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1.
青藏高原地区是国内最为优良的油菜种植地之一,油菜籽亩产、含油率、千粒质量多次创下全国乃至世界最高纪录。然而目前青藏高原地区油菜产品多以油菜籽形式外销,产品附加值低,并且种植分散、生产成本高,严重限制了青藏高原地区油菜产业的发展。因地制宜地利用丰富的油菜资源发展生物柴油产业,通过生物柴油产业带动油菜产业发展,对于带动农牧民脱贫致富、保护高原生态环境、保障青藏地区燃油供应安全具有重要意义。本文探讨了在青藏高原地区发展生物柴油产业的意义、原料油供应基础及潜力,并对比分析了以菜籽油为原料油制备生物柴油的不同工艺技术。分析表明,在大规模产业化生产下,能够围绕生物柴油产业形成完整的油菜产业链,并在成本进一步降低后产生可观的潜在经济效益。  相似文献   

2.
生物柴油研究进展   总被引:11,自引:0,他引:11  
介绍了国内外生物柴油的发展现状,探讨了我国发展生物柴油的原料来源途径,包括木本油料植物、转基因油料作物、废弃油脂、微生物油脂和微藻油脂等,综述了制备生物柴油的化学法、酶法、超临界法等生产技术及其进展,概括了当前生物柴油主要的品质问题与改性对策,分析了生物柴油副产物的高值化利用策略,指出了我国生物柴油产业化面临的原料、技术和生物炼制方面的主要问题。  相似文献   

3.
发展生物柴油产业的挑战与对策的探讨   总被引:1,自引:0,他引:1  
生物柴油是一种由可再生资源生产的优质清洁燃料,发展生物柴油不仅可以保护环境,减少温室气体排放,而且可以缓解我国石油进口的压力,推动新农村建设。但由于植物油脂价格的飙升,生物柴油产业发展面临仅生产生物柴油燃料在经济上难以立足的挑战。本文从发展生物柴油原料资源,生产技术以及生物柴油化工技术开发的现状与未来发展动态进行分析,探讨了促进我国生物柴油产业健康发展的对策。[编者按]  相似文献   

4.
我国生物柴油产业的回顾与展望   总被引:3,自引:0,他引:3  
本文回顾了近年来我国生物柴油产业的发展历程,分析了我国生物柴油生产原料的主要来源,并就生物柴油的生产技术及相应的国内代表性企业进行了综述,最后对我国生物柴油的未来发展方向进行了展望。  相似文献   

5.
可再生生物柴油副产物合成生物材料PHA研究现状   总被引:2,自引:0,他引:2  
随着生物柴油产业的快速发展,大量的生物柴油副产物必将给生态环境及经济发展带来严重影响。如何利用新思路、新工艺、新技术加工处理副产物,将成为制约生物柴油产业发展的主要因素。聚羟基饱和脂肪酸酯(PHA)是当今生物材料领域最为活跃的研究热点,具有广泛的应用前景,但其生产成本高,选择便宜的合成原料一直是从事PHA研究的科学家们考虑的主要问题之一。将生物柴油副产物用于PHA生产研究,有助于解决副产物过度积累和PHA合成原料成本过高的问题,有利于生物柴油产业的稳定、可持续发展。本文综述了近年来生物柴油副产物用于PHA合成的最新进展。  相似文献   

6.
生物柴油是可再生能源开发利用的重要发展方向。藻类制备生物柴油具有产油量高、生长速度快、环境适应能力强、不与农作物争夺农田和淡水资源等优势。从微藻制备生物柴油着手,简要介绍了生物柴油的生产原料与发展历程、微藻油脂的组成与生物合成途径、微藻制备柴油的工艺与瓶颈及解决策略,最后对微藻制备生物柴油技术提出了近中远期发展目标及展望。  相似文献   

7.
发展可再生生物质能源是解决人类能源危机和环境污染的重要途径。利用边际土地发展油脂类生物质能是生物质能的重要组成部分。蓖麻因为适应性强和油脂成份独特被誉为"理想的生物柴油植物"。蓖麻是我国优势油脂类能源植物,利用边际土地,发展蓖麻产业为我国生物柴油产业化提供原料,是我国现阶段生物柴油产业化发展的相对理想而又现实的选择,而且具有重要的发展前景和巨大的发掘潜力。立足我国现阶段生物柴油产业化的瓶颈问题,着重阐述了蓖麻种质资源发掘的现状、优良品种培育的途径和发展前景,以及利用蓖麻种子油生产商业化生物柴油的现状,以期推动我国利用边际土地发展蓖麻产业以及生物柴油商业化生产。  相似文献   

8.
&#  &#  &#  &#  &#  &#  &#  &#  &#  &#  &#  &# 《水生生物学报》2013,37(4):799-802
能源短缺和原油价格上涨是全球关注的问题之一, 生物柴油作为一种优质的替代液体燃料越来越受到重视。以油料作物、废食用油和动物脂肪为原料生产生物柴油已远远不能满足需求。相比而言, 产油微藻具有光合效率高、生物量大、油含量高、生长速率快、不受季节的限制及不占用耕地等优势15, 被认为是制备生物柴油燃料的更有潜力的原料。由于目前微藻生物柴油生产成本过高, 尚未获得商业化生产。    相似文献   

9.
脂肪酶催化制备生物柴油的研究进展   总被引:4,自引:0,他引:4  
生物柴油作为一种可再生的清洁能源,以其良好的环境效应受到越来越多的关注。酶法生产生物柴油具有化学催化法不可比拟的优越性,是工业化生产的发展方向。本文综述了利用固定化脂肪酶、游离酶、全细胞生物催化剂制备生物柴油的研究与应用进展,并探讨了我国生物柴油产业化发展的困境和对策。  相似文献   

10.
概要介绍了生物柴油的原料资源、特性、生产方法和国内外生物柴油发展概况,并分析了我国发展生物柴油的战略意义,旨在为生物教学提供参考资料。  相似文献   

11.
Male Sprague-Dawley rats were fed diets containing 20% (w/w) soya-bean oil, high-erucic acid rapeseed oil or low-erucic acid rapeseed oil for 0, 12 or 23 days. The type of fat present in the diet had no effect on the total phospholipid content of heart mitochondria (micrograms/mg of protein) but did influence the phospholipid class distribution. Rats fed high-erucic acid rapeseed oil for 12 or 23 days had significantly higher mitochondrial phosphatidylcholine content than rats fed soya-bean oil. Low-erucic acid rapeseed oil resulted in elevation of cardiac mitochondrial cardiolipin content after dietary treatment for 12 days. The results demonstrate in vivo that diet is a significant determinant of the phospholipid class content of subcellular membranes.  相似文献   

12.
Four different continuous process flowsheets for biodiesel production from virgin vegetable oil or waste cooking oil under alkaline or acidic conditions on a commercial scale were developed. Detailed operating conditions and equipment designs for each process were obtained. A technological assessment of these four processes was carried out to evaluate their technical benefits and limitations. Analysis showed that the alkali-catalyzed process using virgin vegetable oil as the raw material required the fewest and smallest process equipment units but at a higher raw material cost than the other processes. The use of waste cooking oil to produce biodiesel reduced the raw material cost. The acid-catalyzed process using waste cooking oil proved to be technically feasible with less complexity than the alkali-catalyzed process using waste cooking oil, thereby making it a competitive alternative to commercial biodiesel production by the alkali-catalyzed process.  相似文献   

13.
《Process Biochemistry》2007,42(11):1481-1485
Whole cell Rhizopus oryzae (R. oryzae) IFO4697 immobilized within biomass support particles (BSPs) was used as catalyst for biodiesel production in tert-butanol, in which the stability of the catalyst could be enhanced significantly. Different feedstocks (refined, crude and acidified rapeseed oils) were adopted further for biodiesel production in tert-butanol system and it was found that when acidified rapeseed oil was used as feedstocks, the reaction rate and final methyl ester (ME) yield were significantly higher than that of refined and crude rapeseed oil. Major differences among the aforementioned oils were found to be the contents of free fatty acid (FFA), water and phospholipids, which showed varied influences on whole cell mediated methanolysis for biodiesel production. The reaction rate increased with the increase of free fatty acid content in oils; water content had varied influence on reaction rate and biodiesel yield; using adsorbent to remove excessive water could increase biodiesel yield significantly (from 73 to 84%); it was also found interestingly that phospholipids contained in oils could increase the reaction rate to a certain extent.  相似文献   

14.
我国生物柴油原料来源的多样性探讨   总被引:2,自引:0,他引:2  
生物柴油作为一种重要的生物质能源已引起世人关注,其生产和应用已成为缓解能源危机的重要组成部分。本文分析了我国生物柴油生产原料多样性的必要性,阐述了可用于生物柴油生产的原料类型和应用开发现状,以及用于生产时所存在的问题,提出了相应的解决对策,最后对生物柴油的应用前景给予了展望。  相似文献   

15.
Zhang J  Jiang L 《Bioresource technology》2008,99(18):8995-8998
A technique to produce biodiesel from crude Zanthoxylum bungeanum seed oil (ZSO) with high free fatty acids (FFA) was developed. The acid value of ZSO was reduced to 1.16mg KOH/g from 45.51mg KOH/g by only one-step acid-catalyzed esterification with methanol-to-oil molar ratio 24:1, H(2)SO(4) 2%, temperature 60 degrees C and reaction time 80min, which was selected as optimum for the acid-catalyzed esterification. During the acid-catalyzed esterification, FFA was converted into fatty acid methyl esters, which was confirmed by (1)H NMR spectrum. Compared with the other two-step pretreatment procedure, this one-step pretreatment can reduce the production cost of ZSO biodiesel. Alkaline-catalyzed transesterification converted the pretreated ZSO into ZSO biodiesel. The yield of ZSO biodiesel was above 98% determined by (1)H NMR spectrum. This study supports the use of crude ZSO as a viable and valuable raw feedstock for biodiesel production.  相似文献   

16.
The use of organic matter such as vegetable oil to produce biodiesel fuel has been a practical technology for a number of years. However, the search for new technologies and raw materials for biodiesel fuel production has gained increased attention recently because of financial and environmental concerns. Of particular interest are raw materials that are not food-related. Microalgae have gained a great deal of attention as a potential biodiesel raw material because of their high growth rates and ability to accumulate oil, bind carbon dioxide, and remove contaminants from wastewater. This article is a literature review of technologies for biodiesel production from microalgae. The technologies relate to microalgal cultivation, microalgal growth enhancement to simultaneously increase biomass and reduce pollution, the preparation of microalgal biomass for biodiesel production, and biodiesel production itself.  相似文献   

17.
Shi H  Bao Z 《Bioresource technology》2008,99(18):9025-9028
A new method which coupled the two-phase solvent extraction (TSE) with the synthesis of biodiesel was studied. Investigations were carried out on transesterification of methanol with oil-hexane solution coming from TSE process in the presence of sodium hydroxide as the catalyst. Biodiesel (fatty acid methyl esters) were the products of transesterification. The influential factors of transesterification, such as reaction time, catalyst concentration, mole ratio of methanol to oil and reaction temperature were optimized. The results showed that the optimal reaction parameters were sodium hydroxide concentration 1.1% by weight of rapeseed oil, mole ratio of methanol to oil 9:1, reaction time 120 min, and reaction temperature 55-60 degrees C. Under these conditions, the TG conversion would rise up to 98.2%. Based on the new method, biodiesel production process could be simplified and the biodiesel cost could be reduced.  相似文献   

18.
The feedstocks for biodiesel production are predominantly from edible oils and the high cost of the feedstocks prevents its large scale application. In this study, we evaluated the oil extracted from Boettcherisca peregrine larvae (BPL) grown on solid organic wastes for biodiesel production. The oil contents detected in the BPL converted from swine manure, fermentation residue and the degreased food waste, were 21.7%, 19.5% and 31.1%, respectively. The acid value of the oil is 19.02 mg KOH/g requiring a two-step transesterification process. The optimized process of 12∶1 methanol/oil (mol/mol) with 1.5% H2SO4 reacted at 70°C for 120 min resulted in a 90.8% conversion rate of free fatty acid (FFA) by esterification, and a 92.3% conversion rate of triglycerides into esters by alkaline transesterification. Properties of the BPL oil-based biodiesel are within the specifications of ASTM D6751, suggesting that the solid organic waste-grown BPL could be a feasible non-food feedstock for biodiesel production.  相似文献   

19.
中国如何突破生物柴油产业的原料瓶颈   总被引:76,自引:4,他引:72  
因应我国日益严峻的能源资源、能源环境和能源安全形势,国家大力倡导发展可再生能源。生物柴油是最重要的液体可再生燃料之一,在能源性质方面可以完全替代化石柴油,而且还具有安全环保等其它优良特性。当前利用动植物油脂生产生物柴油,原料成本偏高,而且稳定、充足的油脂原料供应体系尚未形成。我国是油脂资源短缺国家,近年来植物油进口量逐年增加。同时,我国耕地资源匮乏,粮食供应形势不容乐观,扩大油料作物种植的潜力非常有限。但是,我国宜林地丰富,农林废弃生物质资源量巨大。综合以上因素,我国应重点发展木本油料植物规模化种植和推广,加快微生物油脂发酵技术创新和产业化进程;同时,利用植物遗传育种技术提高油料作物产量以及选择性发展不与粮争地的油料作物。依靠各方面的进步,发展创新的油脂生产技术,保障我国生物柴油产业和油脂化工行业健康发展。  相似文献   

20.
加快微生物油脂研究为生物柴油产业提供廉价原料   总被引:51,自引:5,他引:46  
当前国内外致力于发展生物柴油,因其性能优良,成为化石柴油的替代品。由于以植物油脂生产生物柴油原料成本占总成本的70%-85%,所以亟待开发廉价油脂资源。微生物油脂主要是微生物利用碳水化合物合成的甘油脂,其脂肪酸组成和植物油相近。产油微生物具有资源丰富、油脂含量高、碳源利用谱广等特点,开发潜力大。然而,目前微生物油脂生产成本偏高,研究工作仍以富含多不饱和脂肪酸的高附加值菌油为目标。随着现代分子生物学和生物化工技术的发展,对产油微生物菌种筛选、改良、代谢调控和发酵工程的研究日趋深入,将降低微生物油脂生产成本,为未来生物柴油产业提供廉价原料。  相似文献   

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