Wood physical and mechanical properties of rambai (Baccaurea motleyana), a tropical fruit tree species

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IRVIN DAYADI
MUHAMMAD ROSYID RIDHO

Abstract

Abstract. Dayadi I, Ridho MR. 2026. Wood physical and mechanical properties of rambai (Baccaurea motleyana), a tropical fruit tree species. Asian J For 10: r100103. https://doi.org/10.13057/asianjfor/r100103. This study evaluated the physical and mechanical properties of rambai (Baccaurea motleyana) wood to assess its potential as a timber resource in multipurpose fruit-timber systems. Small clear specimens were prepared from the base, middle, and top section of three mature rambai trees (diameter at breast height 38-44 cm) grown in a private garden, and tested for physical and mechanical properties following the Deutsches Institut für Normung (DIN) standards. The results showed that rambai wood has Green Moisture Content (GMC) of 104.98±9.20%, decreasing significantly from the base toward the top of the stem. Apparent density at ~12% MC averaged 0.62±0.04 g/cm3 and did not differ significantly among axial positions of the stem. Shrinkage behaviour was typical of hardwoods, with tangential and radial shrinkage of about 5.9% and 3.8%, respectively, and a tangential–radial ratio of 1.59±0.28, indicating satisfactory dimensional stability. Mean mechanical properties across the whole stem were 9.52±1.49 GPa for MOE, 85.16±11.28 MPa for MOR, 51.69±5.69 MPa for compression parallel to grain. Impact bending strength and shear strength averaged 7.26±1.65 J/cm2 and 11.81±1.35 MPa, respectively. Overall, these values characterize B. motleyana as a medium grade hardwood with physical and mechanical properties compatible with potential usein furniture, interior joinery and light construction, while further studies on durability, workability and anatomical characteristics are needed to provide stronger support to its promotion as a lesser-known tropical wood resource from fruit-timber systems.

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Wood physical and mechanical properties of rambai (Baccaurea motleyana), a tropical fruit tree species. (2026). Asian Journal of Forestry, 10(1). https://doi.org/10.13057/asianjfor/r100103

References

Arriaga F, Wang X, Iñiguez-González G, Llana DF, Esteban M, Niemz P. 2023. Mechanical properties of wood: A review. Forests 14 (6): 1202. DOI: 10.3390/f14061202. DOI: https://doi.org/10.3390/f14061202

Athanázio-Heliodoro JC, Pacheco L, Gaiad N, Lara-Palma HA, Ballarin AW. 2018. Properties of young guapuruvu (Schizolobium parahyba) wood from a forest recovery area. Floresta e Ambiente 25 (3): e20160366. DOI: 10.1590/2179-8087.036616. DOI: https://doi.org/10.1590/2179-8087.036616

Báder M, Németh R, Vörös Á, Tóth Z, Novotni A. 2023. The effect of agroforestry farming on wood quality and timber industry and its supportation by Horizon 2020. Agrofor Syst 97: 587-603. DOI: 10.1007/s10457-023-00812-8. DOI: https://doi.org/10.1007/s10457-023-00812-8

Belleville B, Lancelot K, Galore E, Ozarska B. 2020. Assessment of physical and mechanical properties of Papua New Guinea timber species. Maderas 22: 3-12. DOI: 10.4067/S0718-221X2020005000101. DOI: https://doi.org/10.4067/S0718-221X2020005000101

Chang WY, Wang S, Gaston C, Cool J, An H, Thomas BR. 2019. Economic evaluations of tree improvement for planted forests: A systematic review. Bioprod Bus 4: 1-14. DOI: 10.22382/bpb-2019-001. DOI: https://doi.org/10.22382/bpb-2019-001

de Almeida DH, Cavalheiro RS, de Mello Scaliante R, Christoforo AL, Calil Junior C, Lahr FAR. 2013. Full characterization of strength properties of Schizolobium amazonicum wood for timber structures. Intl J Eng Technol 13 (6): 97-100.

Debnath P, Ahmad SK, Mahedi RA, Ganguly A, Sarker KK. 2022. Bioactive compounds and functional properties of rambai (Baccaurea motleyana Müll. Arg.) fruit: A comprehensive review. Food Sci Nutr 10 (1): 218-226. DOI: 10.1002/fsn3.2661. DOI: https://doi.org/10.1002/fsn3.2661

do Nascimento TM, Monteiro TC, Baraúna EEP, Moulin JC, Azevedo AM. 2019. Drying influence on the development of cracks in Eucalyptus logs. BioResources 14 (1): 220-233. DOI: 10.15376/biores.14.1.220-233. DOI: https://doi.org/10.15376/biores.14.1.220-233

Duong DV, Matsumura J. 2018a. Transverse shrinkage variations within tree stems of Melia azedarach planted in northern Vietnam. J Wood Sci 64: 720-729. DOI: 10.1007/s10086-018-1756-2. DOI: https://doi.org/10.1007/s10086-018-1756-2

Duong DV, Matsumura J. 2018b. Within-stem variations in mechanical properties of Melia azedarach planted in northern Vietnam. J Wood Sci 64: 329-337. DOI: 10.1007/s10086-018-1725-9. DOI: https://doi.org/10.1007/s10086-018-1725-9

Forestry and Forest Products Research Institute (FFPRI). 1975. The properties of tropical woods 21: Evaluation of wood properties and wood processing suitabilities of timber from Southeast Asia and the Pacific regions. Bull Gov For Exp Stn (Tokyo) 277: 87-130.

Goodman RC, van Hensbergen HJ, Bengtsson K, Kaplan A, Persson M. 2024. Transforming the tropical timber industry could be the key to realizing the potential of forests and forest products. One Earth 7 (7): 1142-1146. DOI: 10.1016/j.oneear.2024.06.016. DOI: https://doi.org/10.1016/j.oneear.2024.06.016

Hamdan H, Nordahlia AS, Anwar UMK, Iskandar MM, Omar MKM, K T. 2020. Anatomical, physical, and mechanical properties of four pioneer species in Malaysia. J Wood Sci 66. DOI: 10.1186/s10086-020-01905-z. DOI: https://doi.org/10.1186/s10086-020-01905-z

Hidayati F, Ishiguri F, Makino K, Tanabe J, Aiso H, Prasetyo VE, Marsoem SN, Wahyudi I, Iizuka K, Yokota S. 2017. The effects of radial growth rate on wood properties and anatomical characteristics and an evaluation of the xylem maturation process in a tropical fast-growing tree species, Gmelina arborea. For Prod J 67 (3): 297-303. DOI: 10.13073/FPJ-D-16-00027. DOI: https://doi.org/10.13073/FPJ-D-16-00027

Ishiguri F, Wahyudi I, Takashima Y, Ohshima J, Yokota S. 2021. Effects of radial growth rate on anatomical characteristics and wood properties in Peronema canescens trees planted in South Kalimantan, Indonesia. J Trop For Sci 33 (1): 22-29. DOI: 10.26525/jtfs2021.33.1.22. DOI: https://doi.org/10.26525/jtfs2021.33.1.22

Jansen M, Guariguata MR, Raneri JE, Ickowitz A, Chiriboga-Arroyo F, Quaedvlieg J, Kettle CJ. 2020. Food for thought: The underutilized potential of tropical tree-sourced foods for 21st century sustainable food systems. People Nat 2: 1006-1020. DOI: 10.1002/pan3.10159. DOI: https://doi.org/10.1002/pan3.10159

Karyati, Karmini, Sari DR, Ruslim Y, Karhani M. 2025. Climatological aspects and visitors’ comfort perception in green open spaces of Samarinda City, East Kalimantan, Indonesia. Biodiversitas 26 (6): 2806-2820. DOI: 10.13057/biodiv/d260625 DOI: https://doi.org/10.13057/biodiv/d260625

Khan K, Listyanto T, Soraya E. 2022. Moisture content, density, and allometric model for estimating above-ground biomass of Peronema canescens trees in the private forest. Biodiversitas 23 (2): 1132-1139. DOI: 10.13057/biodiv/d230258. DOI: https://doi.org/10.13057/biodiv/d230258

Krainovic PM, Brandão DO, Resende AF, Schons SZ, Munhoz L, Metzger JP, Nascimento NC, Rodrigues RR, Brancalion PHS, Guillemot J, de-Miguel S. 2025. Current constraints to reconcile tropical forest restoration and bioeconomy. Sustain Sci 20: 219-229. DOI: 10.1007/s11625-024-01573-8. DOI: https://doi.org/10.1007/s11625-024-01573-8

Listyanto T. 2018. Wood quality of Paraserianthes falcataria L. Nielsen syn wood from three year rotation of harvesting for construction application. Wood Res 63: 497-504.

Marasigan OS, Alipon MA, Bondad EO, Hopia KA, Mundin MAM. 2024. Physical and mechanical properties of thirteen senile fruit-bearing trees in the Philippines and their potential uses. J Trop For Sci 36: 91-104. DOI: 10.26525/jtfs2024.36.1.91. DOI: https://doi.org/10.26525/jtfs2024.36.1.91

Matius P, Tjwa SJM, Raharja M, Sapruddin, Noor S, Ruslim Y. 2018. Plant diversity in traditional fruit gardens (Munaans) of Benuaq and Tunjung Dayaks Tribes of West Kutai, East Kalimantan, Indonesia. Biodiversitas 19 (4): 1280-1288. DOI: 10.13057/biodiv/d190414. DOI: https://doi.org/10.13057/biodiv/d190414

Meinhold K, Darr D. 2019. The processing of non-timber forest products through small and medium enterprises: A review of enabling and constraining factors. Forests 10 (11): 1026. DOI: 10.3390/f10111026. DOI: https://doi.org/10.3390/f10111026

Miyoshi Y, Kojiro K, Furuta Y. 2018. Effects of density and anatomical feature on mechanical properties of various wood species in lateral tension. J Wood Sci 64: 509-514. DOI: 10.1007/s10086-018-1730-z. DOI: https://doi.org/10.1007/s10086-018-1730-z

Nenning T, Konnerth J, Gindl-Altmutter W, Grabner M, Hansmann C, Eder L, Bodner S, Pramreiter M. 2025. Impact bending strength and structural properties of hardwood: Branch versus stem. Eur J Wood Wood Prod 83: 92. DOI: 10.1007/s00107-025-02247-7. DOI: https://doi.org/10.1007/s00107-025-02247-7

Nugroho WD, Na’iem M, Lukmandaru G, Widiyatno, Feriawan Y, Prastiwi FW, Wibowo A, Puspitasari D. 2024. Physical and mechanical properties of 20-year-old clonal teak trees in Ngawi, East Java, Indonesia. J Korean Wood Sci Technol 52 (5): 459-472. DOI: 10.5658/WOOD.2024.52.5.459. DOI: https://doi.org/10.5658/WOOD.2024.52.5.459

Pardede E, Julianti E, Siahaan FR, Harefa CV. 2024. Antioxidant activity, ascorbic acid, and beta carotene of Sumatran red tampoi (Baccaurea costulata) and rambai (Baccaurea motleyana) fruits. Agro Bali Agric J 7 (3): 708-718. DOI: 10.37637/ab.v7i3.1980. DOI: https://doi.org/10.37637/ab.v7i3.1980

Sahin CK, Onay B. 2020. Alternative wood species for playgrounds: wood from fruit trees. Wood Res 65 (1): 149-160. DOI: 10.37763/wr.1336-4561/65.1.149160. DOI: https://doi.org/10.37763/wr.1336-4561/65.1.149160

Samamba E, Mwambusi JN, Chamshama SAO. 2025. Effects of tree spacing on the physical and mechanical properties of 24-year-old Tectona grandis wood in Longuza Forest Plantation, Tanzania. Jurnal Sylva Lestari 13 (3): 787-795. DOI: 10.23960/jsl.v13i3.1154. DOI: https://doi.org/10.23960/jsl.v13i3.1154

Seng OD. 1990. Berat dari jenis-jenis kayu Indonesia dan pengertian beratnya kayu untuk keperluan praktek. Pusat Penelitian dan Pengembangan Hasil Hutan, Bogor. [Indonesian]

Seta GW, Hidayati F, Widiyatno, Na’iem M. 2023. Wood physical and mechanical properties of clonal teak (Tectona grandis) stands under different thinning and pruning intensity levels planted in Java, Indonesia. J Kor Wood Sci Technol 51: 109-132. DOI: 10.5658/WOOD.2023.51.2.109. DOI: https://doi.org/10.5658/WOOD.2023.51.2.109

Shmulsky J, Jones PD. 2019. Forest Products and Wood Science: An Introduction. 8th ed. Wiley-Blackwell, Oxford. DOI: 10.1002/9780470960035. DOI: https://doi.org/10.1002/9781119426400

Suwardi AB, Syamsuardi, Mukhtar E, Nurainas. 2023. The diversity and regional conservation status of wild edible fruit species in Sumatra, Indonesia. Biodiversitas 24 (6): 3245-3257. DOI: 10.13057/biodiv/d240619. DOI: https://doi.org/10.13057/biodiv/d240619

Tari SMM, Habibzade S, Taghiyari HR. 2015. Effects of drying schedules on physical and mechanical properties in Paulownia wood. Dry Technol 33: 1981-1990. DOI: 10.1080/07373937.2014.948553. DOI: https://doi.org/10.1080/07373937.2014.948553

Yamasaki M, Tsuzuki C, Sasaki Y, Onishi Y. 2017. Influence of moisture content on estimating young’s modulus of full-scale timber using stress wave velocity. J Wood Sci 63: 225-235. DOI: 10.1007/s10086-017-1624-5. DOI: https://doi.org/10.1007/s10086-017-1624-5

Yulizah, Rahajoe JS, Jakalalana S, Oksari AA, Yuliani N. 2023. The estimated carbon stored in underutilized fruit trees (ufts) collection of Cibodas and Cibinong Botanic Gardens. IOP Conf Ser Earth Environ Sci 1271 (1): 012034. DOI: 10.1088/1755-1315/1271/1/012034. DOI: https://doi.org/10.1088/1755-1315/1271/1/012034