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Single temperature liquefaction process at different operating pHs to improve ethanol production from Indian rice and corn feedstock

机译:单温液化过程在不同的操作pH中,以改善印度大米和玉米原料的乙醇生产

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摘要

Conventional grain ethanol manufacturing is a high-temperature energy-intensive process comprising of multiple-unit operations when combined with lower ethanol recovery results in higher production cost. In liquefaction, jet cooking accounts for significant energy cost, while strong acid or base used for pH adjustment presents a safety hazard. A need is felt for sustainable ethanol manufacturing process that is less hazardous, consumes lower energy, and operates in a low pH range of 4.50-5.50. A single temperature liquefaction (STL) process that could efficiently operate at lower liquefaction temperature over a pH range of 4.50-5.50 was developed using rice and corn feedstock. Ethanol recovery witnessed at pH 4.5, 5.0, and 5.5 are 481.2 +/- 1.5, 492.4 +/- 1.5, and 493.6 +/- 1.5LMT(-1) rice, respectively. Similarly, ethanol recovery witnessed at pH 4.5, 5.0, and 5.5 are 404.6 +/- 1.3, 413.9 +/- 0.8, and 412.4 +/- 1.8LMT(-1) corn, respectively. The improvement in ethanol recovery is attributed to higher starch conversion by alpha-amylase even at pH as low as 4.50. Thus, the STL process operated at pH lower than 5.20 is poised to enhance sustainability by offering dual advantage of energy as well as chemical saving.
机译:常规的谷物乙醇制造是一种高温能量 - 密集型方法,包括多单元操作,当与较低的乙醇回收结果较高的生产成本时。在液化中,喷射烹饪占能量成本的显着性成本,而用于pH调节的强酸或碱度呈现安全危险。对于可持续的乙醇制造过程,含有较低危险的乙醇制造过程的需求,消耗较低的能量,并且在4.50-5.50的低pH范围内操作。使用米饭和玉米原料开发了在较低液化温度下有效地操作的单温液化(STL)工艺。在pH 4.5,5.0和5.5时见证的乙醇恢复分别为481.2 +/- 1.5,492.4 +/- 1.5和493.6 +/- 1.5mt(-1)米。类似地,在pH 4.5,5.0和5.5时目睹的乙醇恢复为404.6 +/- 1.3,413.9 +/- 0.8和412.4 +/- 1.8LMT(-1)玉米。乙醇回收的改善归因于α-淀粉酶的淀粉转化率甚至低至4.50的pH值。因此,在低于5.20的pH下操作的STL过程是通过提供能量的双重优点以及化学品来提高可持续性。

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