Visualization of the Sustainability Level of Crude Palm Oil Production: A Life Cycle Approach
Abstract
:1. Introduction
- to provide a holistic assessment of the crude palm oil production based on the environmental, economic, and social dimensions that are required by the decision makers to monitor the industry for sustainable production
- to develop a scheme to evaluate the level of sustainability of the crude palm oil production through three dimensions (social, environmental, and economics).
2. Methodology
- 1.
- 2.
- Conduct LCC to determine the economic impacts applying the methodology proposed by the recent Code of Practice on LCC [26];
- 3.
- Perform S-LCA to assess the social impacts of utilizing the methodology based on the UNEP/SETAC Guidelines for S-LCA of products [27];
- 4.
- Determine LCSA by integrating LCA, LCC, and S-LCA using the scoring system method;
- 5.
- Visualize the results to evaluate the level of crude palm oil sustainability;
- 6.
- The steps taken are explained in detail in the following sections.
2.1. Goal and Definition of Scope
2.2. LCA Methodology
2.3. LCC Methodology
2.4. S-LCA Methodology
2.5. Life Cycle Impact Assessment (LCIA)
2.5.1. Environmental LCIA
2.5.2. Economic LCIA
2.5.3. Social LCIA
2.6. Life Cycle Sustainability Assessment (LCSA) Using Scoring System
2.7. Visualization
3. Results and Discussion
3.1. Environmental Dimension Results
3.2. Economic Dimension Results
3.3. Social Dimension Results
3.4. Sustainability Assessment Results
3.5. Visualization
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Andarani, P.; Nugraha, W.D.; Sawitri, D.; Budiawan, W. Life-Cycle Assessment of Crude Palm Oil Produced at Mill J, PT XYZ, Sumatera Island using Eco-indicator 99. MATEC Web. Conf. 2018, 159, 01028. [Google Scholar] [CrossRef] [Green Version]
- Chiew, Y.L.; Shimada, S. Current state and environmental impact assessment for utilizing oil palm empty fruit bunches for fuel, fiber and fertilizer e A case study of Malaysia. Biomass Bioenergy 2013, 51, 109–124. [Google Scholar] [CrossRef]
- Lim, C.I.; Biswas, W.K.; Samyudia, Y. Review of Existing Sustainability Assessment Methods for Malaysian Palm Oil production. Procedia CIRP 2015, 26, 13–18. [Google Scholar] [CrossRef] [Green Version]
- Norwana, A.A.B.D.; Kunjappan, R.; Chin, M.; Schoneveld, G.; Potter, L.; Andriani, R. The Local Impacts of Oil Palm Expansion in Malaysia an Assessment Based on a Case Study in Sabah State; CIFOR: Lima, Peru, 2011; Volume 78. [Google Scholar] [CrossRef] [Green Version]
- Mahat, S.B.A. The Palm Oil Industry from the Perspective of Sustainable Development: A Case Study of Malaysian Palm Oil Industry. Master’s Thesis, Ritsumeikan Asia Pacific University of Japan, Beppu, Japan, 2012. [Google Scholar]
- Stichnothe, H.; Schuchardt, F. Life cycle assessment of two palm oil production systems. Biomass Bioenergy 2011, 35, 3976–3984. [Google Scholar] [CrossRef]
- Espino, M.T.M.; Ramos, R.M.Q.; De Bellotindos, L.M. Life Cycle Assessment of the Oil Palm Production in the Philippines: A Cradle to Gate Approach. Nat. Environ. Pollut. Technol. 2019, 18, 709–718. [Google Scholar]
- Castanheira, E.G.; Freire, F.M. Environmental performance of palm oil biodiesel—A life-cycle perspective. In Proceedings of the 2011 IEEE International Symposium on Sustainable Systems and Technology, Chicago, IL, USA, 16–18 May 2011; pp. 1–6. [Google Scholar]
- Silalertruksa, T.; Gheewala, S.H. Environmental sustainability assessment of palm biodiesel production in Thailand. Energy 2012, 43, 306–314. [Google Scholar] [CrossRef]
- Ashnani, M.H.M.; Johari, A.; Hashim, H.; Hasani, E. Life Cycle Assessment of Palm Oil Biodiesel Production in Malaysia. Appl. Mech. Mater. 2014, 465, 1080–1086. [Google Scholar] [CrossRef]
- Castanheira, E.G.; Freire, F. Environmental life cycle assessment of biodiesel produced with palm oil from Colombia. Int. J. Life Cycle Assess. 2016, 22, 587–600. [Google Scholar] [CrossRef]
- Prapaspongsa, T.; Musikavong, C.; Gheewala, S.H. Life cycle assessment of palm biodiesel production in Thailand: Impacts from modelling choices, co-product utilisation, improvement technologies, and land use change. J. Clean. Prod. 2017, 153, 435–447. [Google Scholar] [CrossRef]
- Subramaniam, V.; Muhamad, H.; Hashim, Z.; Wei, P.C. Life cycle assessment of the production of crude palm (Part 3). J. Oil Palm. Res. 2010, 22, 895–903. [Google Scholar]
- Silalertruksa, T.; Bonnet, S.; Gheewala, S.H. Life cycle costing and externalities of palm oil biodiesel in Thailand. J. Clean. Prod. 2012, 28, 225–232. [Google Scholar] [CrossRef]
- Ong, H.C.; Mahlia, T.M.I.; Masjuki, H.H.; Honnery, D. Life cycle cost and sensitivity analysis of palm biodiesel production. Fuel 2012, 98, 131–139. [Google Scholar] [CrossRef]
- Muhammad, K.I.; Sharaai, A.H.; Ismail, M.M.; Harun, R.; Yien, W.S. Social implications of palm oil production through social life cycle perspectives in Johor, Malaysia. Int. J. Life Cycle Assess. 2018, 24, 935–944. [Google Scholar] [CrossRef]
- Muhammad, K.I.; Pauzi, M.F.M.; Sharaai, A.H. Social Life Cycle Assessment (SLCA) for palm oil production in Malaysia. Adv. Environ. Biol. 2015, 9, 89–94. [Google Scholar]
- Manik, Y.; Leahy, J.; Halog, A. Social life cycle assessment of palm oil biodiesel: A case study in Jambi Province of Indonesia. Int. J. Life Cycle Assess. 2013, 18, 1386–1392. [Google Scholar] [CrossRef]
- Omran, N.; Sharaai, A.H.; Hashim, A.H.B.; Ismail, M.M. The Role of Life Cycle Sustainable Assessment (Lcsa) in Achieving Sustainable Palm Oil Production: A Metaanalysis. Int. J. Adv. Sci. Technol. 2020, 29, 1730–1747. [Google Scholar]
- UNEP. Towards a Life Cycle Sustainability Assessment: Making Informed Choices on Products; UNEP: Nairobi, Kenya, 2011; ISBN 9789280731750. [Google Scholar]
- Finkbeiner, M.; Schau, E.M.; Lehmann, A.; Traverso, M. Towards Life Cycle Sustainability Assessment. Sustainability 2010, 2, 3309–3322. [Google Scholar] [CrossRef] [Green Version]
- Kloepffer, W. Life Cycle Sustainability Assessment of Products (with Comments by Helias A. Udo de Haes, p. 95). Int. J. LCA 2008, 13, 89–95. [Google Scholar] [CrossRef]
- Valdivia, S.; Ugaya, C.M.L.; Hildenbrand, J.; Traverso, M.; Mazijn, B.; Sonnemann, G. A UNEP/SETAC approach towards a life cycle sustainability assessment—our contribution to Rio+20. Int. J. Life Cycle Assess. 2012, 9, 1673–1685. [Google Scholar] [CrossRef]
- ISO. Environmental Management—Life Cycle Assessment—Principles and Framework; ISO 14040:2006; ISO: Geneva, Switzerland, 2006. [Google Scholar]
- ISO. Environmental Management—Life Cycle Assessment—Requirements and Guidelines; ISO 14044:2006; ISO: Geneva, Switzerland, 2006. [Google Scholar]
- Swarr, T.E.; Hunkeler, D.; Klopffer, W.; Pesonen, H.; Ciroth, A.; Brent, A.C.; Pagan, R. Environmental life-cycle costing: A code of practice. Int. J. Life Cycle Assess. 2011, 16, 389–391. [Google Scholar] [CrossRef]
- UNEP. Guidelines for Social Life Cycle Assessment of Products; UNEP/Earth: Nairobi, Kenya, 2009; ISBN 9789280730210. [Google Scholar]
- Petti, L.; Serreli, M.; Cesare, S. Di Systematic literature review in social life cycle assessment. Int. J. Life Cycle Assess. 2016, 23, 422–431. [Google Scholar] [CrossRef]
- Sharaai, A.H.; Muhammad, K.I.; Wah, Y.G. Social impact evaluation of tea production using social life cycle assessment (S-LCA) method in Cameron Highlands, Pahang, Malaysia. J. Malays. Inst. Plan. 2019, 17, 215–224. [Google Scholar] [CrossRef]
- Intergovernmental Panel on Climate Change (IPCC). Good Practice Guidance and Uncertainty Management in National Greenhouse Gas. Inventories; IPCC: Geneva, Switzerland, 2000. [Google Scholar]
- IPCC. 2006 IPCC Guidelines for National Greenhouse Gas. Inventories; IPCC: Hayama, Japan, 2006. [Google Scholar]
- Ma, A.N. Innovations in Management of Palm Oil Mill Effluent; Planter: Kuala Lumpur, Malaysia, 1999. [Google Scholar]
- Subramaniam, V.; May, C.Y.; Muhammad, H.; Hashim, Z.; Tan, Y.E.W.A.I.; Wei, P.C. Life cycle assessment of the production of crude palm kernel oil (part 3a). J. Oil Palm. Res. 2010, 22, 904–912. [Google Scholar]
- Kabir, S.M.S. Methods of Data Collection. In Basic Guidelines for Research; SMS Kabir: Jamaica, NY, USA, 2016. [Google Scholar]
- Krejcie, R.V.; Morgan, D. Determining sample size for research activities. Eductional. Psychol. Mzasurexent 1970, 30, 607–610. [Google Scholar] [CrossRef]
- Hung, M.; Ma, H. Quantifying system uncertainty of life cycle assessment based on Monte Carlo simulation. Int. J. Life Cycle Assess. 2009, 14, 19–27. [Google Scholar] [CrossRef]
- Yi, S.; Kurisu, K.H.; Hanaki, K. Life cycle impact assessment and interpretation of municipal solid waste management scenarios based on the midpoint and endpoint approaches. Int. J. Life Cycle Assess. 2011, 16, 652–668. [Google Scholar] [CrossRef]
- Dong, Y.H.; Ng, S.T. Comparing the midpoint and endpoint approaches based on ReCiPe—A study of commercial buildings in Hong Kong. Int. J. Life Cycle Assess. 2014, 19, 1409–1423. [Google Scholar] [CrossRef]
- Dong, Y.H.; Ng, S.T. A modeling framework to evaluate sustainability of building construction based on LCSA. Int. J. Life Cycle Assess. 2016, 4, 555–568. [Google Scholar] [CrossRef]
- Parent, J.; Cucuzzella, C.; Reveret, J. Impact assessment in SLCA: Sorting the sLCIA methods according to their outcomes. Int. J. Life Cycle Assess. 2010, 15, 164–171. [Google Scholar] [CrossRef]
- Wu, R.; Yang, D.; Chen, J. Social Life Cycle Assessment Revisited. Sustainability 2014, 6, 4200–4226. [Google Scholar] [CrossRef] [Green Version]
- Foolmaun, R.K.; Ramjeawon, T. Life cycle sustainability assessments (LCSA) of four disposal scenarios for used polyethylene terephthalate (PET) bottles in Mauritius. Env. Dev. Sustain. 2013, 15, 783–806. [Google Scholar] [CrossRef]
- Kumar, R.; Murty, H.R.; Gupta, S.K.; Dikshit, A.K. Development of composite sustainability performance index for steel industry. Ecol. Indic. 2007, 7, 565–588. [Google Scholar] [CrossRef]
- Norfadila, J.; Norela, S.; Salmijah, S.; Ismail, B. Life Cycle Assessment (LCA) for the Production of Palm Biodiesel: A Case Study in Malaysia and Thailand. Malaysian Appl. Biol. 2014, 43, 53–63. [Google Scholar]
- Bessou, C.; Basset-mens, C.; Tran, T.; Benoist, A. LCA applied to perennial cropping systems: A review focused on the farm stage. Int. J. Life Cycle Assess. 2013, 18, 340–361. [Google Scholar] [CrossRef] [Green Version]
- Schmidt, J.H. Comparative life cycle assessment of rapeseed oil and palm oil. Int. J. Life Cycle Assess. 2010, 15, 183–197. [Google Scholar] [CrossRef]
- Ayodeji, A. Production and Life Cycle Assessment of Biodiesel from Three Waste Oils. Ph.D. Thesis, College of Science and Technology, Covenant University, Ota, Ogun State, Nigeria, 2015. [Google Scholar]
- Vue, E. A Life Cycle Assessment and Process System Engineering Integrated Approach for Sustainability: Application to Environmental Evaluation of Biofuel Production. Ph.D. Thesis, Universite de Toulouse, Toulouse, France, 2013. [Google Scholar]
- Kamaruddin, R.; Amizi, M.; Abdullah, N.; Ali, J.; Aznor, S. Job satisfaction among Malaysia youth working in the oil palm plantation sector: Analysis of attraction and repulsion factors. In Proceedings of the 3rd Kuala Lumpur International Agriculture, Forestry and Plantation, Kuala Lumpur, Malaysia, 12–13 December 2016. [Google Scholar]
Indicator | Percentage | Marks |
---|---|---|
Positive indicators | 0–20 | 0 |
21–40 | 1 | |
41–60 | 2 | |
61–80 | 3 | |
81–100 | 4 | |
Negative Indicators | 0–20 | 4 |
21–40 | 3 | |
41–60 | 2 | |
61–80 | 1 | |
81–100 | 0 |
Impact Category | Subcategory | Units | Results of LCA (Mill A) | Results of LCA (Mill B) |
---|---|---|---|---|
Human Health | Carcinogens | DALY | 256 | 99.42 |
Resp. organics | DALY | 0.599 | 0.231 | |
Resp. inorganics | DALY | 757 | 453 | |
Climate change | DALY | 176 | 97.2 | |
Radiation | DALY | 0.673 | 0.313 | |
Ozone layer | DALY | 0.059 | 0.0238 | |
Ecosystem | Ecotoxicity | pdf*m2yr | 3.04 × 108 | 1.09 × 107 |
Acidification/Eutrophication | pdf*m2yr | 5.61 × 107 | 4.68 × 107 | |
Land use | pdf*m2yr | 2.11 × 109 | 1.97 × 109 | |
Resources | Minerals | MJ surplus | 5.31 × 107 | 2.16 × 107 |
Fossil fuels | MJ surplus | 9.25 × 108 | 3.10 × 108 |
Impact Category | Mill A (RM) | Mill B (RM) |
---|---|---|
Initial investment costs | 30,606,822.364 (45.3%) | 118,541,898.8 (79%) |
Operation costs | 23,296,451.21 (34.54%) | 16,738,514.62 (11%) |
Maintenance costs | 13,347,145.08 (19.7%) | 14,640,000 (9.76%) |
End of life costs | 188,908.65 (0.2%) | 52,105.62 (0.03%) |
Total cost | 67,439,327.30 | 149,972,519.04 |
Net Precent Value (NPV) | 357,546,693.55 | 452,107,923.99 |
Pay back period (PBP) | 3.6 | 2.16 |
Stakeholder Categories | Subcategory | Subcategory Percentage | |
---|---|---|---|
Worker | plantation-based mill (A) | plantation-based mill (B) | |
Job satisfaction | 92.5% | 90% | |
Fair salary | 89.05% | 87.3% | |
Health and safety | 87.66% | 98.4% | |
Nonexistent Discrimination/Equal opportunity | 95% | 95% | |
Social benefits/social security | 91% | 91.5% |
Stakeholder Categories | Subcategory Indicators | Score |
---|---|---|
Local Community | Safe and healthy living condition | 95.2% |
Culture and heritage | 90.2% | |
Local involvement | 93.39% | |
Local community job opportunities | 79.5% |
Impact Category | Subcategory | Results of LCA (Mill A %) | The Percentage Range | Score | Results of LCA (Mill B %) | The Percentage Range | Score |
---|---|---|---|---|---|---|---|
Human Health | Carcinogens | 33.82 | 21–40 | 3 | 21.94 | 21–40 | 3 |
Resp. organics | 0.079 | 0–20 | 4 | 0.05 | 0–20 | 4 | |
Resp. inorganics | 100 | 81–100 | 0 | 100 | 81–100 | 0 | |
Climate change | 23.28 | 21–40 | 3 | 21.45 | 21–40 | 3 | |
Radiation | 0.085 | 0–20 | 4 | 0.06 | 0–20 | 4 | |
Ozone layer | 0.007 | 0–20 | 4 | 0.005 | 0–20 | 4 | |
Ecosystem | Ecotoxicity | 14.33 | 0–20 | 4 | 0.55 | 0–20 | 4 |
Acidification/Eutrophication | 2.64 | 0–20 | 4 | 2.37 | 0–20 | 4 | |
Land use | 100 | 81–100 | 0 | 100 | 81–100 | 0 | |
Resources | Minerals | 5.74 | 0–20 | 4 | 6.96 | 0–20 | 4 |
Fossil fuels | 100 | 81–100 | 0 | 100 | 81–100 | 0 |
Impact Category | Results of LCC (Mill A %) | The Percentage Range | Score | Results of LCC (Mill B %) | The Percentage Range | Score |
---|---|---|---|---|---|---|
Initial investment costs | 45.3% | 41–60 | 2 | 79% | 61–80 | 1 |
Operation costs | 34.54% | 21–40 | 3 | 11% | 0–20 | 4 |
Maintenance costs | 19.7% | 0–20 | 4 | 9.76% | 0–20 | 4 |
End of life costs | 0.2% | 0–20 | 4 | 0.03% | 0–20 | 4 |
Dimension | Impact Category | Score (Mill A) | Score (Mill B) |
---|---|---|---|
Environmental dimension | Human health | 3 | 3 |
Ecosystem | 2.6 | 2.6 | |
Resources | 2 | 2 | |
Environmental Score | 2.5 | 2.5 | |
Economic dimension | Initial investment costs | 2 | 1 |
Operation costs | 3 | 4 | |
Maintenance costs | 4 | 4 | |
End of life costs | 4 | 4 | |
Economic Score | 3.25 | 3.25 | |
Social dimension | Job satisfaction | 3.8 | 3.8 |
Fair salary | 3.8 | 3.8 | |
Health and safety | 3.7 | 3.7 | |
Discrimination/Equal opportunity | 4 | 4 | |
Social benefits/social security | 3.8 | 3.8 | |
Safe and healthy living condition | 3.9 | 3.9 | |
Culture and heritage | 3.5 | 3.5 | |
Local involvement | 4 | 4 | |
Local community job opportunities | 3.2 | 3.2 | |
Social score | 3.7 | 3.7 |
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Omran, N.; Sharaai, A.H.; Hashim, A.H. Visualization of the Sustainability Level of Crude Palm Oil Production: A Life Cycle Approach. Sustainability 2021, 13, 1607. https://doi.org/10.3390/su13041607
Omran N, Sharaai AH, Hashim AH. Visualization of the Sustainability Level of Crude Palm Oil Production: A Life Cycle Approach. Sustainability. 2021; 13(4):1607. https://doi.org/10.3390/su13041607
Chicago/Turabian StyleOmran, Najat, Amir Hamzah Sharaai, and Ahmad Hariza Hashim. 2021. "Visualization of the Sustainability Level of Crude Palm Oil Production: A Life Cycle Approach" Sustainability 13, no. 4: 1607. https://doi.org/10.3390/su13041607
APA StyleOmran, N., Sharaai, A. H., & Hashim, A. H. (2021). Visualization of the Sustainability Level of Crude Palm Oil Production: A Life Cycle Approach. Sustainability, 13(4), 1607. https://doi.org/10.3390/su13041607