Czasopismo
Tytuł artykułu
Autorzy
Treść / Zawartość
Pełne teksty:
Warianty tytułu
Języki publikacji
Abstrakty
Carbon dioxide, a vital greenhouse gas plays a key role in Earth's carbon cycle, a concentration above ambient temperature results in global warming. High CO2 emission in Universiti Tun Husein Onn Malaysia is due to an increase in a number of automobiles and other greenhouse gases released from building facilities and nearby industries. A study was carried out on 22 common trees planted within the campus on the estimated amount of CO2 sequestered. Estimation of carbon storage of trees was obtained through the assessments of standing biomass as well measurement of their photosynthetic capacity. Results indicated that Spathodea campanulata has the highest CO2 absorption (14.40 µmol/ m-2/s-1) followed by Acacia mangium (14.03 µmol/m-2/s-1), and Cananga odorata with (12.80 µmol m-2 s-1). Alstonia scholaris has the highest aboveground standing biomass accumulation of 106.94 kg, followed by Samanea saman (20.83 kg), and Acacia mangium (19.43 kg). The total biomass accumulated of all the tree species is 200.03 kg. Therefore, species of trees in Universiti Tun Husein Onn Malaysia main campus have the potential to absorb a significant amount of CO2 from the atmosphere thereby contributing to mitigating-the localized effects of global warming.
Czasopismo
Rocznik
Tom
Numer
Strony
3001-3006
Opis fizyczny
Daty
wydano
2018-12-28
Twórcy
autor
- Universiti Tun Hussein Onn Malaysia
autor
- Universiti Tun Hussein Onn Malaysia
Bibliografia
- Stangeland, A. (2007). A model for the CO2 capture potential. International Journal of Greenhouse Gas Control, 1(4), 418–429. doi: 10.1016/s1750-5836(07)00087-4
- Suwanmontri, C., Kositanont, C., & Panich, N. (2013). Carbon Dioxide Absorption of Common Trees in Chulalongkorn University. Modern Applied Science, 7(3). doi: 10.5539/mas.v7n3p1
- Ahmedin, A. M., Bam, S., Siraj, K. T., & Raju, A. S. (2013). Assessment of biomass and carbon sequestration potentials of standing Pongamia pinnata in Andhra University, Visakhapatnam, India. Bioscience Discovery, 4(2), 143–148.
- Gore, A. (2014, June 18). The Turning Point: New Hope for the Climate. Rolling Stone, 18. Retrieved from https://www.rollingstone.com/politics/politics-news/the-turning-point-new-hope-for-the-climate-81524
- Alamgir, M., & Al-Amin, M. (2007). Organic carbon storage in trees within different Geopositions of Chittagong (South) Forest Division, Bangladesh. Journal of Forestry Research, 18(3), 174–180. doi: 10.1007/s11676-007-0036-6
- Sundquist, E. T., Burruss, R. C., Faulkner, S. P., Gleason, R. A., Harden, J. W., Kharaka, Y. K., ... & Waldrop, M. P. (2008). Carbon sequestration to mitigate climate change. Retrieved from https://pubs.usgs.gov/fs/2008/3097/pdf/CarbonFS.pdf
- Nanda, S., Reddy, S. N., Mitra, S. K., & Kozinski, J. A. (2016). The progressive routes for carbon capture and sequestration. Energy Science & Engineering, 4(2), 99–122. doi: 10.1002/ese3.117
- Cheah, W. Y., Ling, T. C., Juan, J. C., Lee, D.-J., Chang, J.-S., & Show, P. L. (2016). Biorefineries of carbon dioxide: From carbon capture and storage (CCS) to bioenergies production. Bioresource Technology, 215, 346–356. doi: 10.1016/j.biortech.2016.04.019
- Goodale, C. L., Apps, M. J., Birdsey, R. A., Field, C. B., Heath, L. S., Houghton, R. A., ... & Shvidenko, A. (2002). Forest carbon sinks in the Northern Hemisphere. Ecological applications, 12(3), 891–899.
- McPherson, E. G., & Simpson, J. R. (1999). Carbon dioxide reduction through urban forestry: guidelines for professional and volunteer tree planters. doi: 10.2737/psw-gtr-171
- McPherson, E. G., & Simpson, J. R. (2003). Potential energy savings in buildings by an urban tree planting programme in California. Urban Forestry & Urban Greening, 2(2), 73–86. doi: 10.1078/1618-8667-00025
- McPherson, G., Simpson, J., Xiao, Q., & Wu, C. (2007, March 31). Los Angeles One Million Tree Canopy Cover Assessment Final Report. Retrieved from https://www.sactree.com/assets/files/greenprint/UrbanForestforCleanAir/psw_cufr689a_MillionTreesLA_final_web.pdf
- Nowak, D. J., & Crane, D. E. (2002). Carbon storage and sequestration by urban trees in the USA. Environmental pollution, 116(3), 381–389.
- Udayakumar, S., M. and Sekar, T. (2015). Estimation of urban tree biomass in Pachaiyappa’s College, Chennai, India. Scholars Academic Journal of Biosciences, 3(4), 338–347.
- Isa, N., Ismail, S., & Reba, M. (2014). Carbon stock of Macaranga gigentia and Adinandra dumosa. International Alliance for Sustainable Urbanization and Regeneration, 69–76. Retrieved from http://builtsurvey.utm.my/ismail/files/2015/01/1-2.pdf
- Mitra, A., Bagchi, J., Parkhi, S. T. U., Debnath, S., Pramanick, P., & Zaman, S. (2015). Carbon sequestration in Bhubaneswar City of Odisha, India. International Journal of Innovative Research in Science, Engineering and Technology, 4(8), 6942–6947.
- Sundarapandian, S. M., Amritha, S., Gowsalya, L., Kayathri, P., Thamizharasi, M., Dar, J. A., ... & Gandhi, D. S. (2014). Biomass and carbon stock assessments of woody vegetation in Pondicherry University campus, Puducherry. International Journal of Environmental Biology, 4(2), 87–99.
- Ganguly, S., & Mukherjee, A. (2016). A census of the tree species in the golapbag campus of burdwan university, West Bengal (India) with their iucn red list status and carbon sequestration potential of some selected species. Indian Journal of Scientific Research, 7(1), 67.
- Eneji, I. S., Obinna, O., & Azua, E. T. (2014). Sequestration and Carbon Storage Potential of Tropical Forest Reserve and Tree Species Located within Benue State of Nigeria. Journal of Geoscience and Environment Protection, 02(02), 157–166. doi: 10.4236/gep.2014.22022
- Djomo, A. N., Ibrahima, A., Saborowski, J., & Gravenhorst, G. (2010). Allometric equations for biomass estimations in Cameroon and pan moist tropical equations including biomass data from Africa. Forest Ecology and Management, 260(10), 1873–1885. doi: 10.1016/j.foreco.2010.08.034
- Gedefaw, M., Soromessa, T., & Belliethathan, S. (2014). Forest Carbon Stocks in Woody Plants of Tara Gedam Forest: Implication for Climate Change Mitigation. Science, Technology and Arts Research Journal, 3(1), 101. doi: 10.4314/star.v3i1.16
- Peacock, T. R. (1992). The preparation of plant material and determination of weight percent ash. Retrieved from https://pubs.usgs.gov/of/1992/0345/report.pdf
- Zhao, M., Escobedo, F. J., & Staudhammer, C. (2010). Spatial patterns of a subtropical, coastal urban forest: Implications for land tenure, hurricanes, and invasives. Urban Forestry & Urban Greening, 9(3), 205–214. doi: 10.1016/j.ufug.2010.01.008
- MacDicken, K. G. (1997). A guide to monitoring carbon storage in forestry and agroforestry projects. Arlington: Winrock International Institute for Agricultural Development.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.desklight-f51fce2c-394e-4932-961c-4ae76e4d09cf