Analisis Emisi Karbon Pada Material Bangunan Gedung Tujuh Lantai dengan Metode BIM

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Adeis Trisa Pihawiano
Subrata Aditama
Lendra
Waluyo Nuswantoro

Abstract

The city of Palangka Raya, Central Kalimantan is a green city that has many high-rise buildings which are at risk of producing large amounts of carbon emissions, due to the use of building materials that are not environmentally friendly. This condition will get worse with the increasing number of high-rise buildings that will be built in the future if they do not use environmentally friendly materials. This research aims to find out the amount of carbon emissions in the structural materials of multi-storey buildings. The research begins by carrying out 3D modeling using Tekla Structure Software, then specification information and work volume from the modeling results will be used to calculate the value of carbon emissions in building materials using coefficients from the Inventory Of Carbon And Energy from the University of Bath journal. The research results show that there are 16 materials that produce carbon emissions and have 2 dominant materials that produce carbon emissions, namely the Cement Plaster material which is the material that has the largest carbon emission value with a contribution of carbon emission value of 349,000.954 kgCo2/Kg (48.092%) then Iron material with a value of 339,035.037 kgCo2/Kg (46.718%).

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How to Cite
[1]
Adeis Trisa Pihawiano, Subrata Aditama, Lendra, and Waluyo Nuswantoro, “Analisis Emisi Karbon Pada Material Bangunan Gedung Tujuh Lantai dengan Metode BIM”, JSE, vol. 9, no. 1, pp. 8229–8236, Jan. 2024.
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References

S. A. K. A. Uda and M. A. Wibowo, “Upaya Penurunan Energi di Bidang Konstruksi dalam Rangka Mengurangi Dampak Pemanasan Global,” RekaRacana J. Tek. Sipil, vol. 4, no. 3, p. 1, 2018.

P. Rezvani Moghaddam, A. A. Mohammad Abadi, H. Fallahi, and M. Aghhavani Shajari, “Effects of chemical and organic fertilizers on number of corm and stigma yield of saffron (Crocus sativus),” in 59th International Congress and Annual Meeting of the Society for Medicinal Plant and Natural Product Research, 2010.

R. A. L. Widyawati, “Green Building Dalam Pembangunan Berkelanjutan Konsep Hemat Energi Menuju Green Building Di Jakarta,” J. KaLIBRASI-Karya Lintas Ilmu Bid. Rekayasa Arsitektur, Sipil, Ind., vol. 2, no. 1, 2019.

S. A. K. A. Uda, “Embodied Energy and Embodied Carbon Consumption Analysis of 36-Type Simple House Building Materials,” Teknik, vol. 42, no. 2, pp. 160–168, 2021, doi: 10.14710/teknik.v42i2.34268.

K. Wu and L. Zhang, “Progress in the development of environmental risk assessment as a tool for the decision-making process,” J. Serv. Sci. Manag., vol. 2014, 2014.

Y. Lu, Z. Wu, R. Chang, and Y. Li, “Building Information Modeling (BIM) for green buildings: A critical review and future directions,” Autom. Constr., vol. 83, pp. 134–148, 2017.

M. D. Martínez-Aires, M. López-Alonso, and M. Martínez-Rojas, “Building information modeling and safety management: A systematic review,” Saf. Sci., vol. 101, no. January, pp. 11–18, 2018, doi: 10.1016/j.ssci.2017.08.015.

J. Bissotek, S. Indah Ningsih, and M. Purwandito, “Tinjauan Laik Fungsi Bangunan Gedung Istana Benua Raja Kabupaten Aceh Tamiang,” Sos. dan Teknol., vol. 12, no. 1, pp. 1–9, 2022, [Online]. Available: https://doi.org/10.30811/bissotek.v12i1.2919

Setiyawan, “Penjelasan mengenai Kolom,” J. Chem. Inf. Model., vol. 53, no. 9, pp. 1689–1699, 2013.

K. C. Pandiangan, L. N. Huda, and A. J. M. Rambe, “Analisis Perancangan Sistem Ventilasi Dalam Meningkatkan Kenyamanan Termal Pekerja Di Ruangan Formulasi PT Xyz,” J. Tek. Ind. USU, vol. 1, no. 1, p. 219148, 2013.

G. Hammond and C. Jones, “Embodied Carbon: The Inventory of Carbon and Energy (ICE),” A BSRIA Guid., p. 136, 2011, [Online]. Available: http://www.ihsti.com/tempimg/57c152b-ENVIRO2042201160372.pdf%0Awww.bath.ac.uk/mech-eng/sert/embodied%0A

Z. Aria and L. M. F. Purwanto, “Analisis Emisi Karbon Rumah Tipe-45 Di Kota Palangkaraya Dengan Single-Subject Experimental,” J. Arsit. Komposisi, vol. 14, no. 2, pp. 93–101, 2021, [Online]. Available: https://ojs.uajy.ac.id/index.php/komposisi/article/view/4611/2197

Badan Standardisasi Nasional, “Persyaratan Beton Struktural untuk Bangunan Gedung,” Sni 2847-2019, no. 8, p. 720, 2019.

A. W. Zebua, “Desain Pelat Gedung Struktur Beton Bertulang Di Wilayah Gempa Tinggi,” SIKLUS J. Tek. Sipil, vol. 4, no. 2, pp. 91–102, 2018, doi: 10.31849/siklus.v4i2.1650.

Rizki, “Landasan Teori Gedung Bertingkat,” http://e-journal.uajy.ac.id/7244/4/3TF03686.pdf, no. 492, pp. 15–48, 2003.

C. L. Thiel, N. Campion, A. E. Landis, A. K. Jones, L. A. Schaefer, and M. M. Bilec, “A Materials Life Cycle Assessment of a Net-Zero Energy Building,” Energies, vol. 6, no. 2. pp. 1125–1141, 2013. doi: 10.3390/en6021125.

S. Hellweg and L. M. I. Canals, “Emerging approaches, challenges and opportunities in life cycle assessment,” Science (80-. )., vol. 344, no. 6188, pp. 1109–1113, 2014, doi: 10.1126/science.1248361.

M. Rahmat, “Evaluasi Manfaat Dan Biaya Pengurangan Emisi Serta Penyerapan Karbon Dioksida Pada Lahan Gambut di HTI PT. Sba Wi,” J. Bumi Lestari, vol. 10, no. 2, pp. 275–284, 2010.