METHOD OF MANUFACTURING IMPELLER BLADE OF SHOT PEENING MACHINE AND IMPELLER BLADE
20200180110 ยท 2020-06-11
Assignee
Inventors
Cpc classification
B23P15/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention relates to a method of manufacturing an impeller blade of a shot peening machine, the method including a part cutting process of forming a shot moving plate in which protrusions are formed by cutting a steel plate and first and second side guide plates in which insertion holes are formed, and a blade assembling process of assembling a blade by inserting the protrusions of the shot moving plate into the insertion holes of the first and second side guide plates, and an impeller blade manufactured according to the method.
Claims
1. A method of manufacturing an impeller blade of a shot peening machine, the method comprising: a part cutting process of producing a shot moving plate and first and second side guide plates by cutting steel plates using a laser machining method or a wire electric discharge machining method, wherein materials of the steel plates are high carbon steel or high manganese steel, a fixing groove is formed in each of the first and second side guide plates, two insertion holes are formed between the fixing groove and both ends of each of the first and second side guide plates, and two protrusions are formed on each of both sides of the shot moving plate; a part heat treatment process of quenching the formed shot moving plate and first and second side guide plates at a temperature which is higher than an A3 transformation point by 30 to 50 C. and tempering the shot moving plate and the first and second side guide plates at a temperature which is less than or equal to an A1 transformation point; and a blade assembling process of assembling the first and second side guide plates to both side surfaces of the shot moving plate by inserting the protrusions of the shot moving plate into the insertion holes of the first and second side guide plates, wherein the fixing groove is formed to be concavely recessed in a longitudinal center portion of each of the first and second side guide plates such that a fixing pin is inserted into the fixing groove and a fixing pin fixing groove formed at one side of a blade fixing groove to fixedly mount the blade on an impeller.
2. The method of claim 1, wherein the protrusions of the shot moving plate and the insertion holes of the first and second side guide plates are formed in quadrilateral shapes.
3. The method of claim 1, further comprising a post-heating bending process of bending the shot moving plate to one side after the part cutting process.
4. The method of claim 3, further comprising a post-heating bending process of bending the first and second side guide plates to one side so as to match the first and second side guide plates to a shape of the bent shot moving plate.
5. The method of claim 1, further comprising a part grinding process after the part cutting process.
6. The method of claim 1, wherein all the steel plates which are used have the same thickness.
7. An impeller blade in an impeller of a shot peening machine in which a plurality of blade fixing grooves are formed in inner surfaces of two discs which face each other and the impeller blade is fixedly mounted on each of the blade fixing grooves, the impeller blade comprising: a shot moving plate which is formed in a plate shape and in which one or more protrusions are formed on each of both side surfaces thereof; and first and second side guide plates in which insertion holes are formed to be coupled and assembled with the protrusions of the shot moving plate, wherein the first and second side guide plates are fixedly inserted into the blade fixing groove.
8. An impeller blade in an impeller of a shot peening machine in which a plurality of blade fixing grooves are formed in inner surfaces of two discs which face each other and the blade is fixedly mounted on each of the blade fixing grooves, the impeller blade comprising: a shot moving plate and first and second side guide plates which are formed of a steel plate of a high carbon steel or high manganese steel material, wherein two protrusions are formed to have a quadrilateral shape on each of both sides of the shot moving plate, wherein fixing grooves are formed in the first and second side guide plates, wherein two insertion holes having a quadrilateral shape are formed between the fixing groove and both ends of each of the first and second side guide plates such that the protrusions of the shot moving plate are inserted into the two insertion holes of each of the first and second side guide plates to assemble the first and second side guide plates to both side surfaces of the shot moving plate, wherein the fixing groove is formed to be concavely recessed in a longitudinal center portion of each of the first and second side guide plates to fixedly mount the impeller blade on the impeller by inserting a fixing pin into the fixing groove and a fixing pin fixing groove formed in one side of the blade fixing groove, and wherein a longitudinal center portion, along which a shot ball is moved, of the shot moving plate is bent in an outward direction.
9. The impeller blade of claim 8, wherein the first and second side guide plates are bent to match a shape of the bent shot moving plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The above and other objects, features and advantages of the present invention will become more apparent to those of ordinary skill in the art by describing exemplary embodiments thereof in detail with reference to the accompanying drawings, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION OF PRESENT INVENTION
[0028] Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings. The following descriptions will be made focusing on portions necessary to understand operations and actions according to the present invention. While the embodiments of the present invention are described, descriptions of technical contents which are well-known in the art and are not directly related to the present invention will be omitted. This is to more clearly provide the gist of the present invention without obscuring the gist by omitting unnecessary descriptions.
[0029] In addition, in descriptions of components of the present invention, a different reference numeral may be assigned to the same component depending on the drawings, and the same reference numeral may be assigned to the same component in different drawings. However, this does not mean that the component has a different function depending on embodiments or that the component has the same function in different embodiments. Functions of each component may be determined based on descriptions of each component in the corresponding embodiment.
[0030] In addition, unless otherwise defined, all technical terms used herein should be interpreted to have customary meanings to those skilled in the art to which this invention belongs, and should not be interpreted with overly idealized or reduced meanings.
[0031] In addition, the singular forms a, an, and the used in the present specification are intended to include the plural forms as well, unless the context clearly indicates otherwise. It should be interpreted that the terms comprises, comprising, includes, and/or including, when used herein, specify the presence of stated components or various operations thereof, may not include some components and operations therein, or may further include additional components and operations.
[0032] General impeller blades are formed as illustrated in
[0033] A blade that shoots shot balls according to the present invention includes a shot moving plate and first and second side guide plates at both sides of the shot moving plate, and such parts are individually manufactured and assembled into the blade so that manufacturing of an impeller blade is completed.
[0034] When the blade manufactured according to the present invention is mounted on the impeller of a shot peening machine, the shot balls are supplied to the shot moving plate of the blade, a centrifugal force is applied to the shot balls due to rotation of the impeller, and the shot balls are moved along a bottom surface of the shot moving plate in an outer circumferential direction of the impeller and shot at a workpiece.
[0035] Two discs assembled to stand on opposite sides such that the blade is fitted prevent the shot balls from being shot in a lateral direction from the shot moving plate of the blade when the shot balls are shot at the workpiece, the first and second side guide plates assembled with the shot moving plate are inserted into blade fixing grooves formed in the discs, and the blade is not separated from the impeller and is fixed thereto due to fixing grooves formed in the first and second side guide plates or fixing protrusions when the impeller is rotated.
[0036] The shot moving plate and the first and second side guide plates of the blade according to the embodiment of the present invention are formed to have structures in which final shapes are formed only by cutting thin steel plates.
[0037] The shot moving plate of the blade of the present invention is manufactured by forming protrusions on side surfaces of a plank having a rectangular shape and a predetermined thickness, and each of the first and second side guide plates are manufactured to have a rectangular shape which has a length equal to that of the shot moving plate, a predetermined thickness, and a narrow width, and in which an insertion hole is formed in a center portion thereof in a width direction.
[0038] The protrusions of the shot moving plate and the insertion holes of the first and second side guide plates have the same shape to be fitted to each other and may be manufactured to have a quadrilateral shape.
[0039] A shot moving plate or first and second side guide plates manufactured according to another embodiment of the present invention may be manufactured to have curved or bent shapes as illustrated in
[0040] The shot moving plate manufactured to have the curved or bent shape may be manufactured by cutting the shot moving plate to have a concave groove shape or curved shape at a center portion in a longitudinal direction thereof or a center portion in a direction perpendicular to the longitudinal direction, but in a case in which the shot moving plate is manufactured as described above, a thick steel plate should be used, an amount of material loss and a machining time are increased, and thus it is not preferable from a viewpoint of cost-effectiveness.
[0041] Only high carbon steel or high manganese steel may be used for a steel plate for manufacturing the blade according to the embodiment of the present invention from a viewpoint of manufacturing cost-effectiveness. When the high carbon steel or the high manganese steel is used, machining costs may be increased, but a service life may be significantly extended, and thus it is effective from a viewpoint of cost-effectiveness.
[0042] In addition, a steel plate having a predetermined thickness may be used to manufacture the blade according to the embodiment of the present invention, and the shot moving plate and the first and second side guide plates may be manufactured using steel plates having the same thickness. Since the shot moving plate and the first and second side guide plates are manufactured using the steel plates having the same thickness, generation of waste material is prevented, and efficiency of material management can be improved, a machining process can be simplified, and thus manufacturing costs can be reduced.
[0043] As illustrated in
[0044] First and second side guide plates (22) are also manufactured by cutting a steel plate, fixing protrusions (29) are formed in which end portions of one sides of the first and second side guide plates (22) extend in a longitudinal direction and protrude from the steel plate having a rectangular shape of a small width, and a length equal to that of the shot moving plate (21), and insertion holes (27) are formed in center portions in a width direction of the first and second side guide plates (22) at positions corresponding to the protrusions (26) of the shot moving plate (21).
[0045] In the shot moving plate (21) and the first and second side guide plates (22) in which a cutting process, a surface treatment machining, and a heat treatment process are performed, the protrusions (26) of the shot moving plate (21) are inserted into the insertion holes (27) of the first and second side guide plates (22) to join the shot moving plate (21) to first and second side guide plates (22) and thus an impeller blade (20) according to the embodiment of the present invention is formed.
[0046] According to one embodiment of the present invention, the protrusions (26) of the shot moving plate (21) have a cross section in a quadrilateral shape, two protrusions (26) are formed on each of the both sides of the shot moving plate (21), and two insertion holes (27) are formed to have a quadrilateral shape in each of the first and second side guide plates (22). As illustrated in
[0047] As the impeller blade manufactured according to the embodiment of the present invention is mounted on the impeller of the shot peening machine, the blade of which a service life has been reached may be replaced, the impeller (10) of the shot peening machine has a structure in which the blade may be inserted and mounted between two discs (11) which face each other as illustrated in
[0048] When the impeller (10) of the shot peening machine, in which the blade is mounted, is rotated, shot balls supplied to a center portion thereof are moved to the blade and shot at a workpiece, and thus a surface treatment is performed on the workpiece.
[0049] A blade (30) according to another embodiment of the present invention may be manufactured as illustrated in
[0050] As illustrated in
[0051] As illustrated in
[0052] A direction in which the shot moving plate (41) and the first and second side guide plates (42) are curved or bent is a direction perpendicular to a longitudinal direction in which shot balls are moved along the shot moving plate (41), and when the blade (40) is mounted on an impeller (10), since the blade (40) is curved in a circumferential direction in which the impeller (10) is rotated, a shot speed of shot balls can be increased.
[0053] As illustrated in
[0054] In the manufacturing process of the impeller blade according to the present invention, the impeller blade is manufactured in the order of (a) a part cutting process, (b) a part heat treatment process, and (c) a blade assembling process according to a process sequence illustrated in
[0055] (a) Part Cutting Process
[0056] A shot moving plate and first and second side guide plates are formed by cutting a steel plate. The cutting may be performed through a method of cutting using a method such as a laser machining method and a wire electric discharge machining method, and it is efficient to use the laser machining method. By using laser machining, exteriors of the shot moving plate and the first and second side guide plates are formed, and formation of protrusions (26 or 36) of the shot moving plates (21 or 31) and insertion holes (27 or 37) of the first and second side guide plates (22 or 32) can be facilitated.
[0057] When finishing surface treatments of the formed parts are required according to used materials and a working environment of the cutting, a surface treatment may be performed using a grinding wheel.
[0058] A bottom surface of the shot moving plate (41) formed as illustrated in
[0059] Each of the first and second side guide plates (42) may also have a height and a width which are large enough to maintain a quadrilateral shape and to cover an entire side surface of the curved shot moving plate (41), but the post-heating bending process may be performed on the first and second side guide plates, which are cut and machined to have the quadrilateral shape, so as to match the curved shape of the shot moving plate (41) as illustrated in
[0060] (b) Part Heat Treatment Process
[0061] Manufacturing of blade parts is completed by quenching the shot moving plate and the first and second side guide plates manufactured using steel plates through the cutting process at a temperature which is higher than an A3 transformation point by 30 to 50 C. and tempering the shot moving plate and the first and second side guide plates at a temperature which is lower than or equal to an A1 transformation point or less.
[0062] (c) Blade Assembling Process
[0063] The protrusions (26, 36 or 46) of the shot moving plate are inserted into the insertion holes (27, 37, or 47) of the first and second side guide plates to fixedly couple the shot moving plate (21, 31, or 41) to the first and second side guide plates (22, 32, or 42) so that formation of the impeller blade (20, 30, or 40) is completed.
[0064] Since the impeller blade manufactured according to the present invention is formed of a steel material, a service life can be increased, a uniform quality level can be maintained, and manufacturing costs can also be significantly reduced in comparison with manufacturing costs of a cast iron blade.
[0065] In addition, since the blade is formed to be separated into the shot moving plate and the first and second side guide plates, convenience can be improved when the blade is mounted on the impeller, and in a case in which a service life of the shot moving plate has been reached, only the spent shot moving plate can be replaced while the first and second side guide plates are still used.
[0066] The present invention can increase a service life of a blade in comparison with that of a cast iron blade and can significantly reduce manufacturing costs of the blade in comparison with those of the cast iron blade. In addition, since a shot moving plate and first and second side guide plates are separately formed to form the blade, and the blade is used in which the shot moving plate and the first and second side guide plates are assembled, replacement convenience of the blade is improved, and the shot moving plate and the first and second side guide plates can be selectively replaced.
[0067] Although the embodiments of the present invention have been described with reference to the above contents, it will be understood by those skilled in the art that the invention may be performed in other specific forms without changing the technological scope or essential features.
[0068] Therefore, the above-described embodiments should be considered in a descriptive sense only and not for purposes of limitation, and the scope of the present invention is defined by the appended claims and encompasses all modifications or alterations derived from meanings and the scope of the appended claims, and equivalents thereof.