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<h2> 2). Remove protein.</h2> | <h2> 2). Remove protein.</h2> | ||
<p style="color:black;font-size:35px;"> | <p style="color:black;font-size:35px;"> | ||
− | Overview<br><br> | + | <b>Overview</b><br><br> |
In order to obtain highly purified chitin from crystalized lobster shells, it is necessary to remove the protein inside the shells, which can ensure high efficiency of transformation from chitin to chitosan. | In order to obtain highly purified chitin from crystalized lobster shells, it is necessary to remove the protein inside the shells, which can ensure high efficiency of transformation from chitin to chitosan. | ||
− | We have designed a set of biological reaction tanks to allow the reaction take place efficiently in the most time and energy saving method. | + | We have designed a set of biological reaction tanks to allow the reaction take place efficiently in the most time and energy saving method.<br><br> |
− | Reaction Theory<br><br> | + | <b>Reaction Theory</b><br><br> |
The whole process of the reaction takes place inside three adjacent reaction tanks A, B, and C. According to experiment data and relevant scientific journals, the removal of protein inside crabs and lobsters’ shells requires continuous reaction with alkali. It is documented that the alkali solution needs to be replaced after a 24-hour reaction to ensure producibility and efficiency, after which the lobster shells still need to be in contact with newly added solution for complete 12 hours without heating or 4 hours with heating to undergo the complete removal of protein. | The whole process of the reaction takes place inside three adjacent reaction tanks A, B, and C. According to experiment data and relevant scientific journals, the removal of protein inside crabs and lobsters’ shells requires continuous reaction with alkali. It is documented that the alkali solution needs to be replaced after a 24-hour reaction to ensure producibility and efficiency, after which the lobster shells still need to be in contact with newly added solution for complete 12 hours without heating or 4 hours with heating to undergo the complete removal of protein. | ||
It is applied in industrial production that the solid sediment abstracted from the remains of the reaction can be used as fertilizers, while the liquid supernatant of the deposited reaction system can be reused for another round of reaction with lobster shells. | It is applied in industrial production that the solid sediment abstracted from the remains of the reaction can be used as fertilizers, while the liquid supernatant of the deposited reaction system can be reused for another round of reaction with lobster shells. | ||
− | By analyzing and synthesizing useful information, we gained inspiration and successfully designed a new reaction system that significantly reduces total reaction time and better utilizes the reaction tanks as well as the reactants. | + | By analyzing and synthesizing useful information, we gained inspiration and successfully designed a new reaction system that significantly reduces total reaction time and better utilizes the reaction tanks as well as the reactants. <br><br> |
− | + | <b>Mechanical Design</b><br><br> | |
As shown in the figure above, the reaction tank is composed of chamber A, B, and C in which lobster shells can fully get in contact with sodium hydroxide solution. All chambers are equipped with timers and transport units while one of the chambers is equipped with a heater. <br> | As shown in the figure above, the reaction tank is composed of chamber A, B, and C in which lobster shells can fully get in contact with sodium hydroxide solution. All chambers are equipped with timers and transport units while one of the chambers is equipped with a heater. <br> |
Revision as of 01:24, 18 October 2018