Water cooling apparatus for centrifugal casting equipment
09597727 ยท 2017-03-21
Assignee
Inventors
Cpc classification
International classification
Abstract
A water cooling apparatus for cooling centrifugal casting equipment that includes an upper mold and a lower mold rotating together includes a rotating shaft in which a first cooling passage is formed and to which a nozzle is provided at an end portion of the rotating shaft, and a collecting portion which surrounds a side surface of the lower mold and is installed apart from the lower mold. The lower mold is connected to the rotating shaft and includes a chamber separated from a mold space formed between the upper and lower molds in order to store cooling water injected to the nozzle. The lower mold includes at least one second cooling passage extended from the chamber toward an outer circumference surface direction, and the collecting portion receives the cooling water discharged through the second cooling passage.
Claims
1. A water cooling apparatus for cooling centrifugal casting equipment including an upper mold and a lower mold rotating together, said water cooling apparatus comprising: a rotating shaft in which a first cooling passage is formed, and a nozzle provided at an end portion of the rotating shaft, the lower mold being connected to the rotating shaft, and including a chamber configured to store a cooling water injected from the nozzle and at least one second cooling passage extended from the chamber toward an outer circumference surface direction of the lower mold, the chamber separated from a mold space formed between the upper and lower molds; and a collecting portion spaced apart from and surrounding a side surface of the lower mold, and the collection portion configured to collect the cooling water discharged toward the side surface of the lower mold through the second cooling passage.
2. The water cooling apparatus of claim 1, wherein an outlet of the second cooling passage formed on the side surface of the lower mold is positioned higher than the nozzle.
3. The water cooling apparatus of claim 2, wherein a surface of the chamber opposite the nozzle at a central line of the lower mold is concavely formed; and the second cooling passage comprises: an inlet formed at a lower side surface of the chamber; a raising portion connected with the inlet and upwardly bent in the outer circumference surface direction of the lower mold; and a cooling portion connecting the raising portion to the outlet of the second cooling passage to pass the cooling water from the inlet to the outlet.
4. The water cooling apparatus of claim 3, wherein the outlet is extended outwardly beyond the side surface of the lower mold to collect the cooling water by the collecting portion.
5. The water cooling apparatus of claim 1, wherein the rotating shaft comprises: a core comprising the first cooling passage formed in an axial direction thereof; and a case surrounding the core, the core connected with the case via a bearing such that the core is fixed while the case is configured to rotate independently.
6. The water cooling apparatus according to claim 5, further comprising an injecting hose configured to connect the core to the nozzle to supply the cooling water.
7. The water cooling apparatus of claim 5, wherein the nozzle has a diameter larger than the diameter of the core to close a gap between the core and the case.
8. The water cooling apparatus of claim 1, wherein the collecting portion comprises: a main body surrounding the side surface of the lower mold; and a collecting groove formed on an inner circumference surface of the main body and configured to receive the cooling water.
9. The water cooling apparatus according to claim 8, wherein the collecting portion further comprises: a filter configured to receive and purify the cooling water collected in the main body; and a pump configured to inject the cooling water passed through the filter into the cooling passage of the shaft.
10. The water cooling apparatus of claim 8, wherein one side portion of the main body is slantly installed downwardly around the lower mold and a drain port is formed in a lower part of the side portion of the main body; and a discharging hose is configured to deliver the cooling water discharged from the drain port to the filter and an injecting hose delivering the cooling water passed through the filter to the cooling passage of the shaft.
Description
DRAWINGS
(1) In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
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(9) The drawings described herein are for illustration purposed only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
(10) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
(11) The terminologies used herein are used just to illustrate a specific exemplary form, but are not intended to limit the present disclosure. It must be noted that, as used in the specification and the appended claims, the singular forms include plural references unless the context clearly dictates otherwise. It will be further understood that the terms comprises, when used in this specification, specify the presence of stated properties, regions, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other properties, regions, integers, steps, operations, elements, components, and/or groups.
(12) Unless differently defined, all terms including technical terms and scientific terms used herein have the same meanings as those generally understood by a person with ordinary skill in the art to which the present disclosure pertains. The terminologies that are defined in a generally used dictionary are further understood to have meanings that coincide with related technical documents and contents that are currently disclosed, but are not to be interpreted as idealized or very formal meaning unless defined.
(13) As shown in
(14) The rotating shaft 100 may be divided into two parts, which are a core 110 having the first cooling passage 200 formed in an axial direction therein and a case 120 surrounding the core 110 and rotating with the lower mold 20. The core 110 and the case 120 may be connected with each other via a bearing 130 such that the core 110 can maintain a fixed state without rotating even if the case 120 rotates. So the core 110 is fixed, whereby the connecting portion with an injecting hose 710 described hereafter is not twisted.
(15) The ends of the core 110 and the case 120 may be inserted into a chamber 400 formed at the lower mold 20. The chamber 400 may be a space of the concave groove shape formed at an axial line of the lower mold 20. A constant space may be formed in the inside of the chamber 400 by closing an inlet of the concave groove via the core 110 and the rotating shaft 100. The chamber 400 may be separately formed with respect to a mold space C in which casting is manufactured and serve to prevent the casting from being directly connected with the cooling water.
(16) Furthermore, a nozzle 210 may be formed at the end of the core 110 to inject the cooling water into the chamber 400. In one form, the diameter of the outer circumference surface in the nozzle 210 is larger than that of core 110, which is to prevent the cooling water from being flowed backward through a gap between the core 110 and the case 120 by closing the gap via the nozzle 210.
(17) The second cooling passage 300 may be formed at the inside of the lower mold 20 to induce the cooling water toward the side surface of the lower mold 20 from the chamber 400. The second cooling passage 300 may include an inlet 310, a raising portion 320 and a cooling portion 330. The inlet 310 of the second cooling passage 300 may be formed at the lower portion of the chamber 400, that is, the side surface of the direction into which the rotating shaft 100 is inserted. The cooling water entered into the second cooling passage 300 through the inlet 310 may pass through the raising portion 320 formed upwardly at a predetermined angle, and then may be discharged to the outside of the lower mold 20 through the cooling portion 330 connected to the raising portion 320 and formed to be extended to the outside of the lower mold 20. Since the raising portion 320 is formed to be bent upwardly at a predetermined angle, an outlet 340 formed at the outer end portion of the cooling portion 330 can be located higher than the nozzle 210. By forming the outlet 340 to be located higher than the nozzle 210, it is possible to temporarily store the cooling water discharged from the nozzle 210 to the chamber 400 and to supply the cooling water more smoothly when the mold starts to rotate.
(18) In another form, the outlet 340 is extended outwardly beyond the outside surface of the lower mold 20 at a predetermined length, which is to prevent the cooling water from being scattered while discharged and assist that the cooling water is collected through the collecting portion 500.
(19) As shown in
(20) In still another form, the one side portion of the main body 510 may be slantly installed downwardly and a drain port may be formed at the lower portion of the one side portion so that the cooling water discharged through the drain port can be transmitted to the filter 600 through a discharging hose 530. The cooling water purified at the filter 600 is again supplied to the first cooling passage 200 through an injecting hose 710 by the pump 700. Although not shown, a water tank may be installed between the filter 600 and the pump 700, which is configuration for receiving cooling water from the outside in order to replenish the cooling water consumed while circulated.
(21) Hereinafter, the physical properties improvement of casting manufactured by an exemplary form of the present disclosure will be described with reference to
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(25) The size difference of the structure, the range of the temperature-raising portion and the degree of the temperature difference cause differences of physical properties. The casting manufactured by the conventional method represents yield strength of 221 MPa, tensile strength of 252 MPa and elongation percentage of 6.2%, whereas the casting manufactured by an exemplary form of the present disclosure represents yield strength of 239 MPa, tensile strength of 293 MPa and elongation percentage of 11.1%. Each of the yield strength, the tensile strength and the elongation percentage is improved about 8%, 16% and 79%. This represents that the physical properties of the casting manufactured by using the cooling method according to an exemplary form of the present disclosure is much better than that of the casting manufactured by using the cooling method according to a prior art.
(26) As described above, the exemplary forms of the present disclosure have been described and illustrated in the drawings and the specification. However, a person having ordinary skill in the art to which the present disclosure pertains will understand that the present disclosure may be implemented by the other concrete forms without changing the technical ideas or the essential characteristics thereof.