Deivis Suárez-Rivero, Olga Marin-Mahecha, Jannet Ortiz-Aguilar, A. Puentes, Maikel Suarez-Rivero, T. Guzmán-Hernández
{"title":"利用电磁场技术提高玉米淀粉产量的研究","authors":"Deivis Suárez-Rivero, Olga Marin-Mahecha, Jannet Ortiz-Aguilar, A. Puentes, Maikel Suarez-Rivero, T. Guzmán-Hernández","doi":"10.3303/CET2187021","DOIUrl":null,"url":null,"abstract":"During the last decades, the production of fuels derived from agricultural products called agrofuels or biofuels has been promoted as an alternative to high oil prices and pollution due to carbon dioxide emanating from the primary sources found for that purpose. In this sense, corn is part of the cereals most used in the production of bioenergy, likewise, it is recognized as the most productive vegetable species since antiquity. In the previous context, this project evaluated the performance of starch, as well as the physical-chemical characteristics of corn grains that were subjected to electromagnetic fields. For this, the content of protein, fiber, fiber in acidic detergent, fiber in neutral detergent, fat and nitrogen was determined by official methods 08-01, 46-13 and 30-25 of the AACC. Alike, by optical microscopy, the starch granule was morphologically characterized, with an Accu-scope 3000-led-40 optical microscope with a digital camera Aptina CMOS Sensor of 14 megapixels. For the microscopic observation, suspensions of starch in excess of water were prepared, taking them to a slide, after, covered by cover-object and observed at 100, 400 and 1000 times. The starch yield was determined gravimetrically with soaking in ethyl ether and washing in 96 % ethanol in 40, 100 and 200 U.S. sieves to collect the precipitated starch eliminating the excess of the reagent by evaporation at room temperature. The field and laboratory experiments were carried out at the Fundacion Universitaria Agraria de Colombia – UNIAGRARIA, with Porva corn, harvesting until the grain matured (168 days after sowing). For this, it was taken into account that the seeds, before sowing, had been treated with electromagnetic fields at intensities of L1-23 µT, L2-70 µT and L3-118 µT; Electromagnetic field intensities or flux density (in microtesla, µT) were created artificially from the interconnection of electronic devices that carry electrical charges that act as energy sources; moreover, it was observed that with the application this force, the recovery (yield) in the starch doubled without affecting the characteristics of the compound. Finally, the statistical analyzes were performed in the statistical package Statgraphics 5.1Plus, developing a simple variance analysis and a multiple range test.","PeriodicalId":9695,"journal":{"name":"Chemical engineering transactions","volume":"44 3 1","pages":"121-126"},"PeriodicalIF":0.0000,"publicationDate":"2021-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Incorporation of Electromagnetic Fields as an Alternative Technology to Increase Starch Production in Corn Crops\",\"authors\":\"Deivis Suárez-Rivero, Olga Marin-Mahecha, Jannet Ortiz-Aguilar, A. Puentes, Maikel Suarez-Rivero, T. Guzmán-Hernández\",\"doi\":\"10.3303/CET2187021\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"During the last decades, the production of fuels derived from agricultural products called agrofuels or biofuels has been promoted as an alternative to high oil prices and pollution due to carbon dioxide emanating from the primary sources found for that purpose. In this sense, corn is part of the cereals most used in the production of bioenergy, likewise, it is recognized as the most productive vegetable species since antiquity. In the previous context, this project evaluated the performance of starch, as well as the physical-chemical characteristics of corn grains that were subjected to electromagnetic fields. For this, the content of protein, fiber, fiber in acidic detergent, fiber in neutral detergent, fat and nitrogen was determined by official methods 08-01, 46-13 and 30-25 of the AACC. Alike, by optical microscopy, the starch granule was morphologically characterized, with an Accu-scope 3000-led-40 optical microscope with a digital camera Aptina CMOS Sensor of 14 megapixels. For the microscopic observation, suspensions of starch in excess of water were prepared, taking them to a slide, after, covered by cover-object and observed at 100, 400 and 1000 times. The starch yield was determined gravimetrically with soaking in ethyl ether and washing in 96 % ethanol in 40, 100 and 200 U.S. sieves to collect the precipitated starch eliminating the excess of the reagent by evaporation at room temperature. The field and laboratory experiments were carried out at the Fundacion Universitaria Agraria de Colombia – UNIAGRARIA, with Porva corn, harvesting until the grain matured (168 days after sowing). For this, it was taken into account that the seeds, before sowing, had been treated with electromagnetic fields at intensities of L1-23 µT, L2-70 µT and L3-118 µT; Electromagnetic field intensities or flux density (in microtesla, µT) were created artificially from the interconnection of electronic devices that carry electrical charges that act as energy sources; moreover, it was observed that with the application this force, the recovery (yield) in the starch doubled without affecting the characteristics of the compound. 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Incorporation of Electromagnetic Fields as an Alternative Technology to Increase Starch Production in Corn Crops
During the last decades, the production of fuels derived from agricultural products called agrofuels or biofuels has been promoted as an alternative to high oil prices and pollution due to carbon dioxide emanating from the primary sources found for that purpose. In this sense, corn is part of the cereals most used in the production of bioenergy, likewise, it is recognized as the most productive vegetable species since antiquity. In the previous context, this project evaluated the performance of starch, as well as the physical-chemical characteristics of corn grains that were subjected to electromagnetic fields. For this, the content of protein, fiber, fiber in acidic detergent, fiber in neutral detergent, fat and nitrogen was determined by official methods 08-01, 46-13 and 30-25 of the AACC. Alike, by optical microscopy, the starch granule was morphologically characterized, with an Accu-scope 3000-led-40 optical microscope with a digital camera Aptina CMOS Sensor of 14 megapixels. For the microscopic observation, suspensions of starch in excess of water were prepared, taking them to a slide, after, covered by cover-object and observed at 100, 400 and 1000 times. The starch yield was determined gravimetrically with soaking in ethyl ether and washing in 96 % ethanol in 40, 100 and 200 U.S. sieves to collect the precipitated starch eliminating the excess of the reagent by evaporation at room temperature. The field and laboratory experiments were carried out at the Fundacion Universitaria Agraria de Colombia – UNIAGRARIA, with Porva corn, harvesting until the grain matured (168 days after sowing). For this, it was taken into account that the seeds, before sowing, had been treated with electromagnetic fields at intensities of L1-23 µT, L2-70 µT and L3-118 µT; Electromagnetic field intensities or flux density (in microtesla, µT) were created artificially from the interconnection of electronic devices that carry electrical charges that act as energy sources; moreover, it was observed that with the application this force, the recovery (yield) in the starch doubled without affecting the characteristics of the compound. Finally, the statistical analyzes were performed in the statistical package Statgraphics 5.1Plus, developing a simple variance analysis and a multiple range test.
期刊介绍:
Chemical Engineering Transactions (CET) aims to be a leading international journal for publication of original research and review articles in chemical, process, and environmental engineering. CET begin in 2002 as a vehicle for publication of high-quality papers in chemical engineering, connected with leading international conferences. In 2014, CET opened a new era as an internationally-recognised journal. Articles containing original research results, covering any aspect from molecular phenomena through to industrial case studies and design, with a strong influence of chemical engineering methodologies and ethos are particularly welcome. We encourage state-of-the-art contributions relating to the future of industrial processing, sustainable design, as well as transdisciplinary research that goes beyond the conventional bounds of chemical engineering. Short reviews on hot topics, emerging technologies, and other areas of high interest should highlight unsolved challenges and provide clear directions for future research. The journal publishes periodically with approximately 6 volumes per year. Core topic areas: -Batch processing- Biotechnology- Circular economy and integration- Environmental engineering- Fluid flow and fluid mechanics- Green materials and processing- Heat and mass transfer- Innovation engineering- Life cycle analysis and optimisation- Modelling and simulation- Operations and supply chain management- Particle technology- Process dynamics, flexibility, and control- Process integration and design- Process intensification and optimisation- Process safety- Product development- Reaction engineering- Renewable energy- Separation processes- Smart industry, city, and agriculture- Sustainability- Systems engineering- Thermodynamic- Waste minimisation, processing and management- Water and wastewater engineering