Efficient bioconversion of palm acid oil and palm kernel acid oil to poly(3-hydroxybutyrate) by Cupriavidus necator

2008 ◽  
Vol 86 (6) ◽  
pp. 533-539 ◽  
Author(s):  
Yik-Kang Kek ◽  
Wing-Hin Lee ◽  
Kumar Sudesh

Efficient bioconversion of palm oil by-products to green materials serves as a prominent way to overcome wastage. Generally, major palm oil by-products such as palm acid oil (PAO) and palm kernel acid oil (PKAO) are used for animal feed. This pioneer study investigated the ability of Cupriavidus necator H16 (ATCC 17699) (formerly Ralstonia eutropha) to biologically convert these by-products to poly(3-hydroxybutyrate) [P(3HB)]. P(3HB) was synthesized when PAO or PKAO was fed as the sole carbon source. However, it was found that PKAO is superior with respect to higher amount of P(3HB) accumulation in 48 h (85 wt% of the dry cell mass). In addition, important culture parameters were identified, such as nitrogen sources and ratio of culture volume to flask volume, which significantly affected the P(3HB) content. The nitrogen concentration in the culture medium is very crucial in promoting the biosynthesis of P(3HB). The highest P(3HB) yield (3.1 g/L) was initiated at 4 mmol/L of urea. Less than 0.4 g/L of P(3HB) was obtained when 30.0 mmol/L or higher urea concentrations were used. This study has identified a suitable process to produce high P(3HB) yield from major palm oil by-products. It is also demonstrated that C. necator H16 has suitable metabolic pathways that allow the conversion of palm oil by-products to P(3HB) effectively. Hereby, surplus palm oil by-products can be converted to a relatively high-value and sustainable product.Key words: poly(3-hydroxybutyrate), palm oil, palm acid oil, palm kernel acid oil, Cupriavidus necator.

2019 ◽  
Vol 28 (4) ◽  
pp. 189
Author(s):  
Simon Petrus Ginting ◽  
K Simanihuruk ◽  
A Tarigan ◽  
K R Pond

Biomass by-products or plant residues from the plantation system would play a crucial role in animal production since the utilization of forages from the underneath tree crops would be less or minimal when the palm oil crop mature. By-products generated from the palm oil system vary, but in relation to the animal production they could be generally categorized into the fibrous by-products and the non-fibrous (concentrate) by-products. Palm oil mill effluent (POME) and palm kernel cake (PKC) are concentrate by-products produced during the processing of palm oil extraction which have great potency to support sheep and goat production, although limiting factors such as contamination of shell and high copper level in PKC need to be considered in their utilization as feed. The fibrous palm oil by-products include oil palm fronds (OPF) and oil palm trunk (OPT) generated from the palm crop trees and oil palm empty fruit bunch (OPEFB) and palm pressed fiber (PPF) generated from processing of fresh fruits to yield crude oil. These fibrous by-products cannot meet the metabolisable energy required for high growth rate and for lactation of sheep and goats due to low DM digestibility, low crude protein content, low fermentable carbohydrate and low level of intake. Limited inclusion level in ration should be applied for those by-products to yield an acceptable production level of sheep and goats. Pretreatments (physical, chemical, and biological) gave some improvement in their nutritional qualities, however additional cost of pretreatments need to be considered. In the future, there would be a great challenge for the utilization of those fibrous by-products as animal feed since bioconversion of lignocellulosic materials to products such as chemicals (bioethanol, sugar, and bioplastic), fuels, and organic fertilizers are receiving greater interest. Some comparative advantages of these natural wastes are their relatively low cost, renewable and widespread in nature for used in an industrial operation.


2016 ◽  
Vol 11 (4) ◽  
pp. 305-314 ◽  
Author(s):  
Bamidele V. Ayodele ◽  
Chin Kui Cheng

Abstract Malaysia is presently the world’s largest exporter of palm oil with total production of 19.22 million tonnes of crude palm oil (CPO) in 2013. Aside CPO, by-products such as empty fruit bunch (EFB), palm kernel shell (PKS), palm kernel oil (PKO), palm kernel cake (PKC) and pressed palm fibres (PPF) are produced from the palm oil mills. These biomasses can be used as potential feedstock for the production of biofuels, biogas and bioelectricity. One of the ways to fully harness the potentials of these biomasses is by employing the biorefinery concepts where all the products and by-products from oil palm are utilized for production of valuable bio-products. In this study, technological feasibility of biorefinery for the production of biodiesel, hydrogen, Fischer-Tropsch liquids (FTLs) integrated with combined heat and power (CHP) generation was investigated. Flowsheet was designed for each of the processes using Aspen HYSYS® v 8.0. Material balance was performed on a palm oil mill processing 250 tonnes per year of fresh fruit palm (FFP). Results from the material balance shows that 45.1 tonnes of refined bleached deodorized palm oil (RDBPO) and 52.4 tonnes of EFB were available for the production of biodiesel, hydrogen, FTLs and the CHP generation. The annual plant capacity of the biodiesel production is estimated to be 26,331.912 tonnes. The overall energy consumption of the whole process was estimated to be 36.0 GJ/h. This energy demand was met with power generated from the CHP which is 792 GJ/h leaving a surplus of 756 GJ/h that can be sold to the grid. The process modelling and simulation of the biorefinery process shows technological feasibility of producing valuable products from oil palm.


Author(s):  
Muhammad Arief Dirgantoro ◽  
Robiatul Adawiyah

Abstrak            Tulisan ini bertujuan untuk menguraikan nilai ekonomi dengan pemanfaatan limbah kelapa sawit menuju Zero Waste Production.  Satu hektar kelapa sawit, setiap tahunnya menghasilkan 25 ton tandan buah segar (TBS) padahal yang menjadi minyak dan inti sawit hanya sekitar 25%, dengan demikian 19 ton dari TBS akan menjadi limbah. Dengan semakin gencarnya isu lingkungan maka diperlukan pemanfaatan dan pengendalian limbah industri kelapa sawit yang ramah lingkungan agar dapat memberikan nilai tambah dan mengurangi biaya yang pada akhirnya memberikan keuntungan bagi berbagai pihak, baik pihak perkebunan, pabrik, masyarakat dan lingkungan. Konsep 3R (Reuse, Recyle dan Recovery) akan mendorong setiap penghasil limbah untuk menjadikan limbahnya memiliki nilai ekonomis dan menguragi biaya. Pemanfaatan limbah kelapa sawit dapat mengurangi biaya produksi listrik, briket arang, bahan baku pulp, pakan ternak, dan menghemat biaya pupuk. Kata kunci : nilai ekonomi, pemanfaatan, limbah, isu lingkungan, konsep 3R                      (Reuse, Recyle  dan Recovery)  Abstract             This paper aims to outline the economic value of the use of palm oil waste towards Zero Waste Production. One hectare of oil palm, annually produce 25 tonnes of fresh fruit bunches (FFB), whereas the oil and palm kernel only about 25%, so 19 tonnes of FFB would be a waste. With the developed environmental issues will require the use and control of industrial waste environmentally friendly palm oil in order to provide added value and reduce costs, which in turn provide benefits to various parties, both the plantations, factories, communities and the environment. The concept of 3R (Reuse, Recycle and Recovery) will encourage each waste generator to make the waste has economic value and reduces costs. Utilization of oil palm waste can reduce the production cost of electricity, charcoal, pulp raw materials, animal feed, and saves the cost of fertilizer. Keywords: economic value, utilization, waste, environmental issues, the concept                  of 3R (Reuse, Recycle and Recovery)


Fuel ◽  
2021 ◽  
Vol 305 ◽  
pp. 121569
Author(s):  
Chao Jin ◽  
Xin Liu ◽  
Tianyun Sun ◽  
Jeffrey Dankwa Ampah ◽  
Zhenlong Geng ◽  
...  

2021 ◽  
Author(s):  
Nick Pasiecznik

Abstract E. guineensis, the oil palm or African oil palm, is native to equatorial Africa, although the only other species in the genus (E. oleifera) is indigenous to South and Central America. E. guineensis, however, is the major economic species: fruits of E. oleifera have a much lower oil content and are used only locally (Westphal and Jansen, 1989). However, E. guineensis was introduced into South America during the time of the slave trade, and naturalized groves are reported in coastal areas of Brazil near Bélem. In the mid-1800s it was introduced to South-East Asia via the Botanic Gardens in Bogor, Indonesia. The first oil-palm estates in Sumatra (since 1911) and Malaysia (since 1917) used plant material from second- and third-generation descendants of the original Bogor palms, from which one of the breeding populations, the Deli Dura, is derived (Westphal and Jansen, 1989). After soyabean, E. guineensis is the second most important crop worldwide for the supply of edible vegetable oil. Palm oil kernel, for example, is a major agricultural export from Malaysia, and South-East Asia is the main area of production.E. guineensis yields two types of oil: palm oil from the fleshy mesocarp, and palm-kernel oil from the kernel, in a volume ratio 10:1. Most palm oil is used in food preparation (margarines, and industrial frying oils used to prepare snack foods, etc.). Palm-kernel oil is similar in composition and properties to coconut oil, and is used in confectionery, where its higher melting point is particularly useful. It is also used in the manufacture of lubricants, plastics, cosmetics and soaps. The oil palm is a monoecious, erect, single-stemmed tree usually 20-30 m high. The root system is shallow and adventitious, forming a dense mat in the top 35 cm of the soil. The main stem is cylindrical, up to 75 cm diameter. E. guineensis palm fronds are not as suitable for thatching as other palm species, as the leaflets attach to the rachis at two angles. The oil palm is indigenous to the lowland humid tropics, and thrives on a good moisture supply and relatively open conditions. It can tolerate fluctuating water-tables with periods of standing water, although continuously flooded conditions are unsuitable. Sites often selected as suitable for oil palm are swamps, riverbanks, or sites considered too moist for tropical rain forest trees. Rainfall is often the major factor limiting production in plantations: highest yields occur where rainfall is evenly distributed throughout the year, with an optimum of 150 mm per month (Westphal and Jansen, 1989). Oil palms can grow on a variety of soil types, from sandy soils to lateritic red and yellow podzols, young volcanic soils, alluvial clays and peat soils; water-holding capacity appears to be the most important soil criterion. It is a demanding crop in terms of soil nutrients. The oil palm also has potential for incorporation into agroforestry practices. Traditional oil palm management in some areas of West Africa often incorporated both pure oil palm groves (perhaps selectively retained), scattered oil palms within temporary fields, and unexploited oil palms in mixed forest (Gupta, 1993). Harvesting of fruits usually starts about 2½ years after field planting; bunches ripen throughout the year and so harvesting usually takes place at intervals of 2 to 3 weeks in any particular area. Because oil palm is so responsive to environmental conditions, yields may vary greatly. However, over the lifetime of a palm tree, yields generally rise to a maximum in the first 6-8 years (after field planting), and will subsequently decline slowly. In Malaysia and Sumatra, well-managed plantations yield between 24 and 32 tonnes/hectare of fruit bunches; the oil yield from this will be between 4.8 and 7 tonnes/hectare. Oil palm plantations are often regarded as a better use of the land than annual food crops in humid tropical areas where soils are prone to leaching: the plantations provide continuous ground cover, and the palm canopy helps protect against soil erosion. Oil palm stems are increasingly used as a raw material for paper and composite board production. This area has big prospects in wood-based industries. It is recommended that more research is undertaken into the properties and utilization. Propagation techniques, the management of pests and diseases, and genetic resources are other areas in which studies could usefully be undertaken.


2017 ◽  
Vol 28 (2) ◽  
pp. 523
Author(s):  
Juan Sierra Márquez ◽  
Lucellys Sierra Márquez ◽  
Jesus Olivero-Verbel

The objective of this research was to highlight the economic importance of the optimal use of products and byproducts of oil palm. In Colombia, productive crops per hectare can generate, over one year, an average of 3.14 tons of oil, and up to 21.68 t of solid and liquid waste when the plant is on a productive stage. These data allowed the researcher to estimate that more than nine million of t of solid and liquid waste was produced from the 450 131 ha present in 2014, in Colombia; the produced biomass was used to generate energy and steam, releasing carbon dioxide back again into the environment. These residues have great potential in many industries, some to be developed, therefore, it is of special importance to try to maximize the use of waste produced by oil palm production, to generate economic and environmental benefits. An example of this is the palm kernel cake, with a nutritional potential in animal feed, fiber in the biocompound industry, biomass and stipe in the timber industry, glycerol, biodiesel, and liquid effluents in the chemical and biotechnological industry. The use of these raw materials may help to establish a positive balance in the cultivation of this species of oil palm in the country. 


Rural History ◽  
2019 ◽  
Vol 30 (02) ◽  
pp. 111-128
Author(s):  
Apex A. Apeh ◽  
Christian C. Opata

AbstractThe study considers the economics of the oil palm (Elaeis guinensis) to rural farmers in a rural community in south-eastern Nigeria. It compares the economic benefits of all products of the oil palm industry – palm oil, palm kernel, timber, palm wine and brooms. It posits that the most important product of the oil palm to the Enugu Ezike farmer is oil palm wine. This contrasts with the view that holds palm oil and palm kernel as the chief products of the oil palm. In a study conducted in Enugu Ezike, findings reveal that annual revenue from palm wine surpasses the six-yearly income from palm oil, palm kernel and brooms together. The study employs an eclectic framework of data collection, involving oral interviews, focus group discussions, participant observation, and the use of secondary sources. The oil palm is by every standard the most economically important tree crop and proceeds from it have positively influenced the socio-economic life of the rural communities, and as a result it has improved their living conditions.


2008 ◽  
Vol 25 (No. 4) ◽  
pp. 174-181 ◽  
Author(s):  
K.G. Berger

The results of nutritional research on fatty acids have led to the recommendation that the level of trans-fatty acids in foods (the products of partial hydrogenation of oils) should be reduced as far as possible. Palm oil and palm kernel oil are readily available and economical sources of solid fat. Formulae using oils to make fats for the main types of food products are reviewed.


2015 ◽  
Vol 77 (12) ◽  
Author(s):  
Nor Hasanah Abdul Shukor Lim ◽  
Mohd Warid Hussin ◽  
Abdul Rahman Mohd. Sam ◽  
Mostafa Samadi ◽  
Mohamed A. Ismail ◽  
...  

This paper presents the utilization of palm oil fuel ash and oil palm kernel shell as cement and sand replacement, respectively in the production of palm oil fuel ash based mortar mixes as part of new and innovative materials in the construction industry. The study includes basic properties such as water absorption, density, compressive strength, and microstructure test with regards to variations in the mix design process. In order to get better performance in terms of strength development, the ash used was subjected to heat treatment and grounded to the size of less than 2 µm. High volume of 80% palm oil fuel ash was used as cement replacement, while 25%, 50%, 75%, and 100% of oil palm kernel shell was used as sand replacement. The results indicated that the density of the mortar decreases with increasing volume of oil palm kernel ash as sand replacement. Three different types of mortar were produced with different percentages of oil palm kernel shell, which was high strength, medium strength, and low strength lightweight mortars.


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