Shaping tool
By designing a glass support mechanism and a manual shaping mechanism for the shaping fixture, the problems of fit and dimensional deviation caused by the deformation of iron parts during the injection molding process of sliding sunroof glass were solved, thereby improving stability and applicability.
Patent Information
- Application Number
- CN202422732341.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-11
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2034-11-11
AI Technical Summary
During the injection molding process, existing sliding sunroof glass is prone to deformation due to factors such as mold temperature, cavity air pressure, material flow, and material solidification, resulting in glass fit and dimensional deviations.
A glass shaping fixture was designed, including a fixture frame, a glass support mechanism, and a manual shaping mechanism. By positioning the glass support mechanism and moving the manual shaping mechanism, the stability and adaptability of the glass are ensured, making it suitable for glass shaping work of various sizes.
It improves the stability and quality of glass shaping, expands the applicability of the equipment, ensures that the manual shaping mechanism can be moved to any position on the glass, avoids dead angles, and is suitable for glass of various sizes.
Smart Images

Figure CN223458235U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to glass processing equipment technical field, especially relate to a shaping frock. BACKGROUND
[0002] At present, there are three common types of automobile sunroof, ordinary small sunroof, panoramic fixed sunroof and panoramic sliding sunroof, wherein the panoramic sliding sunroof has obvious advantages, namely, wide field of view and good ventilation, and even becomes a kind of channel for passengers to escape, so its application is more and more common.
[0003] The panoramic sliding sunroof is generally composed of two pieces of glass, one of which is fixed glass, and the other is movable glass, in order to realize the moving effect of the glass, the glass is usually connected with the sliding block through the iron part, and the moving glass is achieved by the mutual sliding of the sliding block and the sliding rail.
[0004] In the glass production process, the PU injection of the iron part and the glass is a key process link. However, the existing sliding sunroof (i.e. PU injection glass with iron part) is prone to deformation due to the influence of factors such as mold temperature (PPSU injection temperature is usually 295℃~320℃), cavity pressure, material flow and material solidification during injection molding process, thereby causing the coincidence degree and size of the glass to be out of tolerance. INVENTION CONTENTS
[0005] The technical problem to be solved by the utility model is how to provide a shaping frock to solve the problem that the glass is prone to coincidence degree and size out of tolerance under the influence of the iron part.
[0006] In order to solve the above technical problem, the utility model adopts the technical scheme that:
[0007] A shaping frock, comprising a frock frame body, a glass supporting mechanism and a manual shaping mechanism;
[0008] The glass supporting mechanism is arranged on the working surface of the frock frame body;
[0009] The manual shaping mechanism is slidably connected to the frock frame body;
[0010] The supporting area of the glass supporting mechanism is located in the projection area of the moving area of the manual shaping mechanism;
[0011] The pressing part of the manual shaping mechanism is arranged opposite to the glass supporting mechanism.
[0012] Further, the frock frame body further comprises a second sliding device and at least two first sliding devices;
[0013] In the X-axis direction, the first sliding devices are arranged opposite to each other at both ends of the frock frame body;
[0014] Two ends of the second sliding device are respectively connected with the moving parts of the corresponding first sliding device;
[0015] The manual shaping mechanism is connected with the moving part of the second sliding device;
[0016] The moving direction of the first sliding device is parallel to the Y-axis direction;
[0017] The moving direction of the second sliding device is parallel to the X-axis direction.
[0018] Further, the manual shaping mechanism comprises a connecting plate, a pressing rod assembly and a handle rod assembly;
[0019] The connecting plate and the pressing rod assembly are respectively hinged with the same end of the handle rod assembly;
[0020] The pressing rod assembly and the connecting plate are slidingly connected;
[0021] The handle rod assembly can drive the pressing rod assembly to reciprocate in the Z-axis direction.
[0022] Further, the pressing rod assembly comprises a transition rod and a pressing rod which are hinged with each other;
[0023] The connecting plate is provided with a guide block;
[0024] The guide block is provided with a guide through hole;
[0025] The pressing rod is hinged with one end of the handle rod assembly through the transition rod;
[0026] The pressing rod is arranged through the guide through hole, and the pressing rod and the guide through hole are slidingly connected.
[0027] Further, the pressing rod assembly further comprises a rotating mechanism and a pressing plate;
[0028] The rotating mechanism is arranged at one end of the pressing rod which is away from the transition rod;
[0029] The pressing plate is connected with the moving part of the rotating mechanism, and the rotating axis of the moving part of the rotating mechanism is parallel to the Z-axis direction;
[0030] The pressing surface of the pressing plate is oppositely arranged with the supporting area of the glass supporting mechanism.
[0031] Further, the pressing rod assembly further comprises an elastic member;
[0032] One end of the pressing rod which is close to the transition rod is provided with a limiting member;
[0033] The elastic member is sleeved outside the pressing rod, and two ends of the elastic member are respectively in abutment with the limiting member and the guide block.
[0034] Further, the handlebar assembly comprises a first connecting rod, a second connecting rod and a reinforcing rod;
[0035] One end of the first connecting rod is connected with one end of the second connecting rod;
[0036] The other end of the first connecting rod is respectively hinged with the connecting plate and the transition rod;
[0037] Two ends of the reinforcing rod are respectively connected with the middle section of the first connecting rod and the middle section of the second connecting rod.
[0038] Further, in the non-working state, the axial direction of the second connecting rod forms an included angle with the Y-axis direction;
[0039] The included angle is 15°-25°;
[0040] The end of the second connecting rod away from the first connecting rod is arranged towards the side away from the glass support mechanism.
[0041] Further, the glass support mechanism comprises an X-direction positioning assembly;
[0042] In the X-axis direction, the X-direction positioning assembly is oppositely arranged at the two side portions of the working surface of the tool holder body;
[0043] The X-direction positioning assembly comprises a third sliding device, a support frame and a first positioning column and a support portion arranged on the support frame;
[0044] The support frame is connected with the movable portion of the third sliding device;
[0045] The third sliding device can drive the support frame to reciprocally move in the X-axis direction.
[0046] Further, the glass support mechanism further comprises a second positioning column;
[0047] The working surface of the tool holder body is provided with a sliding groove;
[0048] The extension direction of the sliding groove is parallel to the Y-axis direction;
[0049] The second positioning column is in sliding connection with the sliding groove.
[0050] Further, it further comprises a glass recycling device;
[0051] The working surface of the tool holder body is provided with a blanking hole;
[0052] The blanking hole is located in a supporting area of the glass supporting mechanism;
[0053] The glass recycling device is arranged below the blanking hole;
[0054] The glass recycling device comprises a receiving groove;
[0055] The notch of the receiving groove and the blanking hole are oppositely arranged.
[0056] The shaping tool provided by the utility model has the advantages that the glass supporting mechanism arranged on the tool frame body can provide structural support for the positioning of the glass, thereby improving the stability and shaping quality during the shaping of the glass; meanwhile, the manual shaping mechanism can freely move on the tool frame body, that is, the pressing end of the manual shaping mechanism can move to any position of the glass, so that the equipment of the utility model can be adapted to the shaping of glasses of various sizes, thereby expanding the application range of the equipment. BRIEF DESCRIPTION OF DRAWINGS
[0057] Figure 1 Fig. 1 is a structural schematic view of the shaping tool in the utility model;
[0058] Figure 2 Fig. 2 is a top view of the shaping tool in the utility model;
[0059] Figure 3 Fig. 3 is a structural schematic view of the manual shaping mechanism in the utility model;
[0060] Figure 4 Fig. 4 is a structural schematic view of the shaping tool and the glass body in the utility model;
[0061] Label explanation:
[0062] 1, tool frame body; 11, first sliding device; 12, second sliding device; 13, sliding groove;
[0063] 2, glass supporting mechanism; 21, X-direction positioning assembly; 211, third sliding device; 212, supporting frame; 213, first positioning column; 214, supporting part; 22, second positioning column;
[0064] 3, manual shaping mechanism; 31, connecting plate; 311, guide block; 32, pressing rod assembly; 321, transition rod; 322, pressing rod; 323, rotating mechanism; 324, pressing plate; 325, elastic member; 33, handle rod assembly; 331, first connecting rod; 332, second connecting rod; 333, reinforcing rod;
[0065] 4, glass recycling device;
[0066] 5, glass body. DETAILED DESCRIPTION
[0067] In order to explain the technical content, the purposes and effects of the present application, the following embodiments are described in conjunction with the accompanying drawings.
[0068] The existing sliding roof is prone to deformation in the process of injection molding due to the influence of factors such as mold temperature, cavity pressure, material flow and material solidification, thereby causing the glass to have a mismatched size and dimension.
[0069] Therefore, the present application provides a shaping tool, which comprises a tool frame body 1, a glass supporting mechanism 2 and a manual shaping mechanism 3. Figures 1 to 4 The glass supporting mechanism 2 is arranged on the working surface of the tool frame body 1, and the manual shaping mechanism 3 is slidably connected to the tool frame body 1.
[0070] It can be understood that the shaping tool of the present application can quickly realize the center positioning and clamping of the glass through the glass supporting mechanism 2, thereby effectively improving the stability during glass shaping and improving the final shaping quality.
[0071] In some embodiments, the tool frame body 1 further comprises a second sliding device 12 and at least two first sliding devices 11. The first sliding device 11 is arranged at opposite ends of the tool frame body 1 in the X-axis direction, and the second sliding device 12 is connected to the movable part of the corresponding first sliding device 11 at both ends. The moving direction of the first sliding device 11 is parallel to the Y-axis direction, and the moving direction of the second sliding device 12 is parallel to the X-axis direction. Specifically, the first sliding device 11 and the second sliding device 12 are any commercially available devices capable of moving the object along a straight line, such as a linear guide rail, a pneumatic guide rail or a screw rod connected with a motor transmission. This design improves the composition structure of the tool frame body 1, and by combining the first sliding device 11 and the second sliding device 12, the manual shaping mechanism 3 can be freely moved on the tool frame body 1 under the combined motion of the first sliding device 11 and the second sliding device 12, thereby providing structural support for the manual shaping mechanism 3 to move to any position of the glass.
[0072] In some embodiments, the manual shaping mechanism 3 comprises a connecting plate 31, a pressing rod assembly 32 and a handle rod assembly 33; the connecting plate 31 and the pressing rod assembly 32 are respectively hinged with the same end of the handle rod assembly 33; the pressing rod assembly 32 and the connecting plate 31 are slidingly connected; the handle rod assembly 33 can drive the pressing rod assembly 32 to reciprocate in the Z-axis direction. The design makes specific modification to the component structure of the manual shaping mechanism 3, and through the cooperation among the handle rod assembly 33, the connecting plate 31 and the pressing rod assembly 32, the rotary motion of the handle rod assembly 33 can be converted into the linear motion of the pressing rod assembly 32 along the Z-axis direction, thereby saving the labor of the staff when manually pressing and shaping the glass.
[0073] In some embodiments, the pressing rod assembly 32 comprises a transition rod 321 and a pressing rod 322 which are hinged with each other; the connecting plate 31 is provided with a guide block 311; the guide block 311 is provided with a guide through hole; the pressing rod 322 is hinged with one end of the handle rod assembly 33 through the transition rod 321; the pressing rod 322 penetrates through the guide through hole and is slidingly connected with the guide through hole. Specifically, the axial direction of the guide through hole is parallel to the Z-axis direction. The design makes specific modification to the component structure of the pressing rod assembly 32 and the connecting plate 31; by providing the guide block 311 with the guide through hole on the connecting plate 31, it can be ensured that the pressing rod 322 can always keep parallel to the Z-axis direction during the process of being pressed downward along the Z-axis direction, thereby improving the stability during shaping; meanwhile, the transition rod 321 and the pressing rod 322 which are hinged with each other can enhance the degree of freedom of the pressing rod assembly 32, so as to avoid the mutual interference between the handle rod assembly 33 and the pressing rod assembly 32 when the handle rod assembly 33 drives the pressing rod assembly 32 to move downward, thereby avoiding the deformation between the structures and ultimately affecting the overall shaping work.
[0074] In some embodiments, the pressing rod assembly 32 further comprises a rotating mechanism 323 and a pressing plate 324; the rotating mechanism 323 is arranged at one end of the pressing rod 322 away from the transition rod 321; the pressing plate 324 is connected with the movable part of the rotating mechanism 323, and the rotation axis of the movable part of the rotating mechanism 323 is parallel to the Z-axis direction; the pressing surface of the pressing plate 324 is oppositely arranged with the supporting area of the glass supporting mechanism 2. Specifically, the rotating mechanism 323 is any commercially available device capable of rotating an object, such as a motor; the rotating mechanism 323 of the utility model is preferably a rotating bearing, and in use, the outer ring of the bearing is connected with the pressing rod 322, and the pressing plate 324 is connected with the inner ring of the bearing, so that the staff can manually adjust the pressing angle of the pressing plate 324 according to the actual needs. The design further optimizes the component structure of the pressing rod assembly 32, and through the rotating mechanism 323 driving the pressing plate 324 to rotate around the Z-axis, the staff can adjust the angle of the pressing plate 324 according to the actual shaping requirements, so that the pressing plate 324 can be rotated to the best pressing position, thereby improving the shaping effect of the glass; the pressing plate 324 of the utility model is preferably made of polyurethane with moderate hardness.
[0075] In some embodiments, the pressing rod assembly 32 further comprises an elastic member 325; the pressing rod 322 is provided with a limiting member at one end close to the transition rod 321; and the elastic member 325 is sleeved outside the pressing rod 322, and two ends of the elastic member 325 are in abutment with the limiting member and the guide block 311 respectively. By arranging the corresponding elastic member 325 outside the pressing rod 322, it can not only avoid damage to the glass due to excessive impact force during the pressing process of the pressing rod 322, but also assist the resetting work of the pressing rod 322, so that the pressing rod 322 can quickly move away from the glass surface along the Z axis, thereby effectively improving the shaping efficiency.
[0076] In some embodiments, the holding rod assembly 33 comprises a first connecting rod 331, a second connecting rod 332 and a reinforcing rod 333; one end of the first connecting rod 331 is connected with one end of the second connecting rod 332; the other end of the first connecting rod 331 is hingedly connected with the connecting plate 31 and the transition rod 321 respectively; and two ends of the reinforcing rod 333 are connected with the middle section of the first connecting rod 331 and the middle section of the second connecting rod 332 respectively. Specifically, the middle section of the first connecting rod 331 is any position between the two ends of the first connecting rod 331, and the middle section of the second connecting rod 332 is any position between the two ends of the second connecting rod 332, as long as the first connecting rod 331, the second connecting rod 332 and the reinforcing rod 333 can form a triangle-like structure. This design specifically modifies the composition structure of the holding rod assembly 33, and the connected first connecting rod 331 and second connecting rod 332 can facilitate the staff to drive the pressing rod assembly 32 to reciprocate along the Z axis direction; and the arrangement of the reinforcing rod 333 between the first connecting rod 331 and the second connecting rod 332 can effectively improve the anti-deformation ability of the first connecting rod 331 and the second connecting rod 332, thereby ensuring that the pressing force of the pressing rod assembly 32 can meet the shaping requirements.
[0077] In some embodiments, in the non-working state, the axial direction of the second connecting rod 332 forms an angle with the Y axis direction; the angle is 15°-25°; and the end of the second connecting rod 332 away from the first connecting rod 331 is arranged towards the side away from the glass supporting mechanism 2. Specifically, the angle between the axial direction of the second connecting rod 332 of the utility model and the Y axis direction is preferably 20°, such as the angle α in Figure 3 This design specifically improves the respective requirements of the second connecting rod 332, i.e., the second connecting rod 332 at this angle can better meet the ergonomics, thereby facilitating the staff to exert force better, and thereby improving the stability during shaping.
[0078] In some embodiments, the glass supporting mechanism 2 comprises an X-direction positioning assembly 21; the X-direction positioning assembly 21 is oppositely arranged on both sides of the working surface of the tool frame body 1 in the X-axis direction; the X-direction positioning assembly 21 comprises a third sliding device 211, a supporting frame 212, and a first positioning column 213 and a supporting part 214 arranged on the supporting frame 212; the supporting frame 212 is connected with the movable part of the third sliding device 211; the third sliding device 211 can drive the supporting frame 212 to reciprocally move in the X-axis direction; the glass supporting mechanism 2 further comprises a second positioning column 22; the working surface of the tool frame body 1 is provided with a sliding groove 13; the extending direction of the sliding groove 13 is parallel to the Y-axis direction; the second positioning column 22 is slidably connected with the sliding groove 13. Specifically, the third sliding device 211 is any commercially available device capable of driving an object to move along a straight line, such as a linear guide rail, a starting guide rail, or even a structure in which a lead screw is driven to rotate by a motor or a hand wheel, so as to drive the movable part of the lead screw to reciprocally move in the axial direction of the lead screw. The design specifically modifies the composition structure of the glass supporting mechanism 2; the position of the second positioning column 22 can be adjusted before shaping, so as to provide a standard for the positioning of the glass; by arranging the supporting part 214 on the supporting frame 212, the glass to be shaped can be effectively supported; after one side of the glass abuts against the second positioning column 22, the first positioning column 213 is driven to move close to the glass, so as to quickly fasten the glass at the specified position, and also to achieve the effect of center positioning.
[0079] In some embodiments, the shaping tool described above further comprises a glass recycling device 4; the working surface of the tool frame body 1 is provided with a material falling hole; the material falling hole is located in the supporting area of the glass supporting mechanism 2; the glass recycling device 4 is arranged below the material falling hole; the glass recycling device comprises a material receiving groove; the slot of the material receiving groove is oppositely arranged with the material falling hole. In the process of glass shaping, shaping failure may occasionally occur, so that the glass is broken. In order to avoid that a large amount of glass residues are accumulated on the working surface of the tool frame body 1, thereby affecting the normal shaping work, the corresponding glass recycling device 4 is arranged, and the material falling hole is arranged on the corresponding position of the working surface of the tool frame body 1, so as to facilitate the workers to directly sweep the glass residues into the glass recycling device 4.
[0080] Please refer to Figures 1 to 4 , the embodiment one of the utility model discloses:
[0081] A shaping tool, comprising a tool frame body 1, a glass supporting mechanism 2 and a manual shaping mechanism 3; the glass supporting mechanism 2 is arranged on the working surface of the tool frame body 1; the manual shaping mechanism 3 is slidably connected on the tool frame body 1; the supporting area of the glass supporting mechanism 2 is located in the projection area of the moving area of the manual shaping mechanism 3; the material pressing part of the manual shaping mechanism 3 and the glass supporting mechanism 2 are oppositely arranged.
[0082] In the embodiment, the tool holder 1 further comprises a second sliding device 12 and two first sliding devices 11; the first sliding devices 11 are oppositely arranged at the two ends of the tool holder 1 in the X-axis direction; the two ends of the second sliding device 12 are respectively connected with the movable parts of the corresponding first sliding devices 11; the manual shaping mechanism 3 is connected with the movable part of the second sliding device 12; the moving direction of the first sliding device 11 is parallel to the Y-axis direction; and the moving direction of the second sliding device 12 is parallel to the X-axis direction.
[0083] In the embodiment, the manual shaping mechanism 3 comprises a connecting plate 31, a pressing rod assembly 32 and a handle rod assembly 33; the connecting plate 31 and the pressing rod assembly 32 are respectively hingedly connected with the same end of the handle rod assembly 33; the pressing rod assembly 32 and the connecting plate 31 are slidingly connected; and the handle rod assembly 33 can drive the pressing rod assembly 32 to reciprocate in the Z-axis direction.
[0084] In the embodiment, the pressing rod assembly 32 comprises a transition rod 321 and a pressing rod 322 which are hingedly connected with each other; the connecting plate 31 is provided with a guide block 311; the guide block 311 is provided with a guide through hole; the pressing rod 322 is hingedly connected with one end of the handle rod assembly 33 through the transition rod 321; and the pressing rod 322 penetrates through the guide through hole and is slidingly connected with the guide through hole.
[0085] In the embodiment, the pressing rod assembly 32 further comprises a rotating mechanism 323 and a pressing plate 324; the rotating mechanism 323 is arranged at the end of the pressing rod 322 away from the transition rod 321; the pressing plate 324 is connected with the movable part of the rotating mechanism 323, and the rotation axis of the movable part of the rotating mechanism 323 is parallel to the Z-axis direction; and the pressing surface of the pressing plate 324 is oppositely arranged with the supporting area of the glass supporting mechanism 2.
[0086] In the embodiment, the pressing rod assembly 32 further comprises an elastic member 325; one end of the pressing rod 322 close to the transition rod 321 is provided with a limiting member; and the elastic member 325 is sleeved on the outside of the pressing rod 322, and the two ends of the elastic member 325 are respectively in contact with the limiting member and the guide block 311. By arranging the corresponding elastic member 325 on the outside of the pressing rod 322, the glass can be prevented from being damaged due to excessive impact force in the process of pressing, and the elastic member 325 can also assist the resetting work of the pressing rod 322, so that the pressing rod 322 can quickly move away from the surface of the glass along the Z-axis, thereby effectively improving the shaping efficiency.
[0087] In the embodiment, the handle rod assembly 33 comprises a first connecting rod 331, a second connecting rod 332 and a reinforcing rod 333; one end of the first connecting rod 331 is connected with one end of the second connecting rod 332; the other end of the first connecting rod 331 is hingedly connected with the connecting plate 31 and the transition rod 321 respectively; and the two ends of the reinforcing rod 333 are respectively connected with the middle segment of the first connecting rod 331 and the middle segment of the second connecting rod 332.
[0088] In the embodiment, the second connecting rod 332 is arranged at an angle to the Y-axis direction in the non-working state, and the angle is 20°; and the end of the second connecting rod 332 away from the first connecting rod 331 is arranged towards the side away from the glass supporting mechanism 2.
[0089] In the embodiment, the glass supporting mechanism 2 comprises an X-direction positioning assembly 21; the X-direction positioning assembly 21 is arranged at the two ends of the working surface of the tool frame body 1 in the X-axis direction; the X-direction positioning assembly 21 comprises a third sliding device 211, a supporting frame 212, a first positioning column 213 and a supporting part 214 arranged on the supporting frame 212; the supporting frame 212 is connected to the movable part of the third sliding device 211; the third sliding device 211 can drive the supporting frame 212 to reciprocate in the X-axis direction; the glass supporting mechanism 2 further comprises a second positioning column 22; the working surface of the tool frame body 1 is provided with a sliding groove 13; the extending direction of the sliding groove 13 is parallel to the Y-axis direction; and the second positioning column 22 is in sliding connection with the sliding groove 13.
[0090] In the embodiment, the above-mentioned shaping tool further comprises a glass recycling device 4; the working surface of the tool frame body 1 is provided with a blanking hole; the blanking hole is located in the supporting area of the glass supporting mechanism 2; and the glass recycling device 4 is arranged below the blanking hole; the glass recycling device comprises a receiving groove; and the slot of the receiving groove is arranged opposite to the blanking hole.
[0091] The working principle of the utility model is as follows: firstly, the staff adjusts the position of the second positioning column 22 on the working surface of the tool frame body 1 according to the size of the glass to be shaped; then, the glass to be shaped is placed on the supporting part 214, and one side of the glass is in abutment with the second positioning column 22; then, the first positioning column 213 on the supporting frame 212 is driven to move towards the glass, until the first positioning column 213 completely clamps the glass, and then the manual shaping mechanism 3 is moved to the designated shaping position through the first sliding device 11 and the second sliding device 12; finally, the pressing plate 324 on the pressing rod assembly 32 is driven by the handle rod assembly 33 to abut against the surface of the glass in the Z-axis direction, so that the corresponding glass shaping work is completed.
[0092] The above-mentioned is only the embodiment of the utility model, and does not limit the patent range of the utility model, and any equivalent transformation or direct or indirect application in the related technical field according to the content of the utility model specification and the drawings is also included in the patent protection range of the utility model.
Claims
1. A shaping tool, characterized by, The tool holder body, the glass supporting mechanism and the manual shaping mechanism are included. The glass supporting mechanism is arranged on the working surface of the tool holder body. The manual shaping mechanism is slidably connected to the tool holder body. The supporting area of the glass supporting mechanism is located in the projection area of the moving area of the manual shaping mechanism. The pressing part of the manual shaping mechanism is oppositely arranged with the glass supporting mechanism.
2. The shaping tool of claim 1, wherein The tool holder body further includes a second sliding device and at least two first sliding devices. In the X-axis direction, the first sliding devices are oppositely arranged at the two ends of the tool holder body. The two ends of the second sliding device are respectively connected to the movable parts of the corresponding first sliding devices. The manual shaping mechanism is connected to the movable part of the second sliding device. The moving direction of the first sliding device is parallel to the Y-axis direction. The moving direction of the second sliding device is parallel to the X-axis direction.
3. The shaping tool of claim 1, wherein The manual shaping mechanism includes a connecting plate, a pressing rod assembly and a handle rod assembly. The connecting plate and the pressing rod assembly are respectively hinged to the same end of the handle rod assembly. The pressing rod assembly and the connecting plate are slidably connected. The handle rod assembly can drive the pressing rod assembly to reciprocate in the Z-axis direction.
4. The shaping tool of claim 3, wherein The pressing rod assembly includes a transition rod and a pressing rod which are hingedly connected to each other. The connecting plate is provided with a guide block. The guide block is provided with a guide through hole. The pressing rod is hingedly connected to one end of the handle rod assembly through the transition rod. The pressing rod penetrates through the guide through hole and is slidably connected to the guide through hole.
5. The shaping tool of claim 4, wherein The pressing rod assembly further includes a rotating mechanism and a pressing plate. The rotating mechanism is arranged at one end of the pressing rod away from the transition rod. The pressing plate is connected to the movable part of the rotating mechanism, and the rotation axis of the movable part of the rotating mechanism is parallel to the Z-axis direction. The pressing surface of the pressing plate is oppositely arranged with the supporting area of the glass supporting mechanism.
6. The shaping tool of claim 4, wherein The pressing rod assembly further includes an elastic member. One end of the pressing rod close to the transition rod is provided with a limiting member. The elastic member is sleeved outside the pressing rod, and the two ends of the elastic member are respectively in contact with the limiting member and the guide block.
7. The shaping tool of claim 4, wherein The handle rod assembly includes a first connecting rod, a second connecting rod and a reinforcing rod. One end of the first connecting rod is connected to one end of the second connecting rod. The other end of the first connecting rod is hingedly connected to the connecting plate and the transition rod. The two ends of the reinforcing rod are respectively connected to the middle segment of the first connecting rod and the middle segment of the second connecting rod.
8. The shaping tool of claim 7, wherein In the non-working state, the axial direction of the second connecting rod forms an angle with the Y-axis direction. The angle is 15°-25°. One end of the second connecting rod away from the first connecting rod is arranged towards the side away from the glass supporting mechanism.
9. The shaping tool of claim 1 wherein, The glass supporting mechanism includes an X-direction positioning assembly. In the X-axis direction, the X-direction positioning assembly is oppositely arranged at the two sides of the working surface of the tool holder body. The X-direction positioning assembly includes a third sliding device, a supporting frame, and a first positioning column and a supporting part arranged on the supporting frame. The supporting frame is connected to the movable part of the third sliding device. The third sliding device can drive the support frame to reciprocate in the X-axis direction.
10. The shaping tool of claim 1, wherein The glass support mechanism further comprises a second positioning column; The work surface of the tool holder body is provided with a sliding groove; The extension direction of the sliding groove is parallel to the Y-axis direction; The second positioning column is in sliding connection with the sliding groove.
11. The shaping tool of claim 1 wherein, Further comprising a glass recycling device; The work surface of the tool holder body is provided with a blanking hole; The blanking hole is located in the support area of the glass support mechanism; The glass recycling device is arranged below the blanking hole; The glass recycling device comprises a receiving groove; The slot of the receiving groove is oppositely arranged with the blanking hole.