Estimating stored carbon stock in oil palm (Elaeis guineensis Jacq.) plantation by age group in PT daria dharma pratama plantation Bengkulu Indonesia

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Research Paper 01/01/2016
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Estimating stored carbon stock in oil palm (Elaeis guineensis Jacq.) plantation by age group in PT daria dharma pratama plantation Bengkulu Indonesia

Yuliyanto, Dede Setiadi, Sulistijorini
Int. J. Agron. & Agric. Res. 8(1), 81-86, January 2016.
Copyright Statement: Copyright 2016; The Author(s).
License: CC BY-NC 4.0

Abstract

The increasing concentration of carbon in the atmosphere is a serious environmental problem that can affect living system on earth. The increase in greenhouse gas emissions caused global warming that will affect the world climate change and rising sea levels. Climate change will disrupt farming system in both the micro and macro scale. Estimation of forest carbon emissions is one of the important efforts to reduce climate change. Land clearing for palm oil plantations will affect the stored carbon in the forest reserves. The aim of this study is to determine the biomass stored carbon stocks in oil palm plantations by age group in oil palm plantations in PT Daria Dharma Pratama (PT DDP), Bengkulu Province, Indonesia. Methods of measuring the stored carbon stock of palm oil biomass using allometric equations, is non-destructive method. Methods of measuring the stored carbon stock of undergrowth biomass and piled of oil palm fronds up was conducted by destructive methods. The largest biomass stored carbon stock was in the age group of 11-15 years crop of 69.32 tonnes ha-1. Then, in the age group of 16-20 years were 54.13 tonnes ha-1, age group of >20 years were 34.91 tonnes ha-1, the age group of 6-10 years were 34.16 tonnes ha-1, and the age group 0 – 5 year were 6.98 tonnes ha-1, respectively. Stored carbon stock in oil palm was influenced by the age of the plant, soil fertility, as well as plant growth and development.

[Ditjenbun] Direktorat Jenderal Perkebunan. 2014. Statistik Perkebunan Indonesia 2013-2015. Jakarta: Kementerian Pertanian.

[IPCC] Intergovernmental Panel on Climate Change. 2007. Climate Change 2007 – The Physical Science Basis, Contribution of Working Group I to The Fourth Assessment Report of the IPCC. New York: Cambridge University Press.

Asmani N. 2014. Kelapa Sawit Komoditas Unggulan Sumatera Selatan Yang Ramah Lingkungan. Makalah pada Seminar Pelantikan Pengurus Gabungan Pengusaha Kelapa Sawit Indonesia (GAPKI) Sumatera Selatan, Palembang 16 Januari 2014.

Badan Standardisasi Nasional. 2011. Pengukuran dan Penghitungan Cadangan Karbon-Pengukuran Lapangan Untuk Penaksiran Cadangan Karbon Hutan. Jakarta: SNI 7724, 2011.

Fahmuddin A, Runtunuwu E, June T, Susanti E, Komara H, Syahbuddin H, Las I, Meine van Noordwijk. 2009. Carbon Dioxide Emission in Land Use Transitions to Plantation. Jurnal Penelitian dan Pengembangan Pertanian 28(4), 119-126.

Gardner FP, Pearce RB, Mitchell RL. 1991. Physiology of Crop Plants. Jakarta: Universitas Indonesia Press.

Hartley, CW, S. 1988. The Oil Palm: (Elaeis guineensis Jacq.). London: Longman Group Limited.

Herman, Fahmuddin A, Irsal L. 2009. Analisis Finansial dan Keuntungan Yang Hilang dari Pengurangan Emisi Karbon Dioksida pada Perkebunan Kelapa Sawit. Jurnal Penelitian dan Pengembangan Pertanian 28(4), 127-133.

Lubis AR. 2011. Pendugaan Cadangan Karbon Kelapa Sawit Berdasarkan Persamaan Alometrik di Lahan Gambut Kebun Meranti Paham, PT Perkebunan Nusantara IV, Kabupaten Labuhan Batu, Sumatera Utara [skripsi]. Bogor: Fak Pertanian IPB.

Nasaruddin, Musa Y, Kuruseng MA. 2006. Aktivitas Beberapa Proses Fisiologis Tanaman Kakao Muda di Lapang pada Berbagai Naungan Buatan. Jurnal Agrisistem 2 (1), 26-33.

Pahan I. 2006.  Panduan  Lengkap  Kelapa  Sawit. Manajemen Agribisnis dari Hulu hingga Hilir. Jakarta: Penebar Swadaya.

Setyamidjaja D. 2010. Kelapa Sawit. Teknik Budidaya, Panen dan Pengolahan. Yogyakarta Kanisius.

Widiastuti L, Tohari and Sulistyaningsih E. 2004. Pengaruh Intensitas Cahaya dan Kadar Daminosida Terhadap Iklim Mikro dan Pertumbuhan Tanaman Krisan Dalam Pot. Jurnal Ilmu Pertanian 11(2), 35-42.

Yulianti N. 2009. Cadangan Karbon Lahan Gambut dari Agroekositrunk Kelapa Sawit PTPN IV Ajamu, Kabupaten Labuhan Batu Sumatera Utara [tesis]. Bogor: Program Pascasarjana, Institut Pertanian Bogor.

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