Forming process of stainless steel plate-rubber composite base plate

By designing molds and using compression molding technology, the problems of uneven composite interface and label offset during the molding of stainless steel plates and rubber composite pads were solved, enabling efficient production of high-quality composite pads.

CN121552599AActive Publication Date: 2026-02-24HEBEI TIEKE YICHEN NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202610064687.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-19
Publication Date
2026-02-24
Estimated Expiration
2046-01-19

AI Technical Summary

Technical Problem

In the molding process of stainless steel plates and rubber composite pads, it is difficult to process uniform strip-shaped cavities at the composite interface, and the strip structure is prone to displacement during the glue injection process, affecting the cushioning effect and product quality.

Method used

The mold design includes a lower mold, an upper mold, and a side mold. The label is radially and axially constrained by a pull claw mechanism and a pressure strip structure. Combined with the compression injection molding process, the label can be automatically extracted and its position restricted, ensuring the uniformity of the composite interface.

Benefits of technology

This improved the cushioning capacity of the composite pad, reduced label offset, and increased the product molding pass rate and production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of stainless steel plate-rubber composite base plates, in particular to a forming process of a stainless steel plate-rubber composite base plate, which comprises the following steps: I, pushing a lower mold after mold opening from a forming station to a mold stripping station, so that two side molds are respectively butted with two push-pull mechanisms; iI, pulling out the side die from the lower die by a push-pull mechanism, and pulling away the label from the composite base plate; iII, an ejection mechanism below the mold stripping station ejects the composite base plate out of the lower mold, and then the ejection mechanism is reset; iV, the stainless steel plate is placed in the plate groove; v, inserting the side die into the lower die by a push-pull mechanism; vI, the lower die is pulled back to the forming station from the die stripping station, and die assembly is conducted; vII, injecting a sizing material; vIII, performing pressure-maintaining vulcanization; iX, opening the mold; and the process from I to IX is repeated. By means of the forming process, a plurality of strip-shaped cavities are machined in the composite interface between the stainless steel plate and the rubber, the buffering effect of the base plate is improved, meanwhile, the sticks are subjected to radial and axial double constraint, and the cantilever effect of the sticks is eliminated.
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Description

Technical Field

[0001] This invention relates to the field of stainless steel plate-rubber composite pads, specifically to a molding process for stainless steel plate-rubber composite pads. Background Technology

[0002] As a core functional component of the railway fastening system, the railway composite rubber pad (models CRP5, WJ7, WJ8, etc.) plays multiple roles in buffering vibration loads, adjusting track stiffness, and ensuring geometric stability. Its typical structure is composed of a rubber matrix and pre-embedded metal inserts, which are vulcanized at high temperature. It must possess sufficient physical properties and pass stringent tests such as fatigue testing and dynamic-to-static stiffness ratio testing.

[0003] To increase the cushioning capacity of the molded pad, several strip-shaped cavities need to be machined at the composite interface between the stainless steel plate and the rubber. Correspondingly, a removable label structure needs to be added to the mold. At the same time, it is necessary to solve the problem of slight displacement of the label structure due to heat during the glue injection process, and avoid uneven processing of the composite interface. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to provide a molding process for a stainless steel plate-rubber composite pad, which processes several strip-shaped cavities at the composite interface between the stainless steel plate and the rubber to increase the cushioning effect of the pad, while simultaneously constraining the label strip radially and axially to eliminate the cantilever effect of the label strip, reduce its offset during heating and cooling, and make the processing effect of the composite interface more uniform.

[0005] To solve the above problems, the technical solution adopted by the present invention is as follows: A molding process for a stainless steel sheet-rubber composite pad involves placing a stainless steel sheet in a mold and then injection molding it to obtain the composite pad. The key technology lies in the fact that the mold includes a lower mold, an upper mold, and two side molds symmetrically arranged on both sides of the lower mold. The side molds are equipped with multiple claw mechanisms, each claw mechanism comprising a claw base and multiple sets of labels arranged on the claw base. The lower mold has plate grooves corresponding to the claw mechanisms. The specific process steps are as follows: Ⅰ. Push the lower mold from the forming station to the ejection station after the mold is opened, so that the two side molds are respectively connected to the two push-pull mechanisms; II. The push-pull mechanism pulls the side mold out of the lower mold, causing the label to be pulled out of the composite pad. Ⅲ, the ejection mechanism below the mold ejection station ejects the composite pad from the lower mold, thereby removing the composite pad, and then the ejection mechanism resets; IV. Place the stainless steel plate with the adhesive coating on its upper surface into the plate groove; V. The push-pull mechanism inserts the side mold into the lower mold, causing the label to move above the stainless steel plate; VI. Pull the lower mold back from the ejection station to the forming station and close the upper and lower molds. The side of the upper mold is provided with a base limiting block corresponding to the pull claw base, which is used to limit the horizontal displacement of the pull claw base after the mold is closed. The middle of the upper mold is provided with a pressure strip corresponding to the end of the label, which is used to limit the axial and radial displacement of the label after the mold is closed. VII. Inject the adhesive material; VIII. Pressure vulcanization; IX. Mold making.

[0006] In one embodiment of the present invention, a base connecting platform is provided on the side of the side mold facing the lower mold, and the pull claw base is fixed on the base connecting platform; a base inclined surface is provided on the side of the pull claw base away from the lower mold, and a corresponding inclined surface structure is provided on the base limiting block. When the mold is closed, the inclined surface structure of the base limiting block abuts against the base inclined surface, so that the pull claw base tends to move towards the lower mold.

[0007] In one embodiment of the present invention, the lower mold is provided with two sets of pressure strip limiting protrusions in the middle of the pressure strip, and two pressure strip grooves are provided on the pressure strip corresponding to the two sets of pressure strip limiting protrusions. When the mold is closed, the pressure strip limiting protrusions are embedded in the pressure strip grooves. The pressure strip limiting protrusion has a strip passage groove corresponding to the strip. After step V is completed, the end of the strip passes through the strip passage groove and enters between the two pressure strip limiting protrusions. The middle part of the pressure strip has a pressure groove corresponding to the end of the label. The cross-section of the pressure groove corresponds to the cross-section of the label. After the mold is closed, the pressure groove presses the end of the label onto the lower mold to limit the radial displacement of the end of the label.

[0008] In one embodiment of the present invention, two label grooves are symmetrically arranged on both sides of one end of the label strip, and a label slope is provided on the side of the label groove facing the pressure strip limiting protrusion. After step V is completed, the label slope is located near the pressure strip limiting protrusion. The outer side of the groove of the pressure strip forms a side slope. After the mold is closed, the side slope abuts against the slope of the label to generate an axial tensile force on the label, thereby reducing the axial deformation of the label.

[0009] In one embodiment of the present invention, the lower mold is disposed on the base support, the base support is slidably disposed on two opposing guide rails, and a lower mold driving mechanism is disposed at one end of the two guide rails. The lower mold driving mechanism is connected to the base support to drive the base support to slide, thereby enabling the lower mold to switch between the demolding station and the forming station.

[0010] As one embodiment of the present invention, the push-pull mechanism includes a push-pull drive cylinder disposed on one side of the guide rail, a telescopic rod disposed on the push-pull drive cylinder, a bearing plate disposed at the end of the telescopic rod, and a push-pull plate disposed on the bearing plate. The upper end face of the push-pull plate is flush with the lower end face of the side mold, and the extension and retraction direction of the telescopic rod is perpendicular to the guiding direction of the guide rail. The lower end face of the side mold is provided with a long side mold groove, and the upper end face of the push-pull plate is provided with a protruding ridge corresponding to the side mold groove; during the process of the lower mold being pushed from the forming station to the demolding station, the side mold slides into place along the protruding ridge through the side mold groove, and the push-pull plate moves by driving the side mold to move through the protruding ridge.

[0011] In one embodiment of the present invention, a push-out groove is provided on the lower mold within the plate groove, and a lifting hole through the lower mold is provided at the bottom of the push-out groove; a push-out plate is movably disposed within the push-out groove, and a lifting column is movably disposed within the lifting hole, the lifting column being connected to the push-out plate. The base has a through hole corresponding to the lifting hole.

[0012] As one embodiment of the present invention, the ejection mechanism includes multiple sets of lifting drive cylinders disposed between the two guide rails, a transition plate disposed on the telescopic rods of the multiple sets of lifting drive cylinders, and multiple top columns disposed on the transition plate, wherein the top columns correspond to the through holes of the bottom support; The lifting drive cylinder drives the adapter plate to rise, so that the top column passes through the bottom support through hole and lifts the lifting column, and then the push plate pushes the product out.

[0013] As one embodiment of the present invention, the specific steps of step VII are as follows: S1. Preheat the mold to 80-100℃, set the injection pressure to 120Mpa and the material volume delivery rate to 40cm³ / s, and inject the material at 10% of the stroke of the injection screw, so that the material slowly and slowly fills the flow channel until a small amount contacts the inside of the cavity. S2, set the injection pressure to 155Mpa and the glue volume delivery rate to 60cm³ / s, and inject glue at 50% of the stroke of the injection screw to fill most of the glue into the cavity; S3, set the injection pressure to 160Mpa and the glue volume delivery rate to 70cm³ / s, and inject glue to 30% of the injection screw stroke to basically fill the cavity; S4, set the injection pressure to 130Mpa and the glue volume delivery rate to 40cm³ / s, inject glue at 10% of the injection screw stroke, and slowly fill the cavity until the glue is completely filled.

[0014] In one embodiment of the present invention, in step VIII, the injection pressure is set to 100 MPa, the rubber volume conveying rate is 30 cm³ / s, and the pressure is maintained for 1 minute to allow the rubber in the cavity to undergo initial vulcanization and prevent backflow.

[0015] The beneficial effects of adopting the above technical solution are as follows: The molding process of this invention involves placing a stainless steel plate in the groove of the lower mold beforehand, and using a removable strip on top of the stainless steel plate. After molding, a composite pad product with several strip-shaped cavities between the stainless steel plate and the rubber can be obtained, thereby increasing the cushioning capacity of the composite pad.

[0016] The label of the present invention is connected to the side mold through the claw base. The side mold can be pulled away from the lower mold by the push-pull mechanism on the side of the mold release station, and then the label is pulled out from the product during the mold release, realizing the automated operation of label extraction and improving the efficiency of product production.

[0017] In this invention, one end of the label is connected to the pull claw base. After the mold is closed, the pull claw base abuts against the base limiting block of the upper mold, while the side mold and the side wall of the lower mold are always abutting against each other, thereby limiting the displacement of the label in the side mold moving direction. The upper mold is finally provided with a pressure strip structure corresponding to the other end of the label. After the mold is closed, the pressure strip structure can press the other end of the label tightly, and at the same time make the label subject to axial traction force to eliminate the cantilever effect on the long label, reduce the offset of the label during the glue injection process, and increase the pass rate of the product after molding. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the mold and base of the embodiment.

[0019] Figure 2 This is a frontal view structural diagram of the mold, guide rail, lower mold drive mechanism, push-pull mechanism, and ejection mechanism after the mold is opened in the embodiment.

[0020] Figure 3 This is a rear view structural diagram of the mold, guide rail, lower mold drive mechanism, push-pull mechanism, and ejection mechanism after the mold is opened in the embodiment.

[0021] Figure 4 This is a structural schematic diagram of the base, guide rail, and ejection mechanism from below in the embodiment.

[0022] Figure 5 This is a schematic diagram of the top view after the base, lower mold, and upper mold of the embodiment are separated.

[0023] Figure 6 This is a schematic diagram of the bottom support, lower mold, and upper mold after they have been separated in the embodiment.

[0024] Figure 7This is a schematic diagram from above after the upper mold, lower mold, and two side molds of the embodiment are separated.

[0025] Figure 8 This is a schematic diagram of the upper mold, lower mold, and two side molds after they have been separated, viewed from below in the embodiment.

[0026] Figure 9 This is a structural schematic diagram of the pressure strip from the bottom view of the embodiment.

[0027] Figure 10 This is a schematic diagram of the label and pressure strip limiting protrusion after the side mold is inserted into place in the embodiment.

[0028] Figure 11 After the mold is closed in the embodiment, Figure 10 A schematic diagram of the structure of the label and sealing strip at the location.

[0029] Figure 12 This is a schematic diagram of the lower mold part structure in an embodiment.

[0030] Figure 13 This is a schematic diagram of the structure of the base connecting platform, pull claw base and lower mold contact point after the side mold is inserted into place in the embodiment.

[0031] Figure 14 This is a schematic diagram of the push-pull mechanism and side mold in the embodiment.

[0032] Figure 15 yes Figure 14 A schematic diagram of the structure at point A in the middle.

[0033] Among them: 100 base support; 101 pin; 102 base support through hole; 200 Lower mold; 201 Pin through hole; 202 Plate groove; 203 Push groove; 204 Lifting hole; 205 Pressure strip limiting protrusion; 206 Base receiving groove; 207 Guide block; 300 Upper mold; 301 Fastening hole; 302 Base limiting block; 303 Pressure strip mounting groove; 400 Side mold; 401 Base connecting platform; 402 Side mold slide; 403 Side mold pin; 500 guide rail; 600 Lower die drive mechanism; 700 Push-pull mechanism; 701 Push-pull drive cylinder; 702 Telescopic rod; 703 Support plate; 704 Push-pull plate; 705 Protruding rib; 800 Ejection mechanism; 801 Lifting drive cylinder; 802 Adapter plate; 803 Ejector column; 1. Pull claw base; 1-1 Base groove; 1-2 Base inclined surface; 2. Label; 2-1 Label groove; 2-2 Label bevel; 3. Pressing strip; 3-1 Pressing strip side; 3-2 Pressing strip center; 3-3 Pressing groove; 3-4 Relief groove; 3-5 Side bevel; 4. Lifting column; 5. Push plate; 6. Stainless steel plate. Detailed Implementation

[0034] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be described clearly and completely below in conjunction with specific embodiments.

[0035] A molding process for a stainless steel plate-rubber composite pad involves placing the stainless steel plate 6 in a... Figure 1 The composite pad is obtained by compression injection molding in the mold described above. The placement method of the stainless steel plate 6 can be found in [reference needed]. Figure 7 and Figure 8 .

[0036] The specific structure of the mold in this embodiment is as follows: See Figure 5 and Figure 6 The system includes a lower mold 200, an upper mold 300, and two side molds 400 symmetrically arranged on both sides of the lower mold 200. Each side mold 400 is elongated, with side mold pins 403 at both ends facing the lower mold 200. A guide sleeve is provided on the lower mold 200 corresponding to the side mold pins 403, and the side mold pins 403 slide along the guide sleeves to guide the movement of the side molds 400 relative to the lower mold 200. Two sets of claw mechanisms are provided on each side mold 400. Each claw mechanism includes a claw base 1 and six sets of labels 2 arranged on the claw base 1. A plate groove 202 is provided on the lower mold 200 corresponding to the claw mechanism. In this embodiment, there are four sets of plate grooves 202. See details... Figure 7 In this embodiment, the processing of four products can be completed simultaneously. The stainless steel plate 6 can be placed in the plate groove 202, with the edge of the stainless steel plate 6 abutting against the side wall of the plate groove 202, forming... Figure 12 The chimerism state in the middle.

[0037] Introduction to edge mold 400: See Figure 7 and Figure 8 The side mold 400 facing the lower mold 200 has a base connecting platform 401, and the pull claw base 1 is fixed on the base connecting platform 401. See also Figure 12 The lower mold 200 is provided with a base receiving groove 206 corresponding to the base connecting platform 401. After the side mold 400 is inserted into the lower mold 200, the base connecting platform 401 is embedded in the base receiving groove 206. See also Figure 13The lower end face of the pull claw base 1 is provided with a plurality of base sliding grooves 1-1 at intervals. The lower mold 200 is provided with guide blocks 207 corresponding to the base sliding grooves 1-1. The pull claw base 1 slides along the guide blocks 207 through the base sliding grooves 1-1, which is used to guide the pull claw base 1 when the side mold 400 moves, thereby increasing the accuracy of the side mold 400 during the insertion process.

[0038] See Figure 13 The pull claw base 1 has a base inclined surface 1-2 on the side away from the lower mold 200, and the base limiting block 302 has a corresponding inclined surface structure on the base inclined surface 1-2. When the mold is closed (combined with...) Figure 6 and Figure 8 (Content of the above), the inclined structure of the base limiting block 302 abuts against the inclined surface 1-2 of the base, so that the claw base 1 tends to move toward the lower mold 200, thereby preventing the claw mechanism from moving away from the lower mold 200.

[0039] Introduction to the installation and assembly of pressure strip 3 with the upper and lower molds: See Figure 6 and Figure 8 A pressure strip 3 is provided at the middle of the upper mold 300 corresponding to the end of the label 2, and the pressure strip 3 is fixed in the pressure strip mounting groove 303 in the middle of the upper mold 300. See Figure 10 The lower mold 200 has two sets of pressure strip limiting protrusions 205 in the middle corresponding to the pressure strip 3. The pressure strip 3 has two pressure strip grooves corresponding to the two sets of pressure strip limiting protrusions 205. (See the mold closing procedure.) Figure 11 The pressure strip limiting protrusion 205 is embedded in the pressure strip groove. The inner side of the pressure strip limiting protrusion 205 abuts against the inner side of the pressure strip groove. A gap is provided between the side slope 3-5 on the outer side of the pressure strip groove and the outer side of the pressure strip limiting protrusion 205 to apply axial force to the label 2.

[0040] See Figure 10 The pressure strip limiting protrusion 205 has a strip passage groove corresponding to the strip 2. After the push-pull mechanism 700 inserts the side mold 400 into the lower mold 200, the end of the strip 2 passes through the strip passage groove and enters between the two pressure strip limiting protrusions 205.

[0041] Regarding the function of the pressure strip 3 in the embodiment on the label 2: See Figure 9 The middle part 3-2 of the pressure strip 3 is provided with a pressure groove 3-3 corresponding to the end of the label 2. The cross section of the pressure groove 3-3 corresponds to the cross section of the label 2. After the mold is closed, the pressure groove 3-3 presses the end of the label 2 onto the lower mold 200 to limit the radial displacement of the end of the label 2.

[0042] See Figure 10 and Figure 11 Two symmetrical label grooves 2-1 are provided on both sides of one end of the label strip 2. A label slope 2-2 is provided on the side of each label groove 2-1 facing the pressure strip limiting protrusion 205. After the push-pull mechanism 700 inserts the side mold 400 into the lower mold 200, the label slope 2-2 is located near the pressure strip limiting protrusion 205. A side slope 3-5 is formed on the outer side of the pressure strip groove. (See attached image) Figure 9 The side slope 3-5 is the slope structure inside the pressure strip side 3-1. The pressure strip side 3-1 is provided with a relief hole 3-4 at the position corresponding to the label groove 2-1. After the mold is closed, the side slope 3-5 on both sides of the relief hole 3-4 abuts against the label slope 2-2 to generate axial tension on the label 2, thereby reducing the axial deformation of the label 2.

[0043] This achieves radial and axial displacement of the free end of the label 2, while applying a force to the label 2 pointing towards the central axis of the lower mold 200 to overcome the cantilever effect, reduce the offset of the label 2 in the molding process, and increase the yield of the finished product.

[0044] Description of the mating relationship between the base 100 and the mold in the embodiment: The lower mold 200 is mounted on the base 100, see details. Figure 5 and Figure 6 The base support 100 has four corner pins 101. The lower mold 200 has pin through holes 201 corresponding to the pins 101. The upper mold 300 has fastening holes 301 corresponding to the pin through holes 201. The pins 101 pass through the pin through holes 201 to connect the base support 100 and the lower mold 200. The fastening holes 301 fasten to the pins 101 to guide the closing of the upper mold 300 and the lower mold 200.

[0045] Introduction to the lower die drive mechanism 600 and the push-pull mechanism 700: See details Figure 2 and Figure 3 The base 100 is slidably mounted on two opposing guide rails 500. One end of each guide rail 500 is provided with a lower mold drive mechanism 600. The lower mold drive mechanism 600 includes a lower mold drive cylinder and a telescopic rod mounted on the lower mold drive cylinder. The telescopic rod of the lower mold drive cylinder is connected to the base 100 to drive the base 100 to slide, thereby allowing the lower mold 200 to switch between the demolding station and the forming station.

[0046] See Figure 14 and Figure 15The push-pull mechanism 700 includes a push-pull drive cylinder 701 disposed on one side of the guide rail 500, a telescopic rod 702 disposed on the push-pull drive cylinder 701, a bearing plate 703 disposed at the end of the telescopic rod 702, and a push-pull plate 704 disposed on the bearing plate 703. The push-pull drive cylinder 701 adopts a hydraulic cylinder structure. The upper end face of the push-pull plate 704 is flush with the lower end face of the side mold 400, and the extension and retraction direction of the telescopic rod 702 is perpendicular to the guiding direction of the guide rail 500. A long strip of side mold groove 402 is formed on the lower end face of the side mold 400, and a protruding ridge 705 is provided on the upper end face of the push-pull plate 704 corresponding to the side mold groove 402. During the process of pushing the lower mold 200 from the forming station to the demolding station, the side mold 400 slides into place along the protrusion 705 through the side mold slide groove 402. When the push-pull plate 704 moves, it drives the side mold 400 to move through the protrusion 705.

[0047] Description of the ejection mechanism 800, base 100, and lower mold 200 related structures used for product ejection: See Figure 4 , Figure 6 and Figure 8 The lower mold 200 has a push groove 203 located within the plate groove 202, and a lifting hole 204 penetrating the lower mold 200 is provided at the bottom of the push groove 203. A push plate 5 is movably mounted within the push groove 203, and a lifting column 4 is movably mounted within the lifting hole 204, with the lifting column 4 connected to the push plate 5. A bottom support through hole 102 is provided on the bottom support 100 corresponding to the lifting hole 204.

[0048] The ejection mechanism 800 includes multiple sets of lifting drive cylinders 801 disposed between the two guide rails 500, a transition plate 802 disposed on the telescopic rods of the multiple sets of lifting drive cylinders 801, and multiple top columns 803 disposed on the transition plate 802. The top columns 803 correspond to the bottom support through hole 102. The lifting drive cylinders 801 drive the transition plate 802 to rise, so that the top columns 803 pass through the bottom support through hole 102 and lift the lifting column 4, thereby using the push plate 5 to eject the product.

[0049] In this embodiment, the edge of the push plate 5 is beveled, making it a cone with the tip pointing downwards. The corresponding push groove 203 is cone-shaped. After the push plate 5 pushes the product out, when the push plate 5 and the lifting column 4 descend under their own weight, the friction between the edge of the push groove 203 and the side wall of the push plate 5 is reduced, so that the push plate 5 and the lifting column 4 descend quickly.

[0050] The molding process steps are as follows: Ⅰ. Push the lower mold 200 after mold opening from the forming station to the mold exit station, so that the two side molds 400 are respectively connected to the two push-pull mechanisms 700; II. The push-pull mechanism 700 pulls the side mold 400 out of the lower mold 200, so that the label 2 is pulled out from the composite pad. Ⅲ, the ejection mechanism 800 below the mold ejection station ejects the composite pad from the lower mold, thereby removing the composite pad, and then the ejection mechanism 800 resets. IV. Place the stainless steel plate 6 with the adhesive coating on its upper surface into the plate groove 202; the process of applying adhesive to the stainless steel plate 6 is as follows: 1. Clean the surface oil stains; 2. Apply Kai Ke Lu Ke adhesive, in two stages: primer and top coat, and let them dry separately to complete the application of the adhesive.

[0051] V. The push-pull mechanism 700 inserts the side mold 400 into the lower mold 200, causing the label 2 to move above the stainless steel plate 6; VI. Pull the lower mold 200 back from the ejection station to the forming station to close the upper mold 300 and the lower mold 200. VII. Inject rubber compound, which is mainly composed of natural or synthetic rubber; VIII. Pressure vulcanization; IX. Mold making.

[0052] Repeat steps I through IX until all products are produced.

[0053] It should be noted that, in the above steps, when the initial stainless steel plate 6 is placed, since no product is formed, the content of step III can be omitted.

[0054] The specific steps of step VII are as follows: S1. Preheat the mold to 80-100℃, set the injection pressure to 120Mpa and the material volume delivery rate to 40cm³ / s, and inject the material at 10% of the stroke of the injection screw, so that the material slowly and slowly fills the flow channel until a small amount contacts the inside of the cavity. S2, set the injection pressure to 155Mpa and the glue volume delivery rate to 60cm³ / s, and inject glue at 50% of the stroke of the injection screw. At this time, the pressure inside the cavity is small, and most of the glue can be quickly filled into the cavity. S3, set the injection pressure to 160Mpa and the glue volume conveying rate to 70cm³ / s, and perform 30% of the injection screw stroke for injection. At this time, most of the glue has been injected into the cavity, and the pressure inside the cavity increases. The injection pressure needs to be increased to fill the cavity to a minimum. S4, set the injection pressure to 130 MPa and the material delivery rate to 40 cm³ / s, and inject the material at 10% of the injection screw stroke. At this stage, the cavity is basically filled and the internal pressure reaches its peak. It is necessary to reduce the pressure and flow rate and fill slowly to avoid excessive pressure in the cavity, which could cause the material temperature to rise too high and result in scorching.

[0055] Finally, in step VIII, the injection pressure is set to 100 MPa and the rubber volume conveying rate is 30 cm³ / s. The pressure is maintained for 1 minute to allow the rubber in the cavity to undergo initial vulcanization, preventing backflow and reducing the product density.

Claims

1. A molding process for a stainless steel sheet-rubber composite pad, wherein the stainless steel sheet is placed in a mold and injection molded to obtain the composite pad, characterized in that, The mold includes a lower mold, an upper mold, and two side molds symmetrically arranged on both sides of the lower mold. Multiple pull claw mechanisms are provided on the side molds. Each pull claw mechanism includes a pull claw base and multiple sets of labels arranged on the pull claw base. The lower mold has plate grooves corresponding to the pull claw mechanisms. The process steps are as follows: Ⅰ. Push the lower mold from the forming station to the ejection station after the mold is opened, so that the two side molds are respectively connected to the two push-pull mechanisms; II. The push-pull mechanism pulls the side mold out of the lower mold, causing the label to be pulled out of the composite pad. Ⅲ, the ejection mechanism below the mold ejection station ejects the composite pad from the lower mold to remove the composite pad, and then the ejection mechanism resets; IV. Place the stainless steel plate with the adhesive coating on its upper surface into the plate groove; V. The push-pull mechanism inserts the side mold into the lower mold, causing the label to move above the stainless steel plate; VI. Pull the lower mold back from the ejection station to the forming station and close the upper and lower molds. The side of the upper mold is provided with a base limiting block corresponding to the pull claw base, which is used to limit the horizontal displacement of the pull claw base after the mold is closed. The middle of the upper mold is provided with a pressure strip corresponding to the end of the label, which is used to limit the axial and radial displacement of the label after the mold is closed. VII. Inject the adhesive material; VIII. Pressure vulcanization; IX. Mold making.

2. The molding process of a stainless steel plate-rubber composite pad according to claim 1, characterized in that, A base connecting platform is provided on the side of the side mold facing the lower mold, and the pull claw base is fixed on the base connecting platform; a base inclined surface is provided on the side of the pull claw base away from the lower mold, and a corresponding inclined surface structure is provided on the base limiting block. When the mold is closed, the inclined surface structure of the base limiting block abuts against the base inclined surface, so that the pull claw base tends to move towards the lower mold.

3. The molding process of a stainless steel plate-rubber composite pad according to claim 1, characterized in that, The lower mold has two sets of pressure bar limiting protrusions in the middle corresponding to the pressure bar, and two pressure bar grooves are opened on the pressure bar corresponding to the two sets of pressure bar limiting protrusions. When the mold is closed, the pressure bar limiting protrusions are embedded in the pressure bar grooves. The pressure strip limiting protrusion has a strip passage groove corresponding to the strip. After step V is completed, the end of the strip passes through the strip passage groove and enters between the two pressure strip limiting protrusions. The middle part of the pressure strip has a pressure groove corresponding to the end of the label. The cross-section of the pressure groove corresponds to the cross-section of the label. After the mold is closed, the pressure groove presses the end of the label onto the lower mold to limit the radial displacement of the end of the label.

4. The molding process of a stainless steel plate-rubber composite pad according to claim 3, characterized in that, Two label grooves are symmetrically arranged on both sides of one end of the label. A label slope is provided on the side of the label groove facing the pressure strip limiting protrusion. After step V is completed, the label slope is located near the pressure strip limiting protrusion. The outer side of the groove of the pressure strip forms a side slope. After the mold is closed, the side slope abuts against the slope of the label to generate an axial tensile force on the label, thereby reducing the axial deformation of the label.

5. The molding process of a stainless steel plate-rubber composite pad according to claim 1, characterized in that, The lower mold is mounted on the base, and the base is slidably mounted on two opposing guide rails. A lower mold driving mechanism is provided at one end of each of the two guide rails. The lower mold driving mechanism is connected to the base to drive the base to slide, thereby allowing the lower mold to switch between the demolding station and the forming station.

6. The molding process of a stainless steel plate-rubber composite pad according to claim 5, characterized in that, The push-pull mechanism includes a push-pull drive cylinder disposed on one side of the guide rail, a telescopic rod disposed on the push-pull drive cylinder, a bearing plate disposed at the end of the telescopic rod, and a push-pull plate disposed on the bearing plate. The upper end face of the push-pull plate is flush with the lower end face of the side mold, and the extension and retraction direction of the telescopic rod is perpendicular to the guiding direction of the guide rail. The lower end face of the side mold is provided with a long side mold groove, and the upper end face of the push-pull plate is provided with a protruding ridge corresponding to the side mold groove; during the process of the lower mold being pushed from the forming station to the demolding station, the side mold slides into place along the protruding ridge through the side mold groove, and the push-pull plate moves by driving the side mold to move through the protruding ridge.

7. The molding process of a stainless steel plate-rubber composite pad according to claim 5, characterized in that, The lower mold has a push groove in the plate groove, and a lifting hole through the lower mold is provided at the bottom of the push groove; a push plate is movably installed in the push groove, and a lifting column is movably installed in the lifting hole, and the lifting column is connected to the push plate. The base has a through hole corresponding to the lifting hole.

8. The molding process of a stainless steel plate-rubber composite pad according to claim 7, characterized in that, The ejection mechanism includes multiple sets of lifting drive cylinders disposed between the two guide rails, a transition plate disposed on the telescopic rods of the multiple sets of lifting drive cylinders, and multiple top columns disposed on the transition plate, wherein the top columns correspond to the through holes of the bottom support; The lifting drive cylinder drives the adapter plate to rise, so that the top column passes through the bottom support through hole and lifts the lifting column, and then the push plate pushes the product out.

9. The molding process of a stainless steel plate-rubber composite pad according to claim 1, characterized in that, The specific steps of step VII are as follows: S1. Preheat the mold to 80-100℃, set the injection pressure to 120Mpa and the material volume delivery rate to 40cm³ / s, and inject the material at 10% of the stroke of the injection screw, so that the material slowly and slowly fills the flow channel until a small amount contacts the inside of the cavity. S2, set the injection pressure to 155Mpa and the glue volume delivery rate to 60cm³ / s, and inject glue at 50% of the stroke of the injection screw to fill most of the glue into the cavity; S3, set the injection pressure to 160Mpa and the glue volume delivery rate to 70cm³ / s, and inject glue to 30% of the injection screw stroke to basically fill the cavity; S4, set the injection pressure to 130Mpa and the glue volume delivery rate to 40cm³ / s, inject glue at 10% of the injection screw stroke, and slowly fill the cavity until the glue is completely filled.

10. The molding process of a stainless steel plate-rubber composite pad according to claim 1, characterized in that, In step VIII, the injection pressure is set to 100 MPa, the rubber volume conveying rate is 30 cm³ / s, and the pressure is maintained for 1 minute to allow the rubber in the cavity to undergo initial vulcanization and prevent backflow.

Citation Information

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