The present invention relates to an apparatus for removing foreign substances in a container, and particularly, to an apparatus for removing foreign substances by inputting a gas into a container while conveying the container in order to remove foreign substances in the container.
In general, a method of removing foreign substances by inputting a gas into a cylindrical container from a blower nozzle has been used to remove foreign substances in the container.
The cylindrical container is conveyed by a conveying device, and a strong flow of the gas is inputted into the container when an opening portion of the container passes above blower nozzles installed along a conveyance path of the container, such that foreign substances attached to the inner wall of the container may be discharged to the outside.
However, if the blower nozzles are disposed along a center line of the container to be conveyed, there is a problem in that a flow of the gas inputted into the container and a flow of the gas discharged from the container collide with each other, which causes the stagnation of the gas flow and the deterioration in performance of removing foreign substances.
An apparatus for removing foreign substances in a container according to the present invention has been made to solve the above-mentioned problems and effectively remove foreign substances in a container by changing an arrangement of nozzles and reducing stagnation of a gas flow in the container.
An apparatus for removing foreign substances in a container according to an exemplary embodiment of the present invention includes: a conveying device configured to convey a container having an opening portion, and a first nozzle configured to eject a gas toward the opening portion of the container, in which the first nozzle is disposed to be spaced, toward one side, at a first spacing distance, apart from an imaginary vertical surface that runs through a center of the container and extends in a conveyance direction in which the container is conveyed.
According to the apparatus for removing foreign substances in a container according to the present invention, the nozzles are disposed to be spaced, at predetermined intervals, apart from a center line of the container to be conveyed, and thus the stagnation of the flow of the gas to be inputted into the container is reduced, thereby effectively removing foreign substances in the container.
1: Apparatus for removing foreign substances in container
10: Conveying device
20: Nozzle set
21: First nozzle
22: Second nozzle
An apparatus for removing foreign substances in a container according to an exemplary embodiment of the present invention includes a conveying device configured to convey a container having an opening portion, and a first nozzle configured to eject a gas toward the opening portion of the container, in which the first nozzle is disposed to be spaced, toward one side, at a first spacing distance, apart from an imaginary vertical surface that runs through a center of the container and extends in a conveyance direction in which the container is conveyed.
In the present exemplary embodiment, the apparatus may include a second nozzle configured to eject a gas toward the opening portion of the container and disposed to be spaced apart from the first nozzle in the conveyance direction in which the container is conveyed, in which the second nozzle is disposed to be spaced, toward the other side, at a second spacing distance, apart from the imaginary vertical surface.
In the present exemplary embodiment, the opening portion of the container may be disposed to be directed downward, and the first nozzle may be disposed below the container and eject the gas toward the opening portion of the container.
In the present exemplary embodiment, the container may have a cylindrical shape, and at least one of the first spacing distance and the second spacing distance may be ⅘ of a radius of the container.
In the present exemplary embodiment, the first spacing distance and the second spacing distance may be equal to each other.
In the present exemplary embodiment, a diameter of the first nozzle may be smaller than the first spacing distance, and a diameter of the second nozzle may be smaller than the second spacing distance.
In the present exemplary embodiment, the conveying device may include a support member configured to auxiliarily support a coupled state between the conveying device and the container in order to prevent the container from being separated from the conveying device by a pressure of the gas ejected from the first nozzle.
In the present exemplary embodiment, the first nozzle and the second nozzle may be configured as one nozzle set, and multiple nozzle sets may be disposed in the conveyance direction.
In another exemplary embodiment of the present invention, the nozzle sets may include a first set and a second set, the first spacing distance of the first nozzle of the first set and the second spacing distance of the second nozzle of the first set may be different from each other, the first spacing distance of the first nozzle of the second set may be equal to the second spacing distance of the second nozzle of the first set, and the second spacing distance of the second nozzle of the second set may be equal to the first spacing distance of the first nozzle of the first set.
The present invention will be apparent with reference to exemplary embodiments to be described below in detail together with the accompanying drawings. However, the present invention is not limited to the exemplary embodiments disclosed herein but will be implemented in various forms. The exemplary embodiments of the present invention are provided so that the present invention is completely disclosed, and a person with ordinary skill in the art can fully understand the scope of the present invention. The present invention will be defined only by the scope of the appended claims. Meanwhile, the terms used in the present specification are for explaining the exemplary embodiments, not for limiting the present invention. Unless particularly stated otherwise in the present specification, a singular form also includes a plural form. The terms such as “comprises (includes)” and/or “comprising (including)” used in the specification do not exclude presence or addition of one or more other constituent elements, steps, operations, and/or elements, in addition to the mentioned constituent elements, steps, operations, and/or elements. The terms such as “first” and “second” may be used to describe various constituent elements, but the constituent elements should not be limited by the terms. These terms are used only to distinguish one constituent element from another constituent element.
Hereinafter, specific exemplary embodiments of the present invention will be described in detail with reference to the accompanying drawings.
Referring to
The apparatus 1 for removing foreign substances in a container may include a conveying device 10, a first nozzle 21, and a second nozzle 22.
The conveying device 10 may be a device configured to convey the container. The conveying device 10 may convey the container with the opening portion directed downward. In order to prevent the container from being separated from the conveying device 10 by a pressure of a gas ejected from the first nozzle 21, the conveying device 10 may include a support member (not illustrated) configured to auxiliarily support the coupled state between the conveying device 10 and the container. For example, the container is picked up by a clamp (not illustrated) and coupled to the conveying device, and the support member having a frame shape corresponding to an outer diameter of the container is provided around a part where the container is coupled, thereby preventing the container from swaying or being separated.
The first nozzle 21 may be a nozzle configured to eject the gas toward the opening portion of the container. A flow velocity of the gas measured at an end of the first nozzle 21 may be 50 m/s. The first nozzle 21 may be disposed below the container in order to eject the gas into the container conveyed with the opening portion directed downward.
The first nozzle 21 extends in a conveyance direction and may be disposed to be spaced apart from an imaginary vertical surface A, that runs through a center of the container, at a first spacing distance d1 toward one side. The first spacing distance d1 may be a distance from the imaginary vertical surface A to a center of the nozzle having a circular end. For example, the first spacing distance d1 may be 6.8 mm.
If the center of the nozzle (not illustrated) is placed in a movement path of the center of the container, a gas flow stagnates in the container when the container is moving, such that there may be a section from which the foreign substances are not removed. For example, the time required for the container to pass a section in which the nozzle is positioned may be approximately 2.77 seconds. In this case, the gas flow may stagnate in the container for about 1 second. In the present invention, the first nozzle 21 may be disposed to be spaced, toward one side, by 6.8 mm, apart from the imaginary vertical surface A provided on the movement path of the center of the container, such that the time required for the container to pass the nozzle is 1.77 seconds.
The second nozzle 22 may be a nozzle configured to eject a gas toward the opening portion of the container. The second nozzle 22 is disposed to be spaced apart from the first nozzle 21 in the conveyance direction in which the container is conveyed. The second nozzle 22 may be spaced apart from the imaginary vertical surface A toward the other side at a second spacing distance d2. For example, the second spacing distance may be 6.8 mm. The second nozzle 22 may be disposed below the container in order to eject the gas into the container conveyed with the opening portion directed downward.
At least one of the first spacing distance d1 and the second spacing distance d2 may be ⅘ of a radius (r) of the container. Therefore, gas flows may be formed so that the path of the gas inputted into the container and the path of the gas discharged from the container do not overlap each other. In addition, the first spacing distance d1 and the second spacing distance d2 may be equal to each other.
A diameter of the first nozzle 21 may be smaller than the first spacing distance d1, and a diameter of the second nozzle 22 may be smaller than the second spacing distance d2. As an example, when each of the first spacing distance d1 and the second spacing distance d2 are 6.8 mm, the diameter of each of the first nozzle 21 and the second nozzle 22 may be 3.2 mm.
The first nozzle 21 and the second nozzle 22 are configured as one nozzle set 20, and the multiple nozzle sets may be disposed in the conveyance direction. As an example, three nozzle sets 20 may be provided. In the present exemplary embodiment, it was proven that 60.0% of foreign substances was removed when the single nozzle set 20 was provided, and 91.3% of foreign substances was removed when the three nozzle sets 20 were provided.
Hereinafter, experimental results of numerical analyses for the apparatus 1 for removing foreign substances in a container according to the exemplary embodiment of the present invention will be described.
Referring to
In contrast, it can be seen that according to the apparatus 1 for removing foreign substances in a container according to the exemplary embodiment of the present invention, the average flow velocity to the volume is maintained as 7 m/s even within the time section from 0.2 sec to 0.3 sec. Therefore, it can be seen that the stagnation of the gas flow in the container is reduced (see
Further, referring to
In contrast, it can be seen that the shear stress of the inner wall of the container is maintained as 1 Pa or more in the exemplary embodiment. Therefore, it can be seen that the foreign substances attached to the inner wall of the container are easily removed.
In the comparative example, the shape e′ of a flow of a gas, which extends from an end of a nozzle 21′ and is inputted into a container c, may represent a portion where a flow velocity is 15 m/s, and it can be seen that the greater the size of the shape of the flow of the gas, the smoother the circulation of the gas flow in the container and the higher the flow velocity. It can be seen that the size of the shape of the gas flow is decreased when the nozzle 21′ passes through an inner center section of the container, and in this case, the circulation of the gas flow is not smooth and the flow velocity in the container is decreased. In contrast, in the exemplary embodiment, it can be seen that the size of the shape e of a gas flow is not decreased but maintained, and there is no great difference in shear stress between the section in which the nozzle is disposed to be spaced apart from the center of the container and the section in which the nozzle is disposed to be adjacent to the center of the container.
Hereinafter, an apparatus 1 for removing foreign substances in a container according to another exemplary embodiment of the present invention will be described.
Referring to
A first spacing distance d1′ of the first nozzle 21 of the first set and a second spacing distance d2′ of the second nozzle 22 of the first set may be different from each other, the first spacing distance d1′ of the first nozzle 21 of the second set and the second spacing distance d1′ of the second nozzle 22 of the first set may be equal to each other, and the second spacing distance d2′ of the second nozzle 22 of the second set and the first spacing distance d2′ of the first nozzle 21 of the first set may be equal to each other.
Therefore, the positions of the nozzles are diversified, the inflow paths of the gas to be inputted into the container are diversified, and the gas is supplied to all positions in the container, such that the effect of removing foreign substances may be improved.
According to the apparatus 1 for removing foreign substances in a container according to the present invention, the nozzles are disposed to be spaced, at predetermined intervals, apart from the imaginary vertical surface A that runs through the center line of the container to be conveyed, and thus the stagnation of the flow of the gas to be inputted into the container C is reduced, thereby effectively removing foreign substances in the container.
The above description is simply given for illustratively describing the technical spirit of the present invention, and those skilled in the art to which the present invention pertains will appreciate that various changes and modifications are possible without departing from the essential characteristic of the present invention. Therefore, the exemplary embodiments of the present disclosure are provided for illustrative purposes only but not intended to limit the technical concept of the present disclosure. The scope of the technical concept of the present disclosure is not limited thereto. The protective scope of the present disclosure should be construed based on the following claims, and all the technical spirit in the equivalent scope thereto should be construed as falling within the scope of the present disclosure.
Number | Date | Country | Kind |
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10-2018-0114898 | Sep 2018 | KR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/KR2019/012633 | 9/27/2019 | WO | 00 |