Essential Transformation of Mortise-and-Tenon Joints for Earthquake-Resistant Contemporary Housing (a Case Study in the Aceh Province, Indonesia)

Cut Nursaniah, Izarul Machdar, - Azmeri, Abdul Munir

Abstract


Mortise-and-tenon joints reinforced with split wedges and dowels are traditional joint systems that have been the mainstay of vernacular houses for Acehnese people to endure earthquakes for centuries. This joint is no longer used now because the construction of houses uses conventional rigid frame techniques. The essential transformation of this connection in the product is urgently needed in Aceh because many conventionally landed houses experienced cracks and collapsed during several recent earthquakes. This paper aims to analyze the essential parts of mortise-and-tenon joints based on the transformation of vernacular houses in Aceh. In-depth interviews were conducted using open-ended questions with the homeowners of 18 vernacular houses in the Aceh province, who were selected using the purposive sampling method to determine the characteristics of house construction based on geographical areas. Simultaneously, direct observations were made at home (including measurements, redrawing, and photo-taking). The data collection also uses literature study techniques to examine further the principles of mortise-and-tenon joints' performance against earthquakes and obtain the latest technological information regarding joints whose performance is identical to mortise-and-tenon joints when facing earthquake forces. This paper suggests that a good alternative to conventionally constructed joint systems is an Aceh concept that uses an interlocking brick design, namely in the composition of an H-profile with a distinctive color to support the uniqueness of the interlocking shape. This interlocking design has the essential mortise-and-tenon joints of Aceh vernacular houses that are earthquake-friendly, ecological, cost-effective, and quick to build.

Keywords


Essential transformation; mortise-and-tenon; contemporary housing; earthquake; Aceh province.

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References


R. Jigyasu, “Reducing Disaster Vulnerability Through Local Knowledge and Capacity,†Norwegian University of Science and Technology, 2002.

F. A. Ismail, A. Hakam, and T. Ophiyandri, “Earthquake Safe Houses Training for Tsunami Preparedness in West Sumatra,†Int. J. Adv. Sci. Eng. Inf. Technol., vol. 10, no. 1, pp. 318–324, 2020, doi: http://dx.doi.org/10.18517/ijaseit.10.1.7850.

D. H. Lang, A. Kumar, S. Sulaymanov, and A. Meslem, “Building typology classification and earthquake vulnerability scale of Central and South Asian building stock,†J. Build. Eng., vol. 15, pp. 261–277, 2018, doi: 10.1016/j.jobe.2017.11.022.

B. Sunardi, W. Pitriani, S. Rohadi, S. Sulastri, and T. A. P. Setiadi, “Estimasi Percepatan Tanah Maksimum dan Spektra Percepatan akibat Gempa 7 Desember 2016 di Kabupaten Pidie Jaya,†in Proceeding, Seminar Nasional Kebumian ke 10 Peran Penelitian Ilmu Kebumian dalam Pembangunan Infrastruktur di Indonesia, 2017, pp. 1654–1662.

Maidiawati, J. Tanjung, Y. Sanada, F. Nugroho, and S. Wardi, “Seismic Analysis of Damaged Buildings Based on Post-Earthquake Investigation of the 2018 Palu,†Int. J. Geomate, vol. 18, no. 70, pp. 116–122, 2020, doi: https://doi.org/10.21660/2020.70.9490.

M. Asrurifak, “Buku Laporan Peta Sumber dan Bahaya Gempa Indonesia Tahun 2017,†2017.

S. A. Mahayuddin, W. Akmal, Z. Wan, and S. Norlizaiha, “Assessment of building typology and construction method of traditional longhouse,†Procedia Eng., vol. 180, pp. 1015–1023, 2017, doi: 10.1016/j.proeng.2017.04.261.

Q. Xie, L. Zhang, L. Wang, W. Zhou, and T. Zhou, “Lateral performance of traditional Chinese timber frames : Experiments and analytical model,†Eng. Struct., vol. 186, no. February, pp. 446–455, 2019, doi: 10.1016/j.engstruct.2019.02.038.

NIK Dewi, S. N. Pratiwi, and M. N. Fajria, “Interlocking System pada Konstruksi Knock Down Bangunan,†J. Arsit. Zo., vol. 2, no. 3, pp. 147–159, 2019, doi: doi.org/10.17509/jaz.v2i3.17610.

A. R. Rad, H. Burton, and Y. Weinand, “Out-of-plane (flatwise) behavior of through-tenon connections using the integral mechanical attachment technique,†Constr. Build. Mater., vol. 262, no. 120001, pp. 1–16, 2020.

A. Awaludin, “A Review on Indonesian Traditional Timber House Sustainability,†in Proceedings of The First International Conference on Sustainable Built Environment (1-ICSBE), Jogjakarta, Indonesia, May 27-29, 2010, 2010, no. May 2010, pp. 53–58.

B. Sha, H. Wang, and A. Li, “The Influence of the Damage of Mortise-Tenon Joint on the Cyclic Performance of the Traditional Chinese Timber Frame,†Appl. Sci., vol. 9, no. 3429, p. 20 pages, 2019, doi: 10.3390/app9163429.

J. Sandak, M. Riggio, N. Ruggieri, and A. Sandak, “Damage progression analysis in a historical timber framed wall under cyclic loads through an image-based tracking method,†Constr. Build. Mater., vol. 199, pp. 483–491, 2019.

Y. P. Prihatmaji, A. Kitamori, and K. Komatsu, “Rotation Performance of Javanese Traditional Timber Joint,†Procedia Environ. Sci., vol. 20, pp. 154–161, 2014, doi: 10.1016/j.proenv.2014.03.021.

M. Ali, R. Briet, and N. Chouw, “Dynamic response of mortar-free interlocking structures,†Constr. Build. Mater., vol. 42, pp. 168–189, 2013.

V. Rawal, J. Bothara, P. Pradhan, R. Narasimhan, and V. Singh, “Inclusion of the poor and vulnerable: Learning from post-earthquake housing reconstruction in Nepal,†Prog. Disaster Sci., vol. 10, no. 100162, p. 8 pages, 2021.

C. Nursaniah, I. Izziah, and L. Qadri, “Konsep Kearifan Lokal dari Konstruksi Rumah Vernakular di Pesisir Barat Aceh untuk Perancangan Arsitektur Modern,†Tesa Arsit., vol. 14, no. 2, pp. 55–63, 2016, doi: https://doi.org/10.24167/tesa.v14i2.640.

O. B. Adegun and Y. M. D. Adedeji, “Review of economic and environmental beneï¬ts of earthen materials for housing in Africa,†Front. Archit. Res., vol. 6, pp. 519–528, 2017.

W. Liu and J. Leng, “The Application Research of Mortise and tenon structure in Cultural and Creative Products,†in IOP Conf. Series: Materials Science and Engineering 573 (2019) 012006, 2019, p. 6 pages, doi: 10.1088/1757-899X/573/1/012006.

J. Tanjung, F. A. Ismail, R. Putra, E. Faculty, and C. Author, “A Simple Method for Strengthening the Brick Masonry Infilled in the Reinforced Concrete Frame,†Int. J. Geomate, vol. 18, no. 66, pp. 118–123, 2020, doi: https://doi.org/10.21660/2020.66.9488.

M. Hărmănescu and C. Enache, “Vernacular and Technology . InBetween .,†Procedia Environ. Sci., vol. 32, pp. 412–419, 2016, doi: 10.1016/j.proenv.2016.03.047.

N. Malahayati, Y. Hayati, C. Nursaniah, T. Firsa, Fachrurrazi, and A. Munandar, “Comparative Study on the Cost of Building Public House Construction Using Red Brick and Interlock Brick Building Material in the City of Banda Aceh,†in IOP Conf. Series: Materials Science and Engineering 352, 012041, 2018, p. 8 pages, doi: 10.1088/1757-899X/352/1/012041.

N. Malahayati, Y. Hayati, C. Nursaniah, and T. Firsa, “Study of Interlocking Brick Costing Based on The Result of Mixed Material Variation Design,†in IOP Conf. Series: Materials Science and Engineering 536 (2019) 012088, 2019, p. 9 pages, doi: 10.1088/1757-899X/536/1/012088.

A. Al-Fakih, B. S. Mohammed, F. Nuruddin, and E. Nikbakht, “Development of Interlocking Masonry Bricks and its’ Structural Behaviour: A Review Paper,†in IOP Conf. Series: Earth and Environmental Science 140, 012127, 2018, p. 9 pages, doi: 10.1088/1755-1315/140/1/012127.

F. N. A Bhaskara, “Recommendation of Knockdown Building Design at Yogyakarta Sand Dunes ( Restricted and Heritage Areas ),†SEMESTA Tek., vol. 22, no. 1, pp. 79–87, 2019, doi: 10.18196/st.221239.

O. Teguh, F. W. Rivai, N. Rahmyanti, and E. W. Pradana, “Experimental investigation on interlocking concrete block for masonry wall of non-engineered earthquake resistant buildings,†in E3S Web of Conferences 156, 05016, 4th ICEEDM 2019, 2020, p. 7 pages.

S. Cui, Z. Lu, and Z. Yang, “Effect of interlocking structure on mechanical properties of bio-inspired nacreous composites,†Compos. Struct., vol. 226, no. 111260, p. 10, 2019.

H. Limami, I. Manssouri, K. Cherkaoui, and A. Khaldoun, “Mechanical and physicochemical performances of reinforced unï¬red clay bricks with recycled Typha-ï¬bers waste as a construction material additive,†Clean. Eng. Technol., vol. 2, no. 100037, p. 8, 2021.

A. Micheal and R. R. Moussa, “Investigating the Economic and Environmental Effect of Integrating Sugarcane Bagasse (SCB) Fibers in Cement Bricks,†Ain Shams Eng. J., p. 7, 2020.

A. Munir, Abdullah, Huzaim, Sofyan, Irfandi, and Safwan, “Utilization of palm oil fuel ash ( POFA ) in producing lightweight foamed concrete for non-structural building material,†Procedia Eng., vol. 125, pp. 739–746, 2015, doi: 10.1016/j.proeng.2015.11.119.

A. Munir, “Penggunaan Beton Ringan sebagai Bahan Bangunan Alternatif untuk Daerah Beriklim Tropis,†J. Koridor, vol. 08, no. 01, pp. 56–61, 2017.




DOI: http://dx.doi.org/10.18517/ijaseit.12.1.14444

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