The application claims the benefit of Taiwan application serial No. 104141192, filed on Dec. 8, 2015, and the subject matter of which is incorporated herein by reference.
1. Field of the Invention
The present disclosure generally relates to a cooling apparatus and, more particularly, to a cooling apparatus that can perform a cooling operation on a rod-shaped steel material.
2. Description of the Related Art
Heat treatment process is able to change the mechanical properties of a steel material during the processing of the steel material. The heat treatment process includes annealing, quenching and tempering. As an example of quenching, when a steel material is heated to a predetermined temperature, a cooling apparatus can perform a fast cooling operation on the steel material. In this regard, the cooling apparatus can change the metamorphosis of the steel material by controlling the cooling temperature of the steel material. As such, the mechanical properties (such as stiffness or ductility) of the steel material can meet the required standards.
In light of this, it is necessary to provide a cooling apparatus to overcome the deficiencies of uneven cooling effect and low cooling speed of the conventional cooling facilities.
It is therefore the objective of this disclosure to provide a cooling apparatus which can perform a cooling operation on a rod-shaped steel material while the rod-shaped steel material is moving and rotating. Thus, uniform cooling efficiency can be attained.
It is another objective of this disclosure to provide a cooling apparatus which can eject cooling liquid to the rod-shaped steel material while the rod-shaped steel material is moving and rotating. Thus, the cooling process can be speeded up.
In an embodiment of the disclosure, a cooling apparatus including a convoying unit and a spraying unit is disclosed. The convoying unit includes a base and a plurality of rollers. The base includes a feeding end and a discharging end in which a convoying direction extends from the feeding end to the discharging end. The plurality of rollers is arranged on the base. Each of the plurality of rollers includes a convoying portion. The convoying portion has a diameter which reduces from two ends to a center of the convoying portion. Each of the plurality of rollers includes a shaft. The shaft has an axle direction which is at a diverted angle to the convoying portion. The diverted angle is 15° to 90°. The spraying unit includes at least one nozzle unit arranged between the feeding end and the discharging end of the base. In this arrangement, a cooling operation can be performed on a rod-shaped steel material that is moving and rotating at the same time, attaining uniform and fast cooling effect.
In a form shown, the diverted angle is 45°. As such, the rod-shaped steel material can be convoyed and rotated in a smooth manner at the same time.
In the form shown, the axle directions of the plurality of rollers are parallel to each other. As such, the rod-shaped steel material can be convoyed and rotated in a smooth manner at the same time.
In the form shown, the convoying unit further includes a driving motor connected to the shafts of the plurality of rollers via a linking unit. In this arrangement, the rollers can be rotated at the same time.
In the form shown, the convoying portion has an outer face in a form of a concave curved face. As such, the rod-shaped steel material can be convoyed and rotated in a smooth manner at the same time.
In the form shown, the convoying portions of the plurality of rollers form a conveying axis at one side of the convoying portions away from the base. The conveying axis is parallel to the convoying direction. As such, the rod-shaped steel material can be convoyed and rotated in a smooth manner at the same time.
In the form shown, each of the at least one nozzle unit includes a plurality of nozzles. Each of the plurality of nozzles has an opening facing the conveying axis. As such, a cooling operation can be smoothly performed on the object convoyed by the convoying portions.
In the form shown, the plurality of nozzles is arranged in an inclined manner between the feeding end and the discharging end. Thus, the heat treatment process can be smoothly performed.
In the form shown, each of the plurality of nozzles has a flow reflection direction not parallel to the convoying direction. Thus, uniform cooling effect can be attained.
In the form shown, there is an ejection angle between the flow reflection direction and the convoying direction. The ejection angle is between 20° and 80°. Thus, flexible use can be attained.
In the form shown, each of the at least one nozzle unit includes three nozzles surrounding the conveying axis in an even angle of 120°. Thus, uniform and fast cooling effect can be attained.
In the form shown, each of the at least one nozzle unit includes six nozzles surrounding the conveying axis in an even angle of 60°. Thus, uniform and fast cooling effect can be attained.
In the form shown, the spraying unit further includes a support coupled with the base of the convoying unit, and the at least one nozzle unit is arranged on the support. As such, a cooling operation can be smoothly performed on the object convoyed by the convoying portions.
Based on the above, a cooling operation can be performed on the rod-shaped steel material that is moving and rotating at the same time. Then, the spraying unit can perform a cooling operation on the rod-shaped steel material, attaining a uniform cooling effect.
Moreover, the cooling apparatus of the disclosure can perform a cooling operation on the rod-shaped steel material that is moving and rotating at the same time. In this regard, since the steel material is rotating constantly, it can prevent the cooling liquid from remaining on the surface of the rod-shaped steel material, thus facilitating the cooling process.
The present disclosure will become more fully understood from the detailed description given hereinafter and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present disclosure, and wherein:
In the various figures of the drawings, the same numerals designate the same or similar parts. Furthermore, when the terms “first”, “second”, “third”, “fourth”, “inner”, “outer”, “top”, “bottom”, “front”, “rear” and similar terms are used hereinafter, it should be understood that these terms have reference only to the structure shown in the drawings as it would appear to a person viewing the drawings, and are utilized only to facilitate describing the disclosure.
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The outer face of the convoying portion 121 of each roller 12 has a certain level of roughness Ra, which is preferably between 1 μm to 20 μm. Thus, when the rod-shaped steel material S makes contact with the convoying portions 121 of the rollers 12, it can ensure a proper frictional force between the convoying portions 121 and the rod-shaped steel material S without affecting the surface integrity of the rod-shaped steel material S. The frictional force can also help the rod-shaped steel material S to move and rotate smoothly at the same time.
Besides, the convoying unit 1 further includes a driving motor 13 connected to the shafts 122 of the rollers 12 via a linking unit 14. In this arrangement, the driving motor 13 can guide the rollers 12 to rotate at the same time. Thus, smooth rotation of the rollers 12 is attained. There can also be a plurality of driving motors 13 that drives the rollers 12 to rotate at the same speed (for example, each driving motor 13 drives a respective roller 12). Thus, the output power of each driving motor 13 can be lowered to reduce the entire cost of the driving motors 13.
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Each of the nozzle units 21 includes a plurality of nozzles 211 substantially facing the conveying axis L1 formed by the rollers 12. The nozzles 211 substantially face the conveying axis L1. For example, when the rod-shaped steel material S is convoyed by the convoying portions 121 of the rollers 12, if the rod-shaped steel material S is in line contact with the outer faces of the convoying portions 121, the central axis of the rod-shaped steel material S will overlap with the conveying axis L1. In this regard, when the openings of the nozzles 211 substantially face the conveying axis L1, the nozzles 211 can substantially face the central axis of the rod-shaped steel material S. Each of the nozzles 211 can eject a cooling liquid which can be any working liquid having a heat exchanging function. In the embodiment, the cooling liquid is water. Thus, the nozzles 211 of the nozzle units 21 can provide a cooling effect for the object conveyed by the convoying portions 121 of the rollers 12.
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There is an ejection angle A2 between the flow reflection direction D3 of the nozzle 211 and the convoying direction D 1. The ejection angle A2 is between 20° and 80°. Based on the arrangement, it is possible to control the contact area between the cooling liquid and the object (such as the rod-shaped steel material S). Thus, flexible use is attained.
The quantity of the nozzles 211 is not limited herein. In an embodiment shown in
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In overall, when it is about to perform the cooling operation on the rod-shaped steel material S, the rod-shaped steel material S can be placed on the convoying portions 121 of the rollers 12. Since the axle direction D2 of the shaft 122 of the roller 12 is not parallel to the convoying direction D1, when the rod-shaped steel material S is in contact with the concave curved faces of the convoying portion 121, the rod-shaped steel material S not only can be conveyed in the convoying direction D1 by the rollers 12, but also can rotate upon the concave curved faces of the convoying portion 121. Then, the nozzle units 21 of the spraying unit 2 can eject the cooling liquid to the rod-shaped steel material S that is moving and rotating at the same time. In this regard, the cooling liquid can be uniformly and properly ejected to the surface of the rod-shaped steel material S based on the inclination of the nozzles 211 between the feeding end 111 and the discharging end 112 or by controlling the ejection angle A2 between the flow reflection direction D3 of the nozzle 211 and the convoying direction D1, or also by controlling the quantity and arrangement of the nozzles 211 in each nozzle unit 21. As a result, uniform and fast cooling effect can be attained.
Based on the above, the cooling apparatus of the disclosure drives the rod-shaped steel material S to move and rotate at the same time through the convoying unit 1, and then performs a cooling operation on the rod-shaped steel material S through the spraying unit 2. Thus, a uniform cooling effect can be attained.
Moreover, the cooling apparatus of the disclosure can perform, through the spraying unit 2, a cooling operation on the rod-shaped steel material S that is moving and rotating at the same time. In this regard, since the steel material is rotating constantly, it can prevent the cooling liquid from remaining on the surface of the rod-shaped steel material. Thus, the cooling process can be speeded up.
Although the disclosure has been described in detail with reference to its presently preferable embodiments, it will be understood by one of ordinary skill in the art that various modifications can be made without departing from the spirit and the scope of the disclosure, as set forth in the appended claims.
Number | Date | Country | Kind |
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104141192 | Dec 2015 | TW | national |