10.3390/su12229672.

Aziz, Azridjal, Rahmat Iman Mainil, Afdhal Kurniawan Mainil, and Hendra Listiono. 2017. ‘Effect of Water Temperature and Air Stream Velocity on Performance of Direct Evaporative Air Cooler for Thermal Comfort’. In AIP Conference Proceedings, 030024. https://doi.org/10.1063/1.4968277.

Chang, Bin, Yuexi Dang, Xilian Luo, Chuck Wah Yu, and Zhaolin Gu. 2020. ‘Sustainability of Evaporative Cooling System for Environment Control for Preservation of Unearthed Historical Sites within Archaeological Museums in China’. Sustainability 12 (23): 9882. https://doi.org/10.3390/su12239882.

Darmawan, I Made Yudi, Hendra Wijaksana, and N. Suarnadwipa. 2021. ‘Performansi Pendinginan Kombinasi Sistem Direct Dan Indirect Evaporative Cooling’. Teknik Desain Mekanika 10 (1).

Elmsaad, Egbal, and Abdelnaser Omran. 2015. ‘Evaluating the Effect of New Local Materials of Evaporative Cooling Pads’. American-Eurasian J. Agric. & Environ. Sci. 15 (1): 78–84. https://doi.org/10.5829/idosi.aejaes.2015.15.1.12494.

Esparza L., Carlos J., Carlos Escobar del Pozo, Adolfo Gómez A., Gabriel Gómez A., and Eduardo Gonzalez C. 2018. ‘Potential of a Wet Fabric Device as a Roof Evaporative Cooling Solution: Mathematical and Experimental Analysis’. Journal of Building Engineering 19 (September): 366–75. https://doi.org/10.1016/j.jobe.2018.05.021.

Hussain, Shafqat, Abdulrahim Kalendar, Muhammad Zeeshan Rafique, and Patrick Oosthuizen. 2020. ‘Numerical Investigations of Solar-Assisted Hybrid Desiccant Evaporative Cooling System for Hot and Humid Climate’. Advances in Mechanical Engineering 12 (6): 168781402093499. https://doi.org/10.1177/1687814020934999.

Indrani, Hedy Constancia. 2008. ‘Kinerja Ventilasi Pada Hunian Rumah Susun Dupak Bangunrejo Surabaya’. Dimensi Interior 6 (1): 9–23. http://puslit2.petra.ac.id/ejournal/index.php/int/article/view/17994.

Mohammad, Abdulrahman Th, Sohif Bin Mat, M Y Sulaiman, K Sopian, and Abduljalil A Al-Abidi. 2013. ‘Experimental Performance of a Direct Evaporative Cooler Operating in Kuala Lumpur’. Int. J. of Thermal & Environmental Engineering 6 (1): 15–20. https://doi.org/10.5383/ijtee.06.01.003.

Poku, Robert, Tokoni W. Oyinki, and Ezenwa A. Ogbonnaya. 2017. ‘The Effects of Evaporative Cooling in Tropical Climate’. American Journal of Mechanical Engineering 5 (4): 145–50. https://doi.org/10.12691/ajme-5-4-5.

Rao, V. Venkateswara, and Santanu P Datta. 2018. ‘The Acceptability of Different Types of Evaporative Cooling Systems across India’. In 5th International High Performance Buildings Conference at Purdue, 1:1–11. School of Mechanical Engineering. https://docs.lib.purdue.edu/cgi/viewcontent.cgi?article=1282&context=ihpbc.

Raza, Hafiz M. U., Hadeed Ashraf, Khawar Shahzad, Muhammad Sultan, Takahiko Miyazaki, Muhammad Usman, Redmond R. Shamshiri, Yuguang Zhou, and Riaz Ahmad. 2020. ‘Investigating Applicability of Evaporative Cooling Systems for Thermal Comfort of Poultry Birds in Pakistan’. Applied Sciences 10 (13): 4445. https://doi.org/10.3390/app10134445.

Sajjad, Uzair, Naseem Abbas, Khalid Hamid, Saleem Abbas, Imtiyaz Hussain, Syed Muhammad Ammar, Muhammad Sultan, et al. 2021. ‘A Review of Recent Advances in Indirect Evaporative Cooling Technology’. International Communications in Heat and Mass Transfer 122 (March): 105140. https://doi.org/10.1016/j.icheatmasstransfer.2021.105140.

Suryana, I Nyoman, I Nengah Suarnadwipa, and Hendra Wijaksana. 2014. ‘Studi Eksperimental Performansi Penndingin Evaporative Portable Dengan Pad Berbahan Spon Dengan Ketebalan Berbeda’. Jurnal Ilmiah TEKNIK DESAIN MEKANIKA 1 (1): 67. https://repositori.unud.ac.id/protected/storage/upload/repositori/3f6ab3e0dd5382ffe23b5bbcb95d55d7.pdf.

Suryo, Sumar Hadi, Bambang Yunianto, Nazaruddin Sinaga, and Eflita Yohana. 2000. ‘Performance Test of Indirect-Direct Two Stage Evaporative Cooler Based Water Sprayer with Primary Air Velocity Variation’. Research Journal of Applied Science 14 (12): 418–24. http://eprints.undip.ac.id/81740/1/6-Bareng_Sumar.pdf.

Susila, I Putu Pradnya, Hendra Wijaksana, and I Nengah Suarnadwipa. 2019. ‘Studi Laju Evaporasi Pada Direct Evaporative Cooling Berbahan Pad Jerami Padi Dan Tapis Kelapa’. IPTEKMA, February, 25. https://doi.org/10.24843/iptekma.2019.v08.i01.p04.

Suwannapruk, Natchai, Alejandro Prieto, and Christien Janssen. 2020. ‘“Desigrated”-Desiccant Integrated Façade for the Hot-Humid Climate of Bangkok, Thailand’. Sustainability 12 (13): 5490. https://doi.org/10.3390/su12135490.

Telis, Citra Fila, Maria Immaculata Ririk Winandari, and Sri Tundono. 2017. ‘Pengaruh Orientasi Bangunan Terhadap Suhu Termal Di Unit Rusunawa Tambora’. In Seminar Nasional Cendekiawan Ke 3, 51–55. Malang: LPPM Universitas Brawijaya.

Velasco-Gómez, Eloy, Ana Tejero-González, Javier Jorge-Rico, and F. Javier Rey-Martínez. 2020. ‘Experimental Investigation of the Potential of a New Fabric-Based Evaporative Cooling Pad’. Sustainability 12 (17): 7070. https://doi.org/10.3390/su12177070.

Warke, Dipak Ashok, and Samir Jaiwantrao Deshmukh. 2017. ‘Experimental Analysis of Cellulose Cooling Pads Used in Evaporative Coolers’. International Journal of Energy Science and Engineering 3 (4): 37–43. http://www.aiscience.org/journal/ijesehttp://creativecommons.org/licenses/by/4.0/.

Xu, Peng, Xiaoli Ma, Xudong Zhao, and Kevin S. Fancey. 2016. ‘Experimental Investigation on Performance of Fabrics for Indirect Evaporative Cooling Applications’. Building and Environment 110 (December): 104–14. https://doi.org/10.1016/j.buildenv.2016.10.003.

Yunianto, Bambang. 2018. ‘Pemanfaatan Evaporative Cooling Untuk Meningkatkan Kenyamanan Ruang’. ROTASI 20 (1): 29. https://doi.org/10.14710/rotasi.20.1.29-32.

Diterbitkan

2022-08-01

Cara Mengutip

“Evaluation of Evaporative Cooler Models Using Cotton-Based Fabric Pads for Tropical Housing Units”. 2022. ARTEKS : Jurnal Teknik Arsitektur 7 (2): 215-24. https://doi.org/10.30822/arteks.v7i2.1449.