Academic literature on the topic 'Carrot oil'

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Journal articles on the topic "Carrot oil"

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Nodjeng, Megawati, Feti Fatimah, and Johnly A. Rorong. "Kualitas Virgin Coconut Oil (VCO) yang dibuat pada Metode Pemanasan Bertahap sebagai Minyak Goreng dengan Penambahan Wortel (Daucus carrota L.)." JURNAL ILMIAH SAINS 13, no. 2 (2013): 102. http://dx.doi.org/10.35799/jis.13.2.2013.3053.

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Kualitas Virgin Coconut Oil (VCO) yang dibuat pada Metode Pemanasan Bertahap sebagai Minyak Goreng dengan Penambahan Wortel (Daucus carrota L.) ABSTRAK Telah dilakukan penelitian untuk mengetahui kualitas VCO yang diolah dengan metode pemanasan dengan adanya penambahan wortel (VCO-wortel) sebagai minyak goreng serta perbandingan kualitasnnya dengan VCO tanpa penambahan wortel (VCO), minyak sawit komersial dan minyak kelapa komersial. Parameter kualitas yang akan di uji yaitu kadar air, asam lemak bebas, bobot jenis dan bilangan peroksida. Hasil penelitian menunjukan VCO-wortel dan minyak kelap
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Suaniti, N. M., M. Manurung, O. Ratnayani, and A. A. I. S. J. Dewi. "THE QUALITY OF COCONUT OIL PREPARED USING HEATING TECHNIQUE WITH ADDITION OF CARROT POWDER (Daucus carrota L) AS NATURAL ANTIOXIDANT." Jurnal Kimia 13, no. 1 (2019): 117. http://dx.doi.org/10.24843/jchem.2019.v13.i01.p17.

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Spoilage of coconut oil is indicated by rancidity caused by the oxidation and hydrolysis reactions. One of the efforts that can be carried out to inhibit the rancidity is by adding a natural antioxidant, such as carrot (Daucus carrota L) powder, into the coconut oil. This research aimed to find out the effect of the addition of carrot powder into the coconut oil on some parameters namely iodine number, peroxide number, FFA level, acid value and water content. The coconut oil was prepared by heating technique followed by the addition of carrot powder in the ratio of coconut oil:carrot of 100:1,
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Jasicka-Misiak, Izabela, Jacek Lipok, Ewa M. Nowakowska, Piotr P. Wieczorek, Piotr Młynarz, and Paweł Kafarski. "Antifungal Activity of the Carrot Seed Oil and its Major Sesquiterpene Compounds." Zeitschrift für Naturforschung C 59, no. 11-12 (2004): 791–96. http://dx.doi.org/10.1515/znc-2004-11-1205.

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Carrot seed oil is the source of the carotane sesquiterpenes carotol, daucol and β-caryophyllene. These sesquiterpenic allelochemicals were evaluated against Alternaria alternata isolated from the surface of carrot seeds cultivar Perfekcja, a variety widely distributed in horticultural practise in Poland. Alternaria alternata is one of the most popular phytotoxic fungi infesting the carrot plant. The strongest antifungal activity was observed for the main constituent of carrot seed oil, carotol, which inhibited the radial growth of fungi by 65% at the following concentration.
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Hamoudi-Belarbi, Latifa, Safia Hamoudi, Khaled Belkacemi, L’Hadi Nouri, Leila Bendifallah, and Mohamed Khodja. "Bioremediation of Polluted Soil Sites with Crude Oil Hydrocarbons Using Carrot Peel Waste." Environments 5, no. 11 (2018): 124. http://dx.doi.org/10.3390/environments5110124.

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The biostimulation potentials of carrot peel waste and carob kibbles for bioremediation of crude petroleum-oil polluted soil were investigated. Temperature, pH, moisture, total petroleum hydrocarbon (TPH), and changes in microbial counts during 45 days were monitored when 4 mL of carrot peel waste or carob kibbles media were added to 200 g of crude oil polluted soil samples. Gas chromatography-flame ionization detection (GC-FID) was used to compare hydrocarbon present in the crude oil polluted soil and in pure fuel, composition of crude oil polluted soil was analyzed by X-ray diffraction (XRD)
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Eddy, N. O., and A. S. Ekop. "Effect of Additives on Some Physical Parameters of Palm Oil." E-Journal of Chemistry 4, no. 3 (2007): 350–53. http://dx.doi.org/10.1155/2007/189696.

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Effect of additives (carrot, lime, paw paw and red dye) on the density, viscosity, moisture content and melting point of palm oil (PO) was investigated by dissolving 1g of each additive to 10 mL of pre-analysed oil in a beaker. The mixture was heated and their their moisture content, melting point, viscosity and density were determined. The result of the analysis shows that all the additives significantly increased the density, moisture content and viscosity (except lime) of the oil. Addition of paw paw and red dye also increased the melting point of the oil while the addition of carrot and li
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Chahal, K. K., P. Kaur, D. Kataria, and R. Kaur. "Carotol: A Sesquiterpenoid Isolated from Carrot Seed Oil." Asian Journal of Chemistry 28, no. 5 (2016): 1004–6. http://dx.doi.org/10.14233/ajchem.2016.19567.

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Alves-Silva, Jorge M., Mónica Zuzarte, Maria José Gonçalves, et al. "New Claims for Wild Carrot (Daucus carotasubsp.carota) Essential Oil." Evidence-Based Complementary and Alternative Medicine 2016 (2016): 1–10. http://dx.doi.org/10.1155/2016/9045196.

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The essential oil ofDaucus carotasubsp.carotafrom Portugal, with high amounts of geranyl acetate (29.0%),α-pinene (27.2%), and 11αH-himachal-4-en-1β-ol (9.2%), was assessed for its biological potential. The antimicrobial activity was evaluated against several Gram-positive and Gram-negative bacteria, yeasts, dermatophytes, andAspergillusstrains. The minimal inhibitory concentration (MIC) and minimal lethal concentration (MLC) were evaluated showing a significant activity towards Gram-positive bacteria (MIC = 0.32–0.64 μL/mL),Cryptococcus neoformans(0.16 μL/mL), and dermatophytes (0.32–0.64 μL/
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Ardyanti, Ni Komang Novy Trisna, Lutfi Suhendra, and G. P. Ganda Puta. "Pengaruh Ukuran Partikel dan Lama Maserasi terhadap Karakteristik Ekstrak Virgin Coconut Oil Wortel (Daucus carota L.) sebagai Pewarna Alami." JURNAL REKAYASA DAN MANAJEMEN AGROINDUSTRI 8, no. 3 (2020): 423. http://dx.doi.org/10.24843/jrma.2020.v08.i03.p11.

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Carrots are vegetable plants that contain ?-carotene, carotenoids, and vitamin A which can be extracted with organic (non-polar) solvents. Virgin Coconut Oil (VCO) is a non-polar solute suitable for dissolving natural dyes and has a dielectric constant of 2.82 × 10-18, so that VCO can be used as a solvent in carotenoid extraction in carrots. The purpose of this study were to determine the effect of particle size and maceration duration on the characteristics of carrot VCO extract as a natural dye and obtain the best particle size and maceration time to obtain carrot VCO extract as a natural dy
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Momuat, Lidya I., Meiske S. Sangi, and Ni Putu Purwati. "PENGARUH VCO MENGANDUNG EKSTRAK WORTEL TERHADAP PEROKSIDASI LIPID PLASMA." JURNAL ILMIAH SAINS 15, no. 1 (2011): 296. http://dx.doi.org/10.35799/jis.11.2.2011.222.

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PENGARUH VCO MENGANDUNG EKSTRAK WORTEL TERHADAP PEROKSIDASI LIPID PLASMA Lidya Irma Momuat1), Meiske S. Sangi1), Ni Putu Purwati2) 1)Program Studi Kimia FMIPA Universitas Sam Ratulangi, Manado 95115; 2)Alumni Program Studi Kimia FMIPA Universitas Sam Ratulangi, Manado 95115 ABSTRAK Penelitian ini bertujuan untuk mengukur tingkat oksidasi lipid dalam plasma darah tikus yang diberi pakan VCO mengandung ekstrak wortel. Tikus Wistar jantan pada penelitian ini dibagi menjadi empat kelompok, yaitu (I) pakan standar (kontrol), (II) 10% VCO tanpa ekstrak wortel, (III) 10% VCO mengandung ekstrak wortel
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Ranalli, Alfonso, Stefania Contento, Lucia Lucera, et al. "Characterization of Carrot Root Oil Arising from Supercritical Fluid Carbon Dioxide Extraction." Journal of Agricultural and Food Chemistry 52, no. 15 (2004): 4795–801. http://dx.doi.org/10.1021/jf049713h.

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Dissertations / Theses on the topic "Carrot oil"

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Romero, Elizabeth Ramos. "Pesquisa e desenvolvimento de emulsões à base de óleos vegetais (buriti, cenoura e urucum) e bases auto emulsionantes aditivadas de óleo de melaleuca e ácido salicílico para o tratamento de pele acneica." Universidade de São Paulo, 2017. http://www.teses.usp.br/teses/disponiveis/60/60137/tde-30062017-153914/.

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A acne é uma doença que afeta uma percentagem elevada do mundo de população, aspectos como o estresse, distúrbios hormonais, alimentação e poluição ambiental podem começar a desencadear esta doença que não só afeta a pele, mas também pode afetar a autoestima dos doentes ; em busca de alternativas que pode combater este problema e que seja benéfico para a pele impedindo efeitos nocivos, se começou a usar produtos de origem vegetal, a fim de reduzir dos produtos da acne como o excessivo ressecamento da pele; como uma nova alternativa, se trabalhou com óleos de buriti (Mauritia flexuosa), cenoura
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Wu, Xiqing. "Modelling carbon-gold-oil agglomeration." Thesis, Imperial College London, 2002. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.289917.

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Stewart, Robert Jamie. "Carbon dioxide enhanced oil recovery, offshore North Sea : carbon accounting, residual oil zones and CO2 storage security." Thesis, University of Edinburgh, 2016. http://hdl.handle.net/1842/16160.

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Carbon dioxide enhanced oil recovery (CO2EOR) is a proven and available technology used to produce incremental oil from depleted fields. Although this technology has been used successfully onshore in North America and Europe, projects have maximised oil recovery and not CO2 storage. While the majority of onshore CO2EOR projects to date have used CO2 from natural sources, CO2EOR is now more and more being considered as a storage option for captured anthropogenic CO2. In the North Sea the lack of low cost CO2, in large volumes, has meant that no EOR projects have utilised CO2 as an injection flu
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Theodorou, Konstantinos. "Carbon dioxide enhanced oil recovery from the Citronelle Oil Field and carbon sequestration in the Donovan sand, southwest Alabama." Thesis, The University of Alabama at Birmingham, 2013. http://pqdtopen.proquest.com/#viewpdf?dispub=3591675.

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<p> Capturing carbon dioxide (CO<sub>2</sub>) from stationary sources and injecting it into deep underground geologic formations has been identified as a viable method for reducing carbon emissions to the atmosphere. Sedimentary rocks, such as sandstones overlain by shales or evaporites, are the preferred formations because their morphology and structure provide pore space, and containment for the long term storage of CO<sub>2</sub>. Sandstone formations have also served as repositories to migrating hydrocarbons, and are the sites of many oil recovery operations. For many depleted oil reservoi
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Wright, Alfiya. "Economics of CCS CO2-EOR and permanent CO2 sequestration in the UKCS." Thesis, University of Aberdeen, 2018. http://digitool.abdn.ac.uk:80/webclient/DeliveryManager?pid=239233.

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Carbon Capture and Storage (CCS) technology could help reduce anthropogenic CO2 emissions to the atmosphere. So far, CCS has failed to attract government support in the UK due to high costs of implementation. The broad deployment of CO2-EOR could aid the development of CCS by providing additional revenue streams for investors. The success of the CO2- EOR in the United States has raised the question of whether this success could be replicated in the UKCS. This thesis answers these questions by introducing two distinct models, which analyse the similarities and differences between the two oil pr
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Ozkal, Sami Gokhan. "Supercritical Carbon Dioxide Extraction Of Apricot Kernel Oil." Phd thesis, METU, 2004. http://etd.lib.metu.edu.tr/upload/12604824/index.pdf.

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The purpose of this research was to determine the solubility of apricot (Prunus armeniaca L.) oil in supercritical carbon dioxide (SC-CO2), effects of parameters (particle size, solvent flow rate, pressure, temperature and co-solvent (ethanol) concentration) on extraction yield and to investigate the possibility of fractionation. Solubility, increased with pressure and increased with temperature above the crossover pressure, which was found between 200 and 300 bar, and decreased with temperature below the crossover pressure. Appropriate models were fitted to data. Extraction of apricot ker
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Sobers, Lorraine Elizabeth. "Injection design for simultaneous enhanced oil recovery and carbon storage in a heavy oil reservoir." Thesis, Imperial College London, 2012. http://hdl.handle.net/10044/1/9249.

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We have identified a CO2 and water injection strategy to recover moderately heavy oil and store carbon dioxide (CO2) simultaneously. We propose the use of counter-current injection of gas and water to improve reservoir sweep and trap CO2; water is injected in the upper portion of the reservoir and gas is injected in the lower portion. This process is referred to as water over gas injection or modified simultaneous water alternating gas injection (SWAG). This thesis is based on the results of quasi-validated compositional reservoir simulations in that exact matches were not obtained for the dis
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Pamukcu, Yusuf Ziya. "Simulating Oil Recovery During Co2 Sequestration Into A Mature Oil Reservoir." Master's thesis, METU, 2006. http://etd.lib.metu.edu.tr/upload/3/12607418/index.pdf.

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The continuous rising of anthropogenic emission into the atmosphere as a consequence of industrial growth is becoming uncontrollable, which causes heating up the atmosphere and changes in global climate. Therefore, CO2 emission becomes a big problem and key issue in environmental concerns. There are several options discussed for reducing the amount of CO2 emitted into the atmosphere. CO2 sequestration is one of these options, which involves the capture of CO2 from hydrocarbon emission sources, e.g. power plants, the injection and storage of CO2 into deep geological formations, e.g. depleted oi
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Hu, Ruien. "The rheology of crude oil and carbon dioxide mixtures." Thesis, Imperial College London, 2016. http://hdl.handle.net/10044/1/40417.

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The rheology of crude oil mixtures at equilibrium with carbon dioxide (CO2) was studied at elevated pressures and temperatures, similar to those found for oil reservoir conditions. The focus of the work presented in this thesis concerns the measurement of the rheological properties of CO2 saturated mixtures of crude oil. The rheology measurements were made using a high-pressure rheometer coupled to a fluid flow system designed and built in this project. The flow system comprised a mixing vessel and fluid flow loop that allowed the test fluid to be brought into equilibrium with CO2 by stirring
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Rasheed, Ali Suad. "Economics Of Carbon Dioxide Sequestration In A Mature Oil Field." Master's thesis, METU, 2008. http://etd.lib.metu.edu.tr/upload/12610177/index.pdf.

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To meet the goal of atmospheric stabilization of carbon dioxide (CO2 ) levels a technological transformation should occur in the energy sector. One strategy to achieve this is carbon sequestration. Carbon dioxide can be captured from industrial sources and sequestered underground into depleted oil and gas reservoirs. CO2 injected into geological formations, such as mature oil reservoirs can be effectively trapped by hydrodynamical (structural), solution, residual (capillary) and mineral trapping methods. In this work, a case study was conducted using CMG-STARS software for CO2 sequestration
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Books on the topic "Carrot oil"

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Weaned on carrot juice, or, How I survived the Nazis and landed at the Golden Gate via the tin mines of Bolivia and the oil fields of Arkansas. Advance Books, 2003.

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Carroll, John J. Acid gas injection and carbon dioxide sequestration. Wiley-Scrivener, 2010.

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Lapointe, Daphne D. Assessment of the potential for carbon dioxide sequestration with enhanced oil recovery in Nevada. University of Nevada, Reno, Nevada Bureau of Mines and Geology, 2007.

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Lapointe, Daphne D. Assessment of the potential for carbon dioxide sequestration with enhanced oil recovery in Nevada. University of Nevada, Reno, Nevada Bureau of Mines and Geology, 2007.

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Timothy, Mitchell. Carbon democracy: Political power in the age of oil. Verso, 2013.

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Challenged by carbon: The oil industry and climate change. Cambridge University Press, 2010.

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Acid gas injection and carbon dioxide sequestration. Wiley, 2010.

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Aleklett, Kjell. Peeking at Peak Oil. Springer New York, 2012.

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Office, United States Bureau of Land Management Wyoming State. Draft environmental impact statement for the Amoco carbon dioxide projects. Bureau of Land Management, Wyoming State Office, 1988.

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The carbon war: Dispatches from the end of the oil century. Allen Lane, 1999.

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Book chapters on the topic "Carrot oil"

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Krist, Sabine. "Carrot Oil." In Vegetable Fats and Oils. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-30314-3_28.

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Dutta, Projjal K. "Taking the Car out of Carbon." In Transport Beyond Oil. Island Press/Center for Resource Economics, 2013. http://dx.doi.org/10.5822/978-1-59726-242-2_8.

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Kedir, Miftah F. "Pyrolysis Bio-oil and Bio-char Production from Firewood Tree Species for Energy and Carbon Storage in Rural Wooden Houses of Southern Ethiopia." In African Handbook of Climate Change Adaptation. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-45106-6_183.

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AbstractThe need for emission reduction for climate management had triggered the application of pyrolysis technology on firewood that yield bio-oil, bio-char, and syngas. The purpose of present study was to select the best bio-oil and bio-char producing plants from 17 firewood tree species and to quantify the amount of carbon storage. A dried and 1 mm sieved sample of 150 g biomass of each species was pyrolyzed in assembled setup of tubular furnace using standard laboratory techniques. The bio-oil and bio-char yields were 21.1–42.87% (w/w) and 23.23–36.40% (w/w), respectively. The bio-oil yield of Acacia seyal, Dodonea angustifolia, Euclea schimperi, Eucalyptus globulus, Casuarina equisetifolia, and Grevillea robusta were over 36% (w/w), which make the total yield of bio-oil and bio-char over 62% (w/w) of the biomass samples instead of the 12% conversion efficiency in traditional carbonization. The calorific value of firewood was 16.31–19.66 MJ kg–1 and bio-oil was 23.3–33.37 MJ kg–1. The use of bio-oil for household energy and bio-char for carbon storage reduced end use emission by 71.48–118.06%, which could increase adaptation to climate change in comparison to open stove firewood by using clean fuel and reducing indoor pollution.
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Laube, Steve, Steve Monthey, and Meng-Jiao Wang. "Compounding with Carbon Black and Oil." In Rubber Technology. Carl Hanser Verlag GmbH & Co. KG, 2020. http://dx.doi.org/10.3139/9781569906163.012.

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Laube, Steve, Steve Monthey, and Meng-Jiao Wang. "Compounding with Carbon Black and Oil." In Rubber Technology. Carl Hanser Verlag GmbH & Co. KG, 2009. http://dx.doi.org/10.3139/9783446439733.012.

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Ettehadtavakkol, Amin. "Storage of CO2 in depleted/producing oil reservoirs." In Geologic Carbon Sequestration. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-27019-7_10.

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Holubnyak, Yevhen I., Blaise A. F. Mibeck, Jordan M. Bremer, et al. "Geochemical Modeling of Huff ‘N’ Puff Oil Recovery With CO2at the Northwest Mcgregor Oil Field." In Carbon Dioxide Sequestration and Related Technologies. John Wiley & Sons, Inc., 2011. http://dx.doi.org/10.1002/9781118175552.ch21.

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Coppella, Steven J., and Paul Barton. "Supercritical Carbon Dioxide Extraction of Lemon Oil." In ACS Symposium Series. American Chemical Society, 1987. http://dx.doi.org/10.1021/bk-1987-0329.ch016.

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Ushakova, Elena, Liliya Soloveva, and Andrey Ushakov. "Comparison Methods of Carbon Oil Sorbents Hardening." In Sustainable Development of Water and Environment. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-75278-1_25.

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Burns, Darryl. "Enhanced Oil Recovery Project: Dunvegan C Pool." In Carbon Dioxide Sequestration and Related Technologies. John Wiley & Sons, Inc., 2011. http://dx.doi.org/10.1002/9781118175552.ch15.

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Conference papers on the topic "Carrot oil"

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Wang, Xinwei, Huan Liu, Jing Wei, and Zhongsu Ma. "Effects of oregano oil, carvacrol, cinnamaldehyde, and citral on antimicrobial, mechanical and barrier properties of carrot puree films." In International Conference on Photonics and Image in Agricultural Engineering (PIAGENG 2010), edited by Honghua Tan. SPIE, 2011. http://dx.doi.org/10.1117/12.886665.

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Wang, Xin-Wei, Long-Fei Wang, and Ren-Yong Zhao. "Effects of Oregano Oil, Carvacrol, Cinnamaldehyde, and Citral on Antimicrobial, Antioxidant, Mechanical and Barrier Properties of Carrot Puree Films." In 2015 International Conference on Medicine and Biopharmaceutical. WORLD SCIENTIFIC, 2016. http://dx.doi.org/10.1142/9789814719810_0177.

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Amjad, Bilal, Dawood Munawar, and Muhammad Umar Javeed. "EOR Prospects for a Mature Oil Reservoir in an Oil Field of Potwar Region, Pakistan." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2012. http://dx.doi.org/10.7122/151422-ms.

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Sun, Shasha, Ligen Tang, Kai Guo, and Fengjuan Bai. "Reduce CO2-Oil Miscible Pressure By Injection Man-Made Miscible-Slug to Enhance Oil Recovery." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2015. http://dx.doi.org/10.7122/439377-ms.

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Liao, Xinwei, Chun-Ning Gao, Pingchang Wu, Kun Su, and Yangnan Shangguan. "Assessment of CO2 EOR and Its Geo-Storage Potential in Mature Oil Reservoirs, Changqing Oil Field, China." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2012. http://dx.doi.org/10.7122/150031-ms.

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Pu, Hui, and Yinghui Li. "CO2 EOR Mechanisms in Bakken Shale Oil Reservoirs." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2015. http://dx.doi.org/10.7122/439769-ms.

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Gunda, Dhiraj, William Ampomah, Reid Grigg, and Robert Balch. "Reservoir Fluid Characterization for Miscible Enhanced Oil Recovery." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2015. http://dx.doi.org/10.7122/440176-ms.

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Alfarge, Dheiaa, Mingzhen Wei, and Baojun Bai. "Comparative Study for CO2-EOR and Natural Gases Injection-Techniques for Improving Oil Recovery in Unconventional Oil Reservoirs." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2017. http://dx.doi.org/10.7122/485175-ms.

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Wang, Shuoshi, Mohannad Kadhum, Qingwang Yuan, Bor-Jier Shiau, and Jeffrey H. Harwell. "Carbon Dioxide in Situ Generation for Enhanced Oil Recovery." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2017. http://dx.doi.org/10.7122/486365-ms.

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Ampomah, William, Robert S. Balch, Reid B. Grigg, Zhenxue Dai, and Feng Pan. "Compositional Simulation of CO2 Storage Capacity in Depleted Oil Reservoirs." In Carbon Management Technology Conference. Carbon Management Technology Conference, 2015. http://dx.doi.org/10.7122/439476-ms.

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Reports on the topic "Carrot oil"

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Ward, Colin, and Wolfgang Heidug. Enhanced Oil Recovery and CO2 Storage Potential Outside North America: An Economic Assessment. King Abdullah Petroleum Studies and Research Center, 2018. http://dx.doi.org/10.30573/ks--2018-dp27.

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Storing carbon dioxide (CO2 ) in oil reservoirs as part of CO2 -based enhanced oil recovery (CO2 -EOR) can be a cost-effective solution to reduce emissions into the atmosphere. In this paper, we analyze the economics of this option in order to estimate the amount of CO2 that could be profitably stored in different regions of the world. We consider situations in which the CO2 -EOR operator either purchases the CO2 supplied or is paid for its storage. Building upon extensive data sets concerning the characteristics and location of oil reservoirs and emission sources, the paper focuses on opportu
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Patton, J., and S. Holbrook. Adsorption properties of carbon dioxide enchanced oil recovery additives. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/7014605.

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Skone, Timothy J., and Matthew Jamieson. Carbon Dioxide Enhanced Oil Recovery Life Cycle (CELiC) Model. Office of Scientific and Technical Information (OSTI), 2019. http://dx.doi.org/10.2172/1542446.

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Leach, Andrew, Charles Mason, and Klaas van't Veld. Co-optimization of Enhanced Oil Recovery and Carbon Sequestration. National Bureau of Economic Research, 2009. http://dx.doi.org/10.3386/w15035.

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Ryan, David, Dan Golomb, Guang Shi, et al. Carbon Dioxide-Water Emulsions for Enhanced Oil Recovery and Permanent Sequestration of Carbon Dioxide. Office of Scientific and Technical Information (OSTI), 2011. http://dx.doi.org/10.2172/1097095.

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Mehlman, Stewart. Carbon Capture and Sequestration (via Enhanced Oil Recovery) from a Hydrogen Production Facility in an Oil Refinery. Office of Scientific and Technical Information (OSTI), 2010. http://dx.doi.org/10.2172/1014021.

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Brian McPherson. Integrated Mid-Continent Carbon Capture, Sequestration & Enhanced Oil Recovery Project. Office of Scientific and Technical Information (OSTI), 2010. http://dx.doi.org/10.2172/992987.

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Carroll, S. Carbon Sequestration Capacity in Oil Shale Production Zones, CRADA No. TC02131.0. Office of Scientific and Technical Information (OSTI), 2011. http://dx.doi.org/10.2172/1038915.

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Peck, H., and I. Gomez. Carbon Sequestration Capacity in Oil Shale Production Zones, CRADA No. TC02131.0. Office of Scientific and Technical Information (OSTI), 2021. http://dx.doi.org/10.2172/1772691.

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Robert Weber and Norman Whitton. Recovery Act Production of Algal BioCrude Oil from Cement Plant Carbon Dioxide. Office of Scientific and Technical Information (OSTI), 2010. http://dx.doi.org/10.2172/1010966.

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