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81.
82.
目的 麦胚孵育过程中蛋白酶将蛋白质水解成肽和氨基酸,多肽具有明确的生理活性和营养调节作用。本研究以麦胚为试验原料,采用微波辅助预处理的方法,研究孵育的温度、时间、pH及料液比4种因素对孵育后的蛋白酶活力及多肽含量的影响。 方法 通过单因素和响应曲面试验进行工艺条件优化。 结果 与未进行微波辅助预处理的样品相比,微波辅助处理(600 W, 10 s)能显著提高孵育后样品中的蛋白酶酶活力(约9.4倍)和肽含量(约3.1倍)。经过微波辅助处理后,孵育温度为51.5℃、pH为4.0、时间为6.33 h、料液比为1:7时,蛋白酶活力达最高为3826.24 U/g;孵育温度为45.0 ℃、pH为4.8、时间为8 h、料液比为1:7时,肽含量达最高为262.63 mg/g。 结论 微波辅助处理能有效的激活麦胚孵育液中的内源性蛋白酶活性,促进蛋白水解反应,显著提高孵育后的肽含量。该研究结果为麦胚多肽的制备新工艺开发提供了研究基础。 相似文献
84.
Amino acid modified polyaspartic acids were evaluated as calcium-scale inhibitors. Feasibility of scale inhibition experiments was analyzed by molecular dynamics simulation and Gaussian optimization, and the scale inhibition mechanism was theoretically analyzed. Scale inhibition performance was studied by scanning electron microscopy, X-ray diffraction, X-ray photoelectron spectroscopy, static scale inhibition experiments, and electrochemical performance testing, which provided an experimental basis for the molecular dynamics simulation. The experimental results showed that Arg-SA-PASP has better scale inhibition and corrosion inhibition performance than His-SA-PASP. The scale inhibition effect increased with increasing concentration. Electrochemical tests indicated that Arg-SA-PASP is an excellent scale and corrosion inhibitor. 相似文献
85.
Fluorescence‐Activated Cell Sorters: Standing Surface Acoustic Wave (SSAW)‐Based Fluorescence‐Activated Cell Sorter (Small 40/2018)
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86.
Polymer‐grafted inorganic particles (PGIPs) are attractive building blocks for numerous chemical and material applications. Surface‐initiated controlled radical polymerization (SI‐CRP) is the most feasible method to fabricate PGIPs. However, a conventional in‐batch reaction still suffers from several disadvantages, including time‐consuming purification processes, low grafting efficiency, and possible gelation problems. Herein, a facile method is demonstrated to synthesize block copolymer–grafted inorganic particles, that is, poly(poly(ethylene glycol) methyl ether methacrylate) (PPEGMEMA)‐b‐poly(N‐isopropylacrylamide) (PNIPAM)–grafted silica micro‐particles using continuous flow chemistry in an environmentally friendly aqueous media. Immobilizing the chain transfer agent and subsequent SI‐CRP can be accomplished sequentially in a continuous flow system, avoiding multi‐step purification processes in between. The chain length (MW) of the grafted polymers is tunable by adjusting the flow time or monomer concentration, and the narrower molar mass dispersity (Ð < 1.4) of the grafted polymers reveals the uniform polymer chains on the particles. Moreover, compared with the in‐batch reaction at the same condition, the continuous system also suppresses possible gelation problems. 相似文献
87.
为了研究循环流化床(CFB)锅炉燃用无烟煤时床温及选择性非催化还原(SNCR)脱硝对于NO和N2O排放的影响,在1 MW CFB试验装置上开展了试验研究。结果表明:床温由880 ℃提高到970 ℃,NO排放质量浓度由119.5 mg/m3上升到226.0 mg/m3,N2O排放质量浓度由216.0 mg/m3降低到102.2 mg/m3;在氨氮摩尔比(NSR)为0~3.7之间,随着NSR的提高,脱硝效率从0上升到50.72%;进一步提高NSR到5.2,脱硝效率升至53.61%,增加较为缓慢;随着NSR从0提高到1.7,N2O排放质量浓度由84.3 mg/m3上升至118.3 mg/m3,增长较为缓慢;进一步提高NSR至2.0,N2O排放质量浓度上升至187.7 mg/m3,增长速度提高;继续提高NSR至5.2,N2O排放质量浓度上升至381.4 mg/m3;CFB锅炉采用以尿素为还原剂的SNCR脱硝工艺时,单纯通过加大NSR来提高脱硝效率不仅效果有限,过量喷入的还原剂会造成N2O排放量的显著提高。 相似文献
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90.
Xueye Chen Yue Tian 《Journal of chemical technology and biotechnology (Oxford, Oxfordshire : 1986)》2020,95(3):806-812
Since the beginning of the 21st Century, the development of microfluidic chip technology has been very rapid and has attracted the attention of more and more scholars. As an important part of the microfluidic chip, the performance of the micromixer is critical. The fractal structure in the microchannels helps to improve the mixing performance of the micromixer and improve the mixing efficiency of the micromixer. The research results of other scholars are of great significance to the research of the present paper, which mainly studies the effect of changing the baffle state on the mixing efficiency of the micromixer based on the Koch fractal principle. Through simulation analysis, it was found that the mixing efficiency of the baffles distributed on both sides of the microchannel was higher than the mixing efficiency of the baffles distributed on the microchannel side. When the distance between adjacent baffles was divided into 0.15, 0.25 and 0.35 mm, simulated data suggested that the baffle distance of 0.15 mm was best. Increasing the number of baffles from six to eight groups increased the mixing path of the fluid in the microchannel and improved mixing efficiency. A comparison of mixing efficiencies of the 0°, 15° and 30° baffle angles revealed that very significant improvement in mixing efficiency was obtained at 30°. © 2019 Society of Chemical Industry 相似文献