Anti-vibration shaping machine with feeding mechanism
By introducing a hydraulic rod to drive the feeding block and clamping block in the shaping machine, the problems of cumbersome feeding and difficult fixing in the existing shaping machine are solved, and stable shaping and rapid material removal of the rotor group are realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HAIYAN TONGHUI FOUNDRY CO LTD
- Filing Date
- 2025-05-24
- Publication Date
- 2026-05-29
AI Technical Summary
The existing shaping machine has a cumbersome feeding and unloading process and cannot effectively fix the rotor assembly, which causes movement during shaping and affects its use.
Design a shock-resistant shaping machine with a feeding mechanism. The feeding block is driven by a hydraulic rod, and combined with a clamping block and a return spring, the rotor assembly can be automatically limited and fixed and quickly disassembled.
It achieves stable fixation and rapid material handling of the rotor assembly during the shaping process, simplifies the feeding and handling process, and ensures the stability and efficiency of the shaping process.
Smart Images

Figure CN224298243U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of motor technology, and in particular to an anti-vibration shaping machine with a feeding mechanism. Background Technology
[0002] An electric motor, commonly known as a "motor," is an electromagnetic device that converts or transmits electrical energy based on the law of electromagnetic induction. In circuits, an electric motor is represented by the letter M (D in the old standard). Its main function is to generate driving torque, serving as a power source for electrical appliances or various machines. A generator is represented by the letter G in circuits. Its main function is to convert mechanical energy into electrical energy. The rotor winding of an electric motor has multiple layers, each with multiple turns. During winding, the winding is done layer by layer, and each layer is further wound turn by turn. During winding, the winding has a certain tightness and looseness, and the position of the wire may shift. To ensure the normal operation of the motor, the winding needs to be tidied up, which requires the use of a shaping machine.
[0003] An existing patent (publication number: CN111786515A) discloses a motor rotor winding shaping machine. By setting a first placement plate and a second placement plate, it achieves the effect of placing a shaper. The shaper then places the rotor winding. A pressure plate presses the rotor winding. The first and second support plates support a first cylinder. The first cylinder drives a rod to move, and the rod shapes the rotor winding. This shaping machine can effectively organize the winding, making it convenient for users. However, in implementing this solution, the following problems were found in the existing technology, which have not been adequately resolved:
[0004] The shaping machine requires multiple rotor groups to be inserted in turn during use, which is cumbersome during feeding and unloading. In addition, it is impossible to guarantee that the rotor groups can be fixed and limited during use, which can easily cause movement during shaping and affect subsequent use. Utility Model Content
[0005] To address the aforementioned problems of cumbersome and difficult feeding and unloading processes and the inability to fix materials securely, this utility model provides a shock-resistant shaping machine with a feeding mechanism.
[0006] This utility model provides a shock-resistant shaping machine with a feeding mechanism, which adopts the following technical solution:
[0007] An anti-vibration shaping machine with a feeding mechanism includes a device base, a glass block connected above the device base, a positioning block connected to one side of the glass block, a positioning groove formed in the center of the positioning block, a device body disposed in the center of the glass block, and a rubber layer connected to the other side of the glass block.
[0008] A hydraulic rod is also provided above the base of the device. A feeding block is connected to the other side of the hydraulic rod. A movable base plate is connected inside the feeding block. A clamping block is provided above the movable base plate. A return spring is connected to the inner side of the clamping block. An insertion block is connected to the right side of the feeding block. Lifting rods are connected to both sides of the movable base plate. A temporary storage box is provided above the feeding block.
[0009] The above technical solution facilitates the limiting and fixing of the rotor assembly by setting up a feeding block, a reset spring, and a clamping block, thereby ensuring the stability of the rotor assembly during shaping. At the same time, the movable base plate allows the rotor assembly to be quickly disassembled, facilitating subsequent material handling and feeding.
[0010] Optionally, in the above-mentioned shock-resistant shaping machine with a feeding mechanism, the device base has a T-shaped structure, the device base is integrally installed with the glass block, the center of the central positioning block of the glass block is located above the same horizontal line, and positioning grooves are symmetrically distributed on both sides of the center of the positioning block.
[0011] The above technical solution facilitates the use of the rubber layer in conjunction with the glass block, preventing debris from flying during shaping.
[0012] Optionally, in the above-mentioned shock-resistant shaping machine with a feeding mechanism, the rubber layer is evenly and equidistantly distributed on the left side of the glass block, the width of the rubber layer is consistent with the width of the feeding block, and the rubber layer is composed of multiple rubber strips.
[0013] The above technical solution allows the rubber layer to be used without affecting the feeding of the feeding block, while ensuring a tight seal.
[0014] Optionally, in the above-mentioned shock-resistant shaping machine with a feeding mechanism, the feeding block and the hydraulic rod are installed as an integral unit, a cylinder is connected to the other side of the hydraulic rod, and a circular slot is provided in the center of the feeding block.
[0015] The above technical solution facilitates the automatic movement of the feeding block by cooperating with the hydraulic rod, thus enabling automatic feeding operations.
[0016] Optionally, in the above-mentioned shock-resistant shaping machine with a feeding mechanism, the clamping block is made of an elastic material, and the clamping block and the feeding block form a spring reset structure through a reset spring. Insertion blocks are symmetrically distributed on the right side of the feeding block, and the connection between the insertion blocks and the positioning groove is a sliding connection.
[0017] The above technical solution facilitates the clamping of the rotor assembly by means of the return spring and the clamping block, and uses the insertion block to limit the feeding block to ensure its stability.
[0018] Optionally, in the above-mentioned shock-resistant shaping machine with a feeding mechanism, lifting rods are symmetrically distributed on both sides of the movable base plate, the lifting rods are connected to the feeding block by a sliding connection, and the size of the movable base plate is the same as the size of the inner wall of the feeding block.
[0019] The above technical solution facilitates the lifting of the movable base plate by using a lifting rod, thereby enabling rapid material handling.
[0020] In summary, this utility model has at least one of the following beneficial effects:
[0021] The feeding block is driven by a hydraulic rod to automatically feed the material. During feeding, the temporary storage box squeezes the rotor assembly, causing it to enter the interior of the feeding block below. Then, the clamping block inside the feeding block is tightly fitted around the rotor assembly under the action of the return spring, thus fixing the rotor assembly and adapting to rotor assemblies of different sizes.
[0022] By setting an insertion block and a positioning block on the front side of the feeding block to cooperate with each other, the feeding block is stable when it is being shaped under the shaping device. In addition, a movable base plate is set at the bottom of the feeding block. After the shaping work is completed, the movable base plate can be quickly raised by the lifting rod, thereby realizing the rapid material picking work. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall front view of the present invention;
[0024] Figure 2 This is a top view schematic diagram of the overall structure of this utility model;
[0025] Figure 3 This is a top view of the movable base plate structure of this utility model;
[0026] Figure 4 This is a utility model Figure 1 Enlarged structural diagram at point A in the middle.
[0027] In the diagram: 1. Device base; 2. Positioning block; 3. Positioning groove; 4. Rubber layer; 5. Device body; 6. Glass block; 7. Temporary storage box; 8. Hydraulic rod; 9. Feeding block; 10. Return spring; 11. Clamping block; 12. Movable base plate; 13. Insertion block; 14. Lifting rod. Detailed Implementation
[0028] The following is in conjunction with the appendix Figure 1-4 The present invention will be described in further detail below.
[0029] Please refer to the attached diagram in the instruction manual. Figure 1 and Figure 2The present invention provides an embodiment of an anti-vibration shaping machine with a feeding mechanism, comprising a device base 1, a glass block 6 connected above the device base 1, a positioning block 2 connected to one side of the glass block 6, the positioning block 2 cooperating with the positioning groove 3 to limit and fix the insertion block 13, the positioning groove 3 being provided in the center of the positioning block 2, and the device body 5 being provided in the center of the glass block 6, the rotor assembly being shaped by the cooperation of the device body 5 and the glass block 6, while avoiding the splashing of debris.
[0030] Please refer to the attached diagram in the instruction manual. Figure 1 and Figure 2 On the other side of the glass block 6, a rubber layer 4 is connected. The device base 1 has a T-shaped structure and is installed as an integral unit with the glass block 6. The center of the central positioning block 2 of the glass block 6 is located above the same horizontal line. Positioning grooves 3 are symmetrically distributed on both sides of the center of the positioning block 2. The rubber layer 4 cooperates with the glass block 6 to prevent debris from flying during shaping. The rubber layer 4 is evenly distributed on the left side of the glass block 6. The width of the rubber layer 4 is the same as the width of the feeding block 9. The rubber layer 4 is composed of multiple rubber strips. The rubber layer 4 does not affect the feeding operation of the feeding block 9, while ensuring the sealing.
[0031] Please refer to the attached diagram in the instruction manual. Figure 1 , Figure 2 and Figure 3 A hydraulic rod 8 is installed above the base 1 of the device. A feeding block 9 is connected to the other side of the hydraulic rod 8. A movable base plate 12 is connected inside the feeding block 9. The feeding block 9 can quickly pick up materials by cooperating with the movable base plate 12. The feeding block 9 and the hydraulic rod 8 are installed as an integral unit. A cylinder is connected to the other side of the hydraulic rod 8. A circular slot is opened in the center of the feeding block 9. The feeding block 9 can move automatically by cooperating with the hydraulic rod 8, which facilitates automatic feeding. Lifting rods 14 are connected to both sides of the movable base plate 12. The movable base plate 12 can be quickly lifted by cooperating with the lifting rods 14. Lifting rods 14 are symmetrically distributed on both sides of the movable base plate 12. The lifting rods 14 are connected to the feeding block 9 by sliding connection. The size of the movable base plate 12 is the same as the size of the inner wall of the feeding block 9. The lifting rods 14 can lift the movable base plate 12, thereby quickly picking up materials.
[0032] Please refer to the attached diagram in the instruction manual. Figure 1 , Figure 2 and Figure 4A clamping block 11 is provided above the movable base plate 12. A return spring 10 is connected to the inner side of the clamping block 11. The return spring 10 drives the clamping block 11 to return to its original position, so that the clamping block 11 can stably fix the rotor assembly. An insertion block 13 is connected to the right side of the feeding block 9. A temporary storage box 7 is provided above the feeding block 9. The clamping block 11 is made of elastic material. The clamping block 11 and the feeding block 9 form a spring return structure through the return spring 10. Insertion blocks 13 are symmetrically distributed on the right side of the feeding block 9. The insertion blocks 13 are connected to the positioning groove 3 by sliding connection. The rotor assembly is clamped by the cooperation of the return spring 10 and the clamping block 11. The insertion blocks 13 limit the feeding block 9 to ensure its stability.
[0033] Working principle: In use, first, turn on the cylinder switch to move the hydraulic rod 8, which in turn moves the feeding block 9. When the feeding block 9 reaches the bottom of the temporary storage box 7, the rotor assembly inside the temporary storage box 7 reaches the inside of the feeding block 9. As the feeding block 9 continues to move forward, the temporary storage box 7 squeezes the rotor assembly, causing it to move towards the inside of the feeding block 9. As a result, the rotor assembly squeezes the clamping block 11. Under the push of the return spring 10, the clamping block 11 is tightly attached to the surface of the rotor assembly to prevent it from moving, until it reaches the bottom of the main body 5 of the device, where the shaping work begins. Before the shaping work begins, the movement of the feeding block 9 moves the insertion block 13, causing the insertion block 13 to be inserted into the positioning groove 3 to ensure the stability of the feeding block 9.
[0034] As described above, after the shaping work is completed, the feeding block 9 is reset under the drive of the hydraulic rod 8. When it moves out of the glass block 6 and before it reaches the bottom of the temporary storage box 7, the lifting rod 14 is pulled upward, which causes the movable base plate 12 to rise. Then the movable base plate 12 drives the rotor assembly to rise. At this time, the rotor assembly can be quickly taken out without affecting the subsequent feeding work.
[0035] The above are all preferred embodiments of this utility model, and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape and principle of this utility model should be covered within the scope of protection of this utility model.
Claims
1. A shock-resistant shaping machine with a feeding mechanism, comprising a device base (1), characterized in that: A glass block (6) is connected above the base (1) of the device. A positioning block (2) is connected to one side of the glass block (6). A positioning groove (3) is opened in the center of the positioning block (2). The main body (5) of the device is set in the center of the glass block (6). A rubber layer (4) is connected to the other side of the glass block (6). A hydraulic rod (8) is also provided above the base (1) of the device. A feeding block (9) is connected to the other side of the hydraulic rod (8). A movable base plate (12) is connected inside the feeding block (9). A clamping block (11) is provided above the movable base plate (12). A return spring (10) is connected to the inside of the clamping block (11). An insertion block (13) is connected to the right side of the feeding block (9). Lifting rods (14) are connected to both sides of the movable base plate (12). A temporary storage box (7) is provided above the feeding block (9).
2. The anti-vibration shaping machine with a feeding mechanism according to claim 1, characterized in that: The device base (1) has a T-shaped structure. The device base (1) and the glass block (6) are installed as an integral unit. The center of the central positioning block (2) of the glass block (6) is located above the same horizontal line. Positioning grooves (3) are symmetrically distributed on both sides of the center of the positioning block (2).
3. The anti-vibration shaping machine with a feeding mechanism according to claim 1, characterized in that: The rubber layer (4) is evenly and equidistantly distributed on the left side of the glass block (6). The width of the rubber layer (4) is the same as the width of the feeding block (9). The rubber layer (4) is composed of multiple rubber strips.
4. The anti-vibration shaping machine with a feeding mechanism according to claim 1, characterized in that: The feeding block (9) and the hydraulic rod (8) are installed as a single unit. A cylinder is connected to the other side of the hydraulic rod (8). A circular slot is provided in the center of the feeding block (9).
5. The anti-vibration shaping machine with a feeding mechanism according to claim 1, characterized in that: The clamping block (11) is made of elastic material. The clamping block (11) and the feeding block (9) form a spring reset structure through the reset spring (10). The feeding block (9) has symmetrically distributed insertion blocks (13) on its right side. The insertion blocks (13) and the positioning groove (3) are connected by a sliding connection.
6. The anti-vibration shaping machine with a feeding mechanism according to claim 1, characterized in that: The movable base plate (12) has symmetrically distributed lifting rods (14) on both sides. The lifting rods (14) are connected to the feeding block (9) by a sliding connection. The size of the movable base plate (12) is the same as the size of the inner wall of the feeding block (9).