This application claims the priority benefit of Taiwan application serial no. 104141288, filed on Dec. 9, 2015. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of specification.
The disclosure relates to a drying apparatus and a drying method for removing water contained in an article.
Because the shelf life of food tends to be extended and the flavor of food is improved after drying, food drying technology is becoming very important in food processing. Food drying technology is divided into many categories, such as dry roasting, freeze-drying, low-temperature drying, etc. Other than food drying, drying technology may also be applied for drying clothes and medical material. When drying technology is applied for drying clothes, the moisture content of clothes is reduced to keep clothes dry and to prevent clothes from becoming moldy and stinky. When drying technology is applied for drying medical material, the moisture content of medical material is reduced so that bacterial growth is decreased.
A drying apparatus of the disclosure includes a gas flow channel, a first hollow fiber module, a second hollow fiber module, at least one gas driver and a control unit. The gas flow channel is used to accommodate an article and has a first terminal and a second terminal. The first hollow fiber module is disposed at the first terminal to adsorb water or to be electrified to desorb water. The second hollow fiber module is disposed at the second terminal to adsorb water or to be electrified to desorb water. The at least one gas driver is disposed in a gas flow path of the gas flow channel to drive the gas flowing into the gas flow channel through the first hollow fiber module and flowing out from the gas flow channel through the second hollow fiber module, or flowing into the gas flow channel through the second hollow fiber module and flowing out from the gas flow channel through the first hollow fiber module. The control unit is electrically coupled to the first hollow fiber module, the second hollow fiber module, and the at least one gas driver, so as to provide power to the first hollow fiber module, to provide power to the second hollow fiber module, and to control the at least one gas driver.
A drying method of the disclosure is adapted to remove water that is contained in an article accommodated inside a gas flow channel, a first hollow fiber module is disposed at a first terminal of the gas flow channel, a second hollow fiber module is disposed at a second terminal of the gas flow channel, at least one gas driver is disposed in a gas flow path of the gas flow channel, the first hollow fiber module, the second hollow fiber module, and the at least one gas driver are electrically coupled to a control unit. The drying method includes steps as follows. The control unit controls the at least one gas driver to drive a gas to flow into the gas flow channel through the first hollow fiber module such that the first hollow fiber module adsorbs water contained in the gas flowing into the gas flow channel. After the control unit controls the at least one gas driver to drive the gas to flow into the gas flow channel through the first hollow fiber module, the control unit controls the at least one gas driver to drive a gas to flow into the gas flow channel through the second hollow fiber module such that the second hollow fiber module adsorbs water contained in the gas flowing into the gas flow channel.
A drying method of the disclosure is adapted to remove water that is contained in an article accommodated inside a gas flow channel, a first hollow fiber module is disposed at a first terminal of the gas flow channel, a second hollow fiber module is disposed at a second terminal of the gas flow channel, at least one gas driver is disposed in a gas flow path of the gas flow channel, the first hollow fiber module, the second hollow fiber module, and the at least one gas driver are electrically coupled to a control unit. The drying method includes steps as follows. The control unit controls the at least one gas driver to drive a gas to flow into the gas flow channel through the first hollow fiber module, and the first hollow fiber module adsorbs water contained in the gas flowing into the gas flow channel. During the control unit controls the at least one gas driver to drive the gas to flow into the gas flow channel through the first hollow fiber module, the control unit provides power to the second hollow fiber module to desorb water contained in the second hollow fiber module.
In order to make the aforementioned and other features and advantages of the invention more comprehensible, embodiments accompanying figures are described in detail bellows.
The accompanying drawings are included to provide further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments and, together with the description, serve to explain the principles of the disclosure.
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The first hollow fiber module 121 and the second hollow fiber module 122 have conductive function and adsorption function. To be more specific, the first hollow fiber module 121 is formed by at least one hollow fiber, and the second follow fiber module 122 is formed by at least one hollow fiber. The hollow fiber has at least one hollow channel for the gas passing through. The hollow fiber includes at least one adsorption material and at least one conductive material. The adsorption material may adsorb water contained in the gas, and may even adsorb volatile organic compounds contained in the gas (hereinafter referred to as VOCs). Electric power is provided to the conductive material for heating the adsorption material, so as to desorb water that is contained therein, and even to desorb VOCs. When the conductive material is silver, it may also provide sterilization function.
It should be noted here, the composition and manufacturing method of the hollow fiber having conductivity and adsorption functions may refer to US patent publication number US20100035751 and US20140166571. Therefore, in the present embodiment, only configured location and operating method of the first hollow fiber module 121 and the second hollow fiber module 122 are described, and structure and manufacturing method of the first hollow fiber module 121 and the second hollow fiber module 122 are not repeated.
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Therefore, the control unit 140 may provide power to the first hollow fiber module 121 and the second hollow fiber module 122 to heat the first hollow fiber module 121 and the second hollow fiber module 122, so as to desorb the contained water. In addition, the control unit 140 may control the first gas driver 131 to drive the gas to flow from the first terminal 110a toward the second terminal 110b, or may control the second gas driver 132 to drive the gas to flow from the second terminal 110b toward the first terminal 110a. Therefore, when the adsorption function of the first hollow fiber module 121 is executed, the first gas driver 131 may drive the gas to flow from the first terminal 110a toward the second terminal 110b. Therefore, when the adsorption function of the second hollow fiber module 122 is executed, the second gas driver 132 may drive the gas to flow from the second terminal 110b toward the first terminal 110a. In addition, when the adsorption function of the first hollow fiber module 121 is executed, the second hollow fiber module 122 may be electrified to execute desorption function. When the adsorption function of the second hollow fiber module 122 is executed, the first hollow fiber module 121 may be electrically heated to execute desorption function. It should be noted here, after the first hollow fiber module 121 or the second hollow fiber module 122 is electrically heated to execute desorption function completely, the residual heat of the first hollow fiber module 121 or the second hollow fiber module 122 may also be carried back to inside the gas flow channel 110 by the gas flow, to assist evaporation rate of water, therefore, to save drying time.
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During the execution of step S201, that is, during the control unit 140 controls the gas driver (such as the first gas driver 131, the second gas driver 132, or both gas drivers at the same time) to drive the gas, step S202 may also be executed at the same time, the control unit 140 provides power to the second hollow fiber module 122 continuously for a desorption time to desorb water contained in the second hollow fiber module 122. In one embodiment, adsorption time of the first hollow fiber module 121 is, for example, thirty minutes, and desorption time of the second hollow fiber module 122 is, for instance, fifteen minutes, therefore, desorption time of the second hollow fiber module 122 is less than adsorption time of the first hollow fiber module 121. However, the disclosure is not limited thereto.
Subsequently, as depicted in step S203, the control unit 140 controls the gas driver (such as the first gas driver 131, the second gas driver 132, or both gas drivers at the same time) to drive the gas to flow into the gas flow channel 110 through the second hollow fiber module 122 continuously for an adsorption time, and the second hollow fiber module 122 adsorbs water contained in the gas flowing into the gas flow channel 110.
During the execution of step S203, that is, during the control unit 140 controls the gas driver (such as the first gas driver 131, the second gas driver 132, or both gas drivers at the same time) to drive the gas, step S204 may also be executed at the same time, the control unit 140 provides power to the first hollow fiber module 121 continuously for a desorption time to desorb water contained in the first hollow fiber module 121. In one embodiment, adsorption time of the second hollow fiber module 122 is, for example, thirty minutes, and desorption time of the first hollow fiber module 121 is, for instance, fifteen minutes, therefore, desorption time of the first hollow fiber module 121 is less than adsorption time of the second hollow fiber module 122. However, the disclosure is not limited thereto.
Subsequently, as depicted in S205, the control unit 140 determines whether a preset value is achieved, the preset value may be a preset number of cycles of executing steps S201 and S203, a preset value of humidity, or a preset drying time. When the preset value is not achieved, steps 201 and 203 that the first hollow fiber module 121 and the second hollow fiber module 122 adsorb water are alternately executed until the preset value is achieved. When the preset value is achieved, drying operation is stopped, and steps 201 and 203 that the first hollow fiber module 121 and the second hollow fiber module 122 adsorb water are stopped to be alternately executed.
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In summary, in this disclosure, the gas driver drives the gas through hollow fiber modules to adsorb water contained in the gas, so as to provide dry gas into the gas flow channel. Therefore, dry gas is supplied to remove water contained in the article. In this disclosure, two or more hollow fiber modules are provided, when one of the hollow fiber modules performs adsorption, another hollow fiber module may be electrically heated to desorb water contained therein. Therefore, when one hollow fiber module is switched to be operated, the original adsorption ability of another hollow fiber module may be restored. Two or more hollow fiber modules alternately operate adsorption and desorption to increase speed for drying the article. The hollow fiber module may use heating function independently and may be combined with the gas driver to generate the heated gas flow flowing into the gas flow channel, so as to execute roasting function.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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104141288 | Dec 2015 | TW | national |