Mirror making mechanism
By creating a tiny gap between the male and female molds through the lens-making mechanism, and utilizing the difference in cohesive and adhesive forces of the monomers, the problem of air bubbles in the injection molding process is solved, thereby improving the lens qualification rate.
Patent Information
- Application Number
- CN202423260952.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-12-27
AI Technical Summary
In existing injection molding processes, air bubbles are prone to appear inside the lenses, affecting the yield rate.
The mirror-making mechanism uses a pre-pressed male and female mold to form a tiny gap, and utilizes the difference in cohesion and adhesion of the monomers to gradually expel the air in the gap, thus avoiding the formation of air bubbles.
This improved the lens pass rate, reduced the formation of air bubbles, and enhanced product quality.
Smart Images

Figure CN223558952U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of optical lens forming, in particular to a lens manufacturing mechanism. BACKGROUND
[0002] Contact lenses belong to medical devices, and its main function is to correct the refractive errors of the human eye, and its production process is constantly iterating, from the most traditional turning process to injection molding process and rotary molding process.
[0003] The injection molding process is to place the liquid contact lens raw material monomer between two molds to make it polymerize and fix into a suitable shape; after the mold is removed, the edge is ground and polished, and then the lens is soaked in warm water to soften, thereby completing the manufacture of the contact lens. In the existing injection molding process, when the two molds are closed, a certain amount of bubbles will appear, affecting the qualified rate of the lens. CONTENT OF THE UTILITY MODEL
[0004] The purpose of the embodiment of the present application is to provide a lens manufacturing mechanism to alleviate the technical problem of bubbles in the lens in the prior art.
[0005] In order to solve the above technical problems, the technical scheme provided by the present application is:
[0006] The lens manufacturing mechanism provided by the present application comprises a carrier, a material taking assembly, a first driving assembly and a plurality of glue injection assemblies arranged on one side or both sides of the carrier for glue injection; the carrier has a plurality of bearing grooves for placing female molds, and the positions and number of the bearing grooves correspond to the positions and number of the glue injection assemblies;
[0007] The material taking assembly comprises a female mold material taking piece for sucking the female mold and a male mold material taking piece for sucking the male mold, and the first driving assembly drives the female mold material taking piece and the male mold material taking piece to move in sequence to place the female mold into the bearing groove and to pre-press and press the male mold on the female mold. The male and female molds are pre-pressed first, then the monomer is injected, and then the male and female molds are completely pressed. Pre-pressing the male mold on the female mold makes the gap between the male and female molds very small, and the air content in the gap is very small; the glue injection assembly is close to the gap between the male and female molds, and the glue injection assembly injects the monomer into the female mold. Due to the difference between the adhesion between the monomer and the male and female molds and the cohesion of the monomer itself, the monomer will gradually spread to the other side from one side of the gap against the gravity, i.e. capillary action; in this process, the little air in the gap is gradually discharged, avoiding the problem of bubbles in the contact lens.
[0008] Further, the lens manufacturing mechanism further comprises a second driving assembly, the glue injection assembly comprises a support frame and an injection head, and the injection head is installed on the support frame.
[0009] The second driving assembly is connected with the support frame of the glue injection assembly on the same side of the carrier to drive the injection head to extend into the female mold.
[0010] The support frame is used to support the injection head, and the second driving assembly is used to provide power for the support frame, so that the injection head can extend into the female mold.
[0011] Further, the second driving assembly comprises a first support plate, a horizontal driving member, an inclined driving member and a second support plate.
[0012] The first support plate is located on one side of the carrier, and the horizontal driving member is connected with the first support plate to drive the first support plate to move towards or away from the carrier.
[0013] The second support plate is above the first support plate, and the second support plate is arranged at an angle with the first support plate. The inclined driving member is installed on the first support plate through an adjusting assembly and is in transmission connection with the second support plate to drive the second support plate to move towards or away from the carrier.
[0014] The support frame is installed on the second support plate.
[0015] The horizontal driving member enables the injection head of the glue injection assembly to move towards or away from the carrier in the horizontal direction. The inclined driving member enables the injection head of the glue injection assembly to move towards or away from the carrier in the inclined direction of the second support plate, thereby adjusting the distance between the injection head and the carrier in the vertical direction and making the injection angle more accurate.
[0016] Further, the adjusting assembly comprises a third support plate, a base and an adjusting plate. The base is adjustably connected with the first support plate through a first adjusting table, and the adjusting plate is adjustably connected with the base.
[0017] The third support plate is adjustably connected with the adjusting plate through a second adjusting table and is parallel to the second support plate. The inclined driving member is installed on the third support plate.
[0018] The initial position of the injection head is adjusted through the first adjusting table and the second adjusting table. The first adjusting table and the second adjusting table cooperate to adjust the position of the injection head in the horizontal direction, so that the injection head can correctly and stably enter the female mold.
[0019] Further, the base is provided with an arc-shaped groove, the adjusting plate is provided with an adjusting hole, and a locking member passes through the arc-shaped groove and is connected with the adjusting hole. The arc-shaped groove and the adjusting hole are used to adjust the position of the adjusting plate relative to the base.
[0020] Further, the support frame and the second support plate are connected through a third adjustable connection.
[0021] Further, the male mold material taking member and the female mold material taking member each include a mounting block and a plurality of contact heads, the mounting block is connected with the first driving assembly, and each of the plurality of contact heads is mounted on the mounting block.
[0022] The positions and the number of the contact heads correspond to the positions and the number of the bearing grooves.
[0023] The contact heads are used for sucking the male mold or the female mold, and the mounting blocks are used for supporting the contact heads.
[0024] Further, the contact heads of the male mold material taking member are movably connected with the mounting block, so that the male mold is prevented from being damaged by being pressed on the female mold when the male mold material taking member and the female mold material taking member are pressed downward.
[0025] Further, the male mold material taking member further includes an elastic member, one end of the elastic member is connected with the mounting block, and the other end of the elastic member is connected with the contact head.
[0026] Further, the male mold material taking member further includes a guide sleeve, the guide sleeve is mounted on the mounting block.
[0027] The contact head includes a contact head body and a suction rod, the suction rod is connected with the contact head body, and the contact head body is provided with a limiting protrusion.
[0028] The suction rod is sequentially inserted into the elastic member and the mounting block and is slidably connected with the mounting block, one end of the elastic member is connected with the mounting block, the other end of the elastic member is connected with the limiting protrusion, and the guide sleeve is arranged around the outer periphery of the elastic member. The guide sleeve is used for guiding the elastic member.
[0029] Based on the above technical solutions, the technical effects achieved by the utility model are analyzed as follows:
[0030] The mirror manufacturing mechanism comprises a carrier, a material taking assembly, a first driving assembly and a plurality of glue injection assemblies arranged on one side or both sides of the carrier; the carrier is provided with a plurality of bearing grooves for placing a female mold, and the positions and quantity of the bearing grooves correspond to those of the glue injection assemblies; the material taking assembly comprises a female mold material taking piece for sucking the female mold and a male mold material taking piece for sucking the male mold; the first driving assembly drives the female mold material taking piece and the male mold material taking piece to move in sequence to place the female mold into the bearing groove and to pre-press and press the male mold on the female mold. The carrier is provided with the bearing groove for placing the female mold and providing support and fixation for the female mold. The positions and quantity of the bearing grooves correspond to those of the glue injection assemblies, so that the glue injection assemblies can inject monomers into the female mold placed in the bearing groove. The material taking assembly is connected with the first driving assembly to realize the movement and lifting of the material taking assembly, and then the female mold is placed into the bearing groove and the male mold is pre-pressed and pressed on the female mold. The male mold material taking piece is used for sucking the male mold, and the female mold material taking piece is used for sucking the female mold.
[0031] The production process of the mirror manufacturing mechanism is as follows: the male mold material taking piece sucks the male mold, and the female mold material taking piece sucks the female mold; the first driving assembly drives the female mold material taking piece to move above the carrier and then to descend, so that the female mold is placed in the bearing groove of the carrier, and the female mold material taking piece releases the female mold; the first driving assembly drives the female mold material taking piece to ascend and drives the male mold material taking piece to move above the carrier and then to descend, so that the male mold is pre-pressed on the female mold, at this time, a very small gap is formed between the male mold and the female mold, and the glue injection assembly injects monomers into the female mold; the very small gap between the male mold and the female mold produces capillary action, so that the monomers rise in the gap due to the difference between the cohesive force and the adhesive force and overcome the gravity, thereby solving the problem of bubbles in the traditional injection molding process and improving the product qualification rate; the first driving assembly drives the male mold material taking piece to continue to descend, so that the male mold is pressed on the female mold.
[0032] The principle of solving the bubble anomaly in the injection molding process of the mirror manufacturing mechanism is as follows: the male mold is pre-pressed on the female mold, and then monomers are injected, and then the male mold is completely pressed on the female mold. The pre-pressing of the male mold on the female mold makes the gap between the male mold and the female mold very small, and the air content in the gap is very small; the glue injection assembly is close to the gap between the male mold and the female mold, and the glue injection assembly injects monomers into the female mold, and due to the difference between the adhesive force between the monomers and the male mold and the female mold and the cohesive force of the monomers, the monomers gradually spread to the other side from one side of the gap, that is, capillary action; in this process, the little air in the gap is gradually discharged; and due to the small gap, even if there is a bubble, the diameter of the bubble is very small. BRIEF DESCRIPTION OF DRAWINGS
[0033] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments of the present application. It should be understood that the following drawings only show some of the embodiments of the present application, and therefore should not be regarded as a limitation to the scope, and for those skilled in the art, other related drawings can also be obtained without paying creative labor on the basis of the drawings.
[0034] Figure 1 Structure diagram of the mirror manufacturing mechanism provided by the embodiments of the present application Figure 1 ;
[0035] Figure 2 Structure diagram of the mirror manufacturing mechanism provided by the embodiments of the present application Figure 2 ;
[0036] Figure 3 Structure diagram of the second driving assembly in the mirror manufacturing mechanism provided by the embodiments of the present application
[0037] Figure 4 Structure diagram of the female mold material taking part in the mirror manufacturing mechanism provided by the embodiments of the present application
[0038] Figure 5 Structure diagram of the male mold material taking part in the mirror manufacturing mechanism provided by the embodiments of the present application
[0039] Figure:
[0040] 100-carrier; 110-bearing groove
[0041] 200-female mold material taking part
[0042] 300-male mold material taking part; 310-mounting block; 320-contact head; 330-elastic part; 340-guide sleeve; 341-connection protrusion; 321-contact head body; 322-limit protrusion; 323-suction rod
[0043] 400-first driving assembly; 410-translation driving part; 420-first lifting driving part; 430-second lifting driving part; 440-first bearing plate; 450-second bearing plate
[0044] 500-gel injection assembly; 510-support frame; 520-injection head
[0045] 600-second driving assembly; 610-first support plate; 620-horizontal driving part; 630-inclined driving part; 640-second support plate; 650-third support plate; 660-base; 661-arc-shaped groove; 670-adjusting plate; 671-top plate; 672-adjusting hole; 681-first adjusting table; 682-second adjusting table; 683-third adjusting table; 690-mounting seat
[0046] 700 - third drive assembly. DETAILED DESCRIPTION
[0047] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the following will be combined with the accompanying drawings for the embodiments of the present application to make a clear and complete description of the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. The components of the embodiments of the present application described and shown in the accompanying drawings can be arranged and designed in various different configurations.
[0048] In the description of the present application, it should be noted that the positions or location relations indicated by the terms “inner”, “outer” and the like are based on the positions or location relations shown in the drawings, or the positions or location relations in which the products of the present application are usually placed, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the indicated devices or elements must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms “first”, “second”, and the like are only used for differentiation in description, and cannot be understood as indicating or implying relative importance.
[0049] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms “set”, “connected” should be understood broadly, for example, can be fixedly connected, can be detachably connected, or integrally connected; can be directly connected, or indirectly connected through an intermediate medium, can be the communication inside two elements. For those skilled in the art, the specific meanings of the above terms in the present application can be understood according to the specific circumstances.
[0050] Referring to Figure 1 and Figure 2 The mirror manufacturing mechanism provided by the embodiments of the present application comprises a carrier 100, a material taking assembly, a first drive assembly 400, and a plurality of glue injection assemblies 500 arranged on one side or both sides of the carrier 100 for glue injection; the carrier 100 is provided with a plurality of bearing grooves 110 for placing a female mold, the positions and the number of the bearing grooves 110 correspond to the positions and the number of the glue injection assemblies 500; the material taking assembly comprises a female mold material taking piece 200 for sucking the female mold and a male mold material taking piece 300 for sucking the male mold, and the first drive assembly 400 drives the female mold material taking piece 200 and the male mold material taking piece 300 to move in sequence to realize the female mold being placed into the bearing groove 110 and the male mold being pre-pressed and pressed on the female mold.
[0051] Specifically, the male mold and the female mold are both components in the existing injection molding process, and the two molds are pressed against each other to form the contact lens. The specific structure of the male mold and the female mold is not limited herein. Further, when the male mold is pre-pressed against the female mold, a very small gap is formed between the male mold and the female mold, and the gap at the center is about 0.5-2 mm. Preferably, the gap at the center is 1 mm.
[0052] The carrier 100 is provided with a plurality of carrying grooves 110 for placing the female molds and providing support and fixation for the female molds. The positions and the number of the carrying grooves 110 correspond to the positions and the number of the glue injection assemblies 500, so that the glue injection assemblies 500 can inject the monomer into the female molds placed in the carrying grooves 110. The material taking assembly is connected with the first driving assembly 400, so that the material taking assembly can move and be lifted, and the female molds can be placed in the carrying grooves 110 and the male mold can be pre-pressed against and pressed against the female mold. The male mold taking member 300 is used for sucking the male mold, and the female mold taking member 200 is used for sucking the female mold.
[0053] The production process of the lens making mechanism is as follows: the male mold taking member 300 sucks the male mold, and the female mold taking member 200 sucks the female mold; the first driving assembly 400 drives the female mold taking member 200 to move to the upper side of the carrier 100 and then to be lowered, so that the female mold is placed in the carrying groove 110 of the carrier 100, and the female mold taking member 200 releases the female mold; the first driving assembly 400 drives the female mold taking member 200 to be lifted and drives the male mold taking member 300 to move to the upper side of the carrier 100 and then to be lowered, so that the male mold is pre-pressed against the female mold, at this time, a very small gap is formed between the male mold and the female mold, and the glue injection assembly 500 injects the monomer into the female mold; the very small gap between the male mold and the female mold produces capillary action, so that the monomer rises in the gap due to the difference between the cohesive force and the adhesive force and overcomes the gravity, thereby solving the problem of air bubbles in the traditional injection molding process and improving the qualified rate of products; the first driving assembly 400 drives the male mold taking member 300 to be continuously lowered, so that the male mold is pressed against the female mold.
[0054] The principle of solving the air bubble problem in the injection molding process by the lens making mechanism is as follows: the male mold is pre-pressed against the female mold, and then the monomer is injected, and then the male mold is completely pressed against the female mold. The pre-pressing of the male mold against the female mold forms a very small gap between the male mold and the female mold, and the air content in the gap is very small; the glue injection assembly 500 is close to the gap between the male mold and the female mold, and the glue injection assembly 500 injects the monomer into the female mold, and due to the difference between the adhesive force between the monomer and the male mold and the female mold and the cohesive force of the monomer, the monomer gradually spreads to the other side from one side of the gap, i.e. capillary action; in this process, the little air in the gap is gradually discharged; and due to the small gap, even if there are air bubbles, the diameter of the air bubbles is very small.
[0055] The shape and structure of the lens making mechanism are described in detail as follows:
[0056] In the optional solution of the embodiment of the utility model, the mirror manufacturing mechanism further comprises a second driving assembly 600, the glue injection assembly 500 comprises a support frame 510 and an injection head 520, the injection head 520 is installed on the support frame 510; the second driving assembly 600 is connected with the support frame 510 of the glue injection assembly 500 located on the same side of the carrier 100 to drive the injection head 520 to extend into the female mold.
[0057] Specifically, in the embodiment, the support frame 510 is obliquely arranged, the injection head 520 is installed on the bottom of the support frame 510, and the injection head 520 is conveniently extended into the female mold.
[0058] The support frame 510 is used for supporting the injection head 520; and the second driving assembly 600 is used for providing power for the support frame 510, so that the injection head 520 can be extended into the female mold.
[0059] In the optional solution of the embodiment of the utility model, the second driving assembly 600 comprises a first support plate 610, a horizontal driving part 620, an inclined driving part 630 and a second support plate 640; the first support plate 610 is located on one side of the carrier 100, the horizontal driving part 620 is connected with the first support plate 610 to drive the first support plate 610 to move towards the direction close to or away from the carrier 100; the second support plate 640 is above the first support plate 610, and the second support plate 640 is arranged at an angle with the first support plate 610, the inclined driving part 630 is installed on the first support plate 610 through an adjusting assembly and is drivingly connected with the second support plate 640 to drive the second support plate 640 to move towards the direction close to or away from the carrier 100; and the support frame 510 is installed on the second support plate 640.
[0060] Specifically, referring to Figure 3The second driving assembly 600 further comprises a mounting base 690 located at one side of the carrier 100, and a supporting surface of the mounting base 690 is horizontally arranged; the horizontal driving member 620 is mounted on the supporting surface of the mounting base 690, and a driving end of the horizontal driving member 620 is connected with the first supporting plate 610 to drive the first supporting plate 610 to reciprocate in the horizontal direction; the second supporting plate 640 is gradually inclined towards the carrier 100 from top to bottom, a driving end of the inclined driving member 630 is connected with the second supporting plate 640 to drive the second supporting plate 640 to reciprocate in the inclined direction of the second supporting plate 640, thereby driving the glue injection assembly 500 to reciprocate in the inclined direction of the second supporting plate 640. Further, the inclined driving member 630 is arranged in parallel with the second supporting plate 640 to stably drive the second supporting plate 640 to move. The horizontal driving member 620 and the inclined driving member 630 can be arranged as air cylinders; of course, the horizontal driving member 620 and the inclined driving member 630 can be arranged as other driving mechanisms, such as motors; or, the horizontal driving member 620 and the inclined driving member 630 can be arranged as different driving mechanisms, which should be within the protection scope of the embodiments of the utility model.
[0061] The second supporting plate 640 is used for supporting and fixing the supporting frame 510 of the glue injection assembly 500; the horizontal driving member 620 drives the first supporting plate 610 to move horizontally, the first supporting plate 610 drives the inclined driving member 630 to move horizontally, the inclined driving member 630 drives the second supporting plate 640 to move horizontally, thereby realizing that the injection head 520 of the glue injection assembly 500 approaches or moves away from the carrier 100 in the horizontal direction. The inclined driving member 630 drives the second supporting plate 640 to move in the inclined direction of the second supporting plate 640, thereby realizing that the injection head 520 of the glue injection assembly 500 approaches or moves away from the carrier 100 in the inclined direction of the second supporting plate 640, and further realizing that the distance between the injection head 520 and the carrier 100 in the vertical direction is adjusted, so that the injection angle is more accurate.
[0062] In the optional scheme of the embodiments of the utility model, the adjusting assembly comprises a third supporting plate 650, a base 660 and an adjusting plate 670, the base 660 is adjustably connected with the first supporting plate 610 through a first adjusting table 681, and the adjusting plate 670 is adjustably connected with the base 660; the third supporting plate 650 is adjustably connected with the adjusting plate 670 through a second adjusting table 682, is parallel with the second supporting plate 640, and the inclined driving member 630 is mounted on the third supporting plate 650.
[0063] Specifically, referring to Figure 3The top of the adjusting plate 670 is provided with a top plate 671, the second adjusting table 682 is installed on the top plate 671, and the top plate 671 is connected with the adjusting plate 670 at an angle, so that the third supporting plate 650 is parallel to the second supporting plate 640, and the inclination driving part 630 is arranged in an inclined mode.
[0064] The initial position of the injection head 520 is adjusted by the first adjusting table 681 and the second adjusting table 682; the first adjusting table 681 and the second adjusting table 682 cooperate to adjust the position of the injection head 520 in the horizontal direction, so that the injection head 520 can enter the female mold correctly and stably.
[0065] In an optional scheme of the embodiment of the utility model, the base 660 is provided with an arc-shaped groove 661, and the adjusting plate 670 is provided with an adjusting hole 672, and the locking part is connected with the adjusting hole 672 through the arc-shaped groove 661.
[0066] Specifically, one end of the adjusting plate 670 is rotationally connected with the base 660 through a rotating shaft, and the other end is provided with the adjusting hole 672; when the locking part is not locked, the adjusting plate 670 can rotate relative to the base 660 around the rotating shaft, and the range of rotation is controlled by the size of the arc-shaped groove 661; when the adjusting plate 670 is adjusted to the appropriate position, the locking part is locked.
[0067] The arc-shaped groove 661 and the adjusting hole 672 are used to adjust the position of the adjusting plate 670 relative to the base 660.
[0068] In an optional scheme of the embodiment of the utility model, the supporting frame 510 is adjustably connected with the second supporting plate 640 through the third adjusting table 683.
[0069] Specifically, the third adjusting table 683 is set as a micrometer adjusting table. Further, the second supporting plate 640, the inclination driving part 630, the adjusting plate 670 and the base 660 are all provided with a plurality of ones; the plurality of bases 660 are all connected with the first supporting plate 610 through a plurality of first adjusting tables 681; the plurality of adjusting plates 670 are connected with the plurality of bases 660 in one-to-one correspondence; the plurality of inclination driving parts 630 are connected with the plurality of adjusting plates 670 through a plurality of second adjusting tables 682; the plurality of second supporting plates 640 are connected with the plurality of inclination driving parts 630 in one-to-one correspondence; each second supporting plate 640 is provided with the glue injection assembly 500 installed thereon through the third adjusting table 683. The inclination driving part 630 is provided with a plurality of ones, so as to realize the independent regulation and control of each glue injection assembly 500.
[0070] The initial position of the injection head 520 is adjusted by the first adjusting table 681, the second adjusting table 682 and the third adjusting table 683, and the third adjusting table 683 is used to adjust the limit position of the inclination driving part 630, so that the injection head 520 in the extended state can be accurately inserted into the female mold.
[0071] In the optional scheme of the embodiment of the utility model, the first driving assembly 400 includes the translation driving part 410, the first lifting driving part 420 and the second lifting driving part 430, the driving end of the translation driving part 410 is connected with the male die material taking part 300 and the female die material taking part 200 to drive the male die material taking part 300 and the female die material taking part 200 to move along the width direction of the carrier 100, the driving end of the first lifting driving part 420 is connected with the male die material taking part 300 to drive the male die material taking part 300 to lift, and the driving end of the second lifting driving part 430 is connected with the female die material taking part 200 to drive the female die material taking part 200 to lift.
[0072] Specifically, referring to Figure 2 , the translation driving part 410 drives the male die material taking part 300 and the female die material taking part 200 to be opposite to the last work station of the mirror making mechanism, the first lifting driving part 420 drives the male die material taking part 300 to lower to adsorb the male die located in the last work station, then the first lifting driving part 420 drives the male die material taking part 300 to rise, at the same time, the second lifting driving part 430 drives the female die material taking part 200 to lower to adsorb the female die located in the last work station, then the second lifting driving part 430 drives the female die material taking part 200 to rise, the translation driving part 410 drives the male die material taking part 300 and the female die material taking part 200 to translate to the female die material taking part 200 opposite to the carrier 100, the second lifting driving part 430 drives the female die material taking part 200 to lower to make the female die be located in the carrier 100, then the second lifting driving part 430 drives the female die material taking part 200 to rise, the translation driving part 410 drives the male die material taking part 300 and the female die material taking part 200 to translate to the male die material taking part 300 opposite to the carrier 100, the first lifting driving part 420 drives the male die material taking part 300 to lower to make the male die pre-press and press in the female die. Further, the first lifting driving part 420 and the second lifting driving part 430 are arranged as air cylinders or motors, and the translation driving part 410 is arranged as an air cylinder or a motor; in addition, the translation driving part 410 is installed on the first bearing plate 440, the first lifting driving part 420 and the second lifting driving part 430 are both installed on the second bearing plate 450, and the driving end penetrates through the first bearing plate 440 and is connected with the male die material taking part 300 and the female die material taking part 200, the translation driving part 410 is in transmission connection with the second bearing plate 450 to realize that the translation driving part 410 drives the male die material taking part 300 and the female die material taking part 200 simultaneously.
[0073] The first driving assembly 400 is used to drive the male die material taking part 300 and the female die material taking part 200 to move.
[0074] In the optional scheme of the embodiment of the utility model, the carrier 100 is connected with the third driving assembly 700, and the third driving assembly 700 drives the carrier 100 to move along the length direction of the carrier 100.
[0075] Specifically, the third driving assembly 700 comprises a motor or a cylinder.
[0076] The third driving assembly 700 is used for transferring the carrier 100 to the next process.
[0077] In the optional scheme of the utility model embodiment, referring to Figure 4 and Figure 5 The male mold material taking part 300 and the female mold material taking part 200 both comprise a mounting block 310 and a plurality of contact heads 320, the mounting block 310 is connected with the first driving assembly 400, and the plurality of contact heads 320 are all mounted on the mounting block 310; the positions and the quantity of the contact heads 320 all correspond to the positions and the quantity of the bearing grooves 110 one by one.
[0078] Specifically, the mounting block 310 is provided with a gas path in communication with the contact head 320, so as to realize the adjustment of whether the contact head 320 has suction force, and the gas path can be designed according to actual requirements, which is not limited in the embodiment.
[0079] The contact head 320 realizes the suction of the male mold or the female mold; and the mounting block 310 realizes the supporting of the contact head 320.
[0080] In the optional scheme of the utility model embodiment, the contact head 320 of the male mold material taking part 300 is movably connected with the mounting block 310.
[0081] Specifically, the movable connection means that when the contact head 320 is subjected to pressure, the contact head 320 can retract to avoid.
[0082] The movable connection of the contact head 320 of the male mold material taking part 300 with the mounting block 310 avoids that the male mold is pressed on the female mold when the male and female material taking parts are pressed down, and the material is damaged.
[0083] In the optional scheme of the utility model embodiment, the male mold material taking part 300 further comprises an elastic part 330, one end of the elastic part 330 is connected with the mounting block 310, and the other end is connected with the contact head 320.
[0084] Specifically, referring to Figure 5 The elastic part 330 is a spring, one end of the spring is connected with the mounting block 310, and the other end is connected with the contact head 320, so as to realize the connection of the contact head 320 with the mounting block 310, and when the contact head 320 is subjected to pressure, the spring can be deformed to play a role of avoiding and buffering. When the contact head 320 is in a normal state, the spring is slightly stretched under the gravity of the contact head 320; when the contact head 320 is lowered to drive the male mold to contact the female mold, if the lowering distance is too large, the pressure of the male mold will be transmitted to the contact head 320, the contact head 320 transmits the pressure to the spring, the spring is compressed and deformed to play a role of buffering, so as to avoid damaging the material.
[0085] The contact head 320 is movably connected with the mounting block 310 through the elastic member 330, and the elastic member 330 plays a buffering role.
[0086] In the optional scheme of the embodiment of the utility model, the male mold material taking part 300 further comprises a guide sleeve 340, the guide sleeve 340 is installed in the mounting block 310; the contact head 320 comprises a contact head main body 321 and a suction rod 323, the suction rod 323 is connected with the contact head main body 321, and the contact head main body 321 is provided with a limiting protrusion 322; the suction rod 323 is sequentially inserted into the elastic member 330 and the mounting block 310 and is slidably connected with the mounting block 310, one end of the elastic member 330 is connected with the mounting block 310, the other end is connected with the limiting protrusion 322, and the guide sleeve 340 is arranged on the outer periphery of the elastic member 330.
[0087] Specifically, referring to Figure 5 The guide sleeve 340 has a through hole, and the outer wall is provided with a connecting protrusion 341; the connecting protrusion 341 is connected with the lower surface of the mounting block 310 through a fastener. The fastener is a screw or a rivet. Further, the female mold material taking part 200 can be provided with the same structure as the male mold material taking part 300.
[0088] The limiting protrusion 322 facilitates the installation of the elastic member 330, and the guide sleeve 340 realizes the guiding effect on the elastic member 330.
[0089] It should be noted that the features in the embodiments of the present application can be combined with each other without conflict.
[0090] The above only describes the preferred embodiments of the present application and is not used to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A mirror-making mechanism, characterized in that, include: The carrier (100), the material handling assembly, the first drive assembly (400), and a plurality of glue injection assemblies (500) arranged on one or both sides of the carrier (100) for glue injection; the carrier (100) has a plurality of support grooves (110) for placing the master mold, and the position and number of the support grooves (110) correspond to the position and number of the glue injection assemblies (500); The material handling assembly includes a female mold material handling component (200) for picking up the female mold and a male mold material handling component (300) for picking up the male mold. The first driving component (400) drives the female mold material handling component (200) and the male mold material handling component (300) to move sequentially to place the female mold into the bearing groove (110) and to pre-press and press the male mold onto the female mold.
2. The mirror-making mechanism according to claim 1, characterized in that, The mirror-making mechanism further includes a second drive assembly (600), and the glue injection assembly (500) includes a support frame (510) and an injection head (520), with the injection head (520) mounted on the support frame (510). The second drive assembly (600) is connected to the support frame (510) of the glue injection assembly (500) located on the same side of the carrier (100) to drive the injection head (520) to extend into the mold.
3. The mirror-making mechanism according to claim 2, characterized in that, The second drive assembly (600) includes a first support plate (610), a horizontal drive member (620), a tilt drive member (630), and a second support plate (640); The first support plate (610) is located on one side of the vehicle (100), and the horizontal drive (620) is connected to the first support plate (610) to drive the first support plate (610) to move toward or away from the vehicle (100). The second support plate (640) is above the first support plate (610), and the second support plate (640) and the first support plate (610) are arranged at an angle. The tilting drive (630) is installed on the first support plate (610) through an adjustment assembly and is connected to the second support plate (640) in a transmission manner to drive the second support plate (640) to move towards or away from the carrier (100). The support frame (510) is mounted on the second support plate (640).
4. The mirror-making mechanism according to claim 3, characterized in that, The adjustment assembly includes a third support plate (650), a base (660), and an adjustment plate (670). The base (660) is adjustablely connected to the first support plate (610) via a first adjustment platform (681), and the adjustment plate (670) is adjustablely connected to the base (660). The third support plate (650) is adjustablely connected to the adjustment plate (670) via the second adjustment platform (682) and is parallel to the second support plate (640). The tilting drive (630) is mounted on the third support plate (650).
5. The mirror-making mechanism according to claim 4, characterized in that, The base (660) is provided with an arc-shaped groove (661), the adjusting plate (670) is provided with an adjusting hole (672), and the locking member passes through the arc-shaped groove (661) and is connected to the adjusting hole (672).
6. The mirror-making mechanism according to claim 3, characterized in that, The support frame (510) and the second support plate (640) are adjustablely connected via a third adjustment platform (683).
7. The mirror-making mechanism according to claim 1, characterized in that, Both the male mold take-up component (300) and the female mold take-up component (200) include a mounting block (310) and a plurality of contact heads (320). The mounting block (310) is connected to the first drive assembly (400), and the plurality of contact heads (320) are mounted on the mounting block (310). The position and number of the contact heads (320) correspond one-to-one with the position and number of the bearing grooves (110).
8. The mirror-making mechanism according to claim 7, characterized in that, The contact head (320) of the mold take-up part (300) is movably connected to the mounting block (310).
9. The mirror-making mechanism according to claim 8, characterized in that, The mold feeding component (300) also includes an elastic component (330), one end of which is connected to the mounting block (310) and the other end is connected to the contact head (320).
10. The mirror-making mechanism according to claim 9, characterized in that, The mold take-up component (300) further includes a guide sleeve (340), which is mounted on the mounting block (310); The contact head (320) includes a contact head body (321) and a suction rod (323), the suction rod (323) is connected to the contact head body (321), and the contact head body (321) is provided with a limiting protrusion (322); The suction rod (323) extends into the elastic member (330) and the mounting block (310) in sequence and slides with the mounting block (310). One end of the elastic member (330) is connected to the mounting block (310), and the other end is connected to the limiting protrusion (322). The guide sleeve (340) surrounds the outer periphery of the elastic member (330).