Quantitative feeding and conveying device

By designing a quantitative feeding and conveying device, the problem of cumbersome manual feeding in existing pipe fitting stretching equipment has been solved, realizing automatic quantitative conveying of pipe fittings and improving the ease of operation and efficiency.

CN223737068UActive Publication Date: 2025-12-30ZHONGSHAN JINZHUO MASCH EQUIP CO LTD
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Patent Information

Application Number
CN202520270724.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-19
Publication Date
2025-12-30
Estimated Expiration
2035-02-19

AI Technical Summary

Technical Problem

The existing pipe stretching equipment uses manual feeding, which is cumbersome and inefficient.

Method used

The design includes a quantitative feeding and conveying device, comprising a feeding mechanism and a feeding mechanism. The feeding mechanism has a material storage channel and a feeding port, and a guide frame is used to open and close the feeding port. The feeding mechanism has a feeding belt for conveying pipe fittings, thereby realizing the quantitative automatic conveying of pipe fittings.

Benefits of technology

It achieves quantitative automatic feeding of pipe fittings, is simple to operate, and has high feeding efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The quantitative feeding and conveying device comprises a discharging mechanism and a feeding mechanism, the discharging mechanism is provided with a discharging frame set and a material guiding frame, the discharging frame set is provided with a material storage channel and a discharging opening, the material storage channel is used for storing and discharging pipe fittings, the discharging opening is communicated with the material storage channel, and the material guiding frame is rotationally connected to the discharging frame set and used for opening and closing the discharging opening. The feeding mechanism is provided with a feeding frame, a feeding belt and a material receiving piece. The feeding belt is arranged on the feeding frame and used for receiving the pipe fitting falling from the discharging opening and conveying the pipe fitting to the material receiving piece. According to the quantitative feeding and conveying device, the discharging mechanism and the feeding mechanism are arranged, the discharging mechanism is provided with the material storage channel for storing the pipe fittings, the discharging opening for the pipe fittings to fall out of the material storage channel and the material guide frame for opening and closing the discharging opening, and the feeding mechanism is provided with the feeding belt for receiving the pipe fittings falling from the discharging opening and conveying the pipe fittings to the material receiving part. Therefore, quantitative automatic conveying of the pipe fittings is achieved, operation is easy, and conveying efficiency is high.
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Description

TECHNICAL FIELD

[0001] The utility model relates to pipe stretching equipment technical field especially relates to quantitative feeding conveying device. BACKGROUND

[0002] Pipe stretching equipment is a kind of equipment to stretch aluminum pipe to extend the length of aluminum pipe.The existing pipe stretching equipment includes machine base and chuck, machine base has stretching hole, the hole diameter of stretching hole is slightly smaller than the outer diameter of the pipe to be stretched, when drawing, pipe part passes through stretching hole, chuck clamps the part of pipe passing through stretching hole and drags pipe to move along machine base, realizes the drawing of pipe.The existing pipe feeding adopts manual feeding, and the operation is complicated and the efficiency is low. SUMMARY

[0003] The utility model aims at providing quantitative feeding conveying device to solve the problem that the existing pipe stretching equipment adopts manual feeding, and the operation is complicated and the efficiency is low.

[0004] The utility model is realized through the following technical schemes:

[0005] Quantitative feeding conveying device, including blanking mechanism and feeding mechanism, the blanking mechanism has blanking frame group and guide frame, the blanking frame group has storage channel and blanking port, the storage channel is used to store and release pipe, the blanking port is communicated with the storage channel, the guide frame is rotatably connected on the blanking frame group for opening and closing the blanking port, the feeding mechanism has feeding frame, feeding belt and receiving piece, the feeding belt is arranged on the feeding frame for receiving the pipe falling from the blanking port and conveying pipe to the receiving piece.

[0006] Further, the blanking port is opposite to the receiving piece up and down, the blanking port is lower, the receiving piece is upper, the feeding belt is arranged around the feeding frame, and the feeding belt moves around the feeding frame in the up and down direction to convey pipe to the receiving piece.

[0007] Further, when the guide frame opens the blanking port, it is inclined from top to bottom to the direction of the feeding belt to guide the pipe falling from the storage channel to the feeding belt.

[0008] Further, the blanking frame group has blanking frame and blocking frame, the blanking frame and the blocking frame form the storage channel, the blanking frame has guide surface and dropping surface, the guide surface is inclined from top to bottom to the direction of the blocking frame, the dropping surface extends from the guide surface downward to the blanking port, the blocking frame has blocking surface, the blocking surface extends up and down and is opposite to the guide surface and the dropping surface.

[0009] Further, the blocking frame can move relative to the blanking frame to adjust the gap between the blocking surface and the dropping surface.

[0010] Further, the push arm is rotatable around the connection between the push arm and the lower frame to protrude out of or withdraw from the guide surface, and the push arm protruding out of the guide surface allows or restricts the pipe to move towards the blocking frame.

[0011] Further, the push arm is rotatable around the connection between the push arm and the lower frame to protrude out of or withdraw from the guide surface, and the push arm protruding out of the guide surface allows or restricts the pipe to move towards the blocking frame.

[0012] Further, the receiving member is arranged at an angle with the horizontal plane.

[0013] Further, the upper feeding belt is arranged at intervals in the length direction of the pipe, and the top line of the upper feeding belt is parallel to the angle of the receiving member.

[0014] Further, the receiving member has a receiving groove for the pipe, and / or the upper feeding belt has a supporting member for supporting the pipe falling from the lower outlet, and the supporting member has a limiting groove for the pipe.

[0015] The present application has the advantages that the quantitative feeding and conveying device is configured as a lower feeding mechanism and an upper feeding mechanism, the lower feeding mechanism has a storage channel for storing the pipe, a lower outlet for the pipe to fall out of the storage channel, and a blocking frame for opening and closing the lower outlet, and the upper feeding mechanism has an upper feeding belt for receiving the pipe falling from the lower outlet and conveying the pipe to a receiving member, thereby realizing quantitative automatic conveying of the pipe, and the operation is simple and the conveying efficiency is high. BRIEF DESCRIPTION OF DRAWINGS

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced as follows. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative effort.

[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced as follows. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative effort.

[0018] Figure 1 is a perspective view of the quantitative feeding and conveying device disclosed in the embodiment;

[0019] Figure 2 is Figure 1 is an enlarged view of part A in FIG.

[0020] Figure 3 This is a front view of the quantitative feeding and conveying device disclosed in the embodiment;

[0021] Figure 4 This is a cross-sectional view of the quantitative feeding and conveying device disclosed in the embodiment. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] Example: Figures 1-4 As shown, the quantitative feeding and conveying device includes a feeding mechanism 1 and a feeding mechanism 2. The feeding mechanism 1 has a feeding frame assembly 101 and a guide frame 102. The feeding frame assembly 101 has a storage channel 103 and a feeding port 104. The storage channel 103 is used to store pipe fittings. The feeding port 104 is connected to the storage channel 103 to allow the pipe fittings to fall out of the storage channel 103. The guide frame 102 is rotatably connected to the feeding frame assembly 101 to open and close the feeding port 104. The feeding mechanism 2 has a feeding frame 201, a feeding belt 202 and a receiving component 203. The feeding belt 202 is provided on the feeding frame 201 to receive the pipe fittings falling from the feeding port 104 and convey the pipe fittings to the receiving component 203.

[0024] The quantitative feeding and conveying device is located on one side of the pipe stretching equipment and is used to quantitatively feed pipes to the pipe stretching equipment. When using the quantitative feeding and conveying device to quantitatively feed pipes, the steps are as follows: First, the guide frame 102 closes the discharge port 104. Then, several pipes are placed into the storage channel 103. Next, the guide frame 102 opens the discharge port 104, and the pipes fall out of the discharge port 104 into the storage channel 103 and onto the feeding belt 202. Finally, the feeding belt 202 transports the pipes to the receiving part 203.

[0025] In summary, this embodiment provides a quantitative feeding and conveying device to solve the problems of cumbersome operation and low efficiency of existing pipe stretching equipment that uses manual feeding. The main solution is to configure the quantitative feeding and conveying device into a feeding mechanism 1 and a feeding mechanism 2. The feeding mechanism 1 has a material storage channel 103 for storing pipes, a feeding port 104 for the pipes to fall out of the material storage channel 103, and a guide frame 102 for opening and closing the feeding port 104. The feeding mechanism 2 has a feeding belt 202 for receiving pipes falling from the feeding port 104 and conveying the pipes to the receiving part 203, thereby realizing the quantitative automatic conveying of pipes, which is simple to operate and has high conveying efficiency.

[0026] In this embodiment of the invention, the discharge port 104 and the receiving component 203 are vertically opposite each other, with the discharge port 104 positioned lower and the receiving component 203 positioned higher. The feeding belt 202 is wound around the feeding frame 201, and moves vertically around the feeding frame 201 to transport the pipe fitting to the receiving component 203. This arrangement, by configuring the discharge port 104 and the receiving component 203 vertically opposite each other, ensures smooth pipe fitting transport and a reasonable and compact arrangement of all components.

[0027] In this embodiment of the invention, when the guide frame 102 opens the discharge port 104, it tilts downwards towards the feeding belt 202 to guide the pipes that have fallen out of the material storage channel 103 to the feeding belt 202. This configuration, by arranging the guide frame 102 to tilt downwards towards the feeding belt 202 when the discharge port 104 is opened, ensures stable pipe delivery.

[0028] In this embodiment of the utility model, the feeding rack assembly 101 has a feeding rack 105 and a baffle rack 106. The feeding rack 105 and the baffle rack 106 together form a material storage channel 103. The feeding rack 105 has a guiding surface 107 and a dropping surface 108. The guiding surface 107 is inclined from top to bottom toward the baffle rack 106. The dropping surface 108 extends downward from the guiding surface 107 to the feeding port 104. The baffle rack 106 has a baffle surface 109. The baffle surface 109 extends vertically and is arranged opposite to the guiding surface 107 and the dropping surface 108. The above configuration arranges the unloading rack 101 into an enclosing unloading rack 105 and a baffle rack 106 that form a material storage channel 103. The unloading rack 105 has a guide surface 107 that slopes downward toward the baffle rack 106 and a dropping surface 108 that extends downward from the guide surface 107 to the unloading port 104, which makes the pipe fittings transport smooth.

[0029] In this embodiment of the invention, the baffle 106 can move relative to the unloading frame 105 to adjust the gap between the baffle surface 109 and the unloading surface 108. Specifically, when the baffle 106 moves closer to the unloading frame 105, the gap between the baffle surface 109 and the unloading surface 108 decreases; when the baffle 106 moves away from the unloading frame 105, the gap between the baffle surface 109 and the unloading surface 108 increases. This configuration, by arranging the baffle 106 to move relative to the unloading frame 105 to adjust the gap between the baffle surface 109 and the unloading surface 108, allows the material storage channel 103 to adapt to pipes with different apertures, providing excellent adaptability and flexible use.

[0030] In this embodiment of the present invention, a pusher arm 110 is provided on the unloading rack 105. The pusher arm 110 can rotate around its connection point with the unloading rack 105, protruding from or retracting from the guide surface 107. When the pusher arm 110 protrudes from the guide surface 107, it causes the pipe to move towards the baffle 106 or restricts the pipe from moving towards the baffle 106. Specifically, the pusher arm 110 can rotate around its connection point with the loading rack 201, causing its upper or lower end to protrude from the guide surface 107. When the upper end of the pusher arm 110 protrudes from the guide surface 107, it causes the pipe to move towards the baffle 106. When the lower end of the pusher arm 110 protrudes from the guide surface 107, it restricts the pipe from moving towards the baffle 106. The above setup, by configuring a pusher arm 110 on the unloading rack 105 that can raise the guide surface 107 to move the pipe fitting towards the baffle rack 106 or restrict the movement of the pipe fitting towards the baffle rack 106, can accelerate the pushing or interception of the pipe fitting, making the operation flexible and versatile.

[0031] In this embodiment of the invention, the receiving component 203 is arranged at an angle to the horizontal plane. This arrangement, by configuring the receiving component 203 at an angle to the horizontal plane, facilitates the conveying of the tubing.

[0032] In this embodiment of the invention, there are several feeding belts 202, which are spaced apart along the length of the pipe fitting. The top line connecting the feeding belts 202 is at the same angle as the inclination of the receiving component 203. This arrangement, by configuring several feeding belts 202, with them spaced apart along the length of the pipe fitting and their top line at the same angle as the inclination of the receiving component 203, facilitates the feeding of the pipe fitting into the receiving component 203.

[0033] In this embodiment of the invention, the receiving component 203 has a receiving groove 204 for inserting pipe fittings. This configuration, by setting the receiving component 203 to have a receiving groove 204 for inserting pipe fittings, ensures stable material receiving by the receiving component 203.

[0034] In this embodiment of the invention, a support member 205 is provided on the feeding belt 202. The support member 205 is used to support the pipe fittings falling out from the discharge port 104. The support member 205 has a limiting groove 206 for inserting the pipe fittings. The above arrangement, by configuring the support member 205 on the feeding belt 202 and configuring the limiting groove 206 for inserting the pipe fittings on the support member 205, makes the feeding belt 202 stable in receiving materials.

[0035] The above description provides one or more embodiments in conjunction with specific content, and does not imply that the specific implementation of this utility model is limited to these descriptions. Any methods or structures that are similar to or identical to those of this utility model, or any technical deductions or substitutions made based on the concept of this utility model, should be considered as protected by this utility model.

Claims

1. Quantitative dosing and conveying device, characterized in that, The device comprises a lower feeding mechanism (1) and an upper feeding mechanism (2), the lower feeding mechanism (1) comprises a lower feeding frame group (101) and a guide frame (102), the lower feeding frame group (101) comprises a storage channel (103) and a lower feeding port (104), the storage channel (103) is used for storing pipes, the lower feeding port (104) is communicated with the storage channel (103), and the guide frame (102) is rotationally connected to the lower feeding frame group (101) and is used for opening and closing the lower feeding port (104); the upper feeding mechanism (2) comprises an upper feeding frame (201), an upper feeding belt (202) and a receiving part (203), the upper feeding belt (202) is arranged on the upper feeding frame (201) and is used for receiving the pipes falling from the lower feeding port (104) and conveying the pipes to the receiving part (203).

2. The dosing feed conveyor according to claim 1, characterized in that The lower feeding port (104) is opposite to the receiving part (203) in the up-down direction, the lower feeding port (104) is located at the lower position, the receiving part (203) is located at the upper position, the upper feeding belt (202) is arranged on the upper feeding frame (201), and the upper feeding belt (202) moves around the upper feeding frame (201) in the up-down direction to convey the pipes to the receiving part (203).

3. The dosing feed conveyor according to claim 2, characterized in that When the guide frame (102) opens the lower feeding port (104), the guide frame (102) is inclined from top to bottom towards the upper feeding belt (202) to guide the pipes falling from the storage channel (103) to the upper feeding belt (202).

4. The dosing feed conveyor of claim 2, wherein, The lower feeding frame group (101) comprises a lower feeding frame (105) and a blocking frame (106), the lower feeding frame (105) and the blocking frame (106) jointly form the storage channel (103), the lower feeding frame (105) comprises a guide surface (107) and a falling surface (108), the guide surface (107) is inclined from top to bottom towards the blocking frame (106), the falling surface (108) extends downwards from the guide surface (107) to the lower feeding port (104), and the blocking frame (106) comprises a blocking surface (109), the blocking surface (109) extends upwards and downwards and is arranged opposite to the guide surface (107) and the falling surface (108).

5. The dosing feed conveyor of claim 4, wherein, The blocking frame (106) is movable relative to the lower feeding frame (105) to adjust the gap between the blocking surface (109) and the falling surface (108).

6. The dosing feed conveyor of claim 4, wherein, The lower feeding frame (105) is provided with a pushing arm (110), the pushing arm (110) is rotatable around the connection between the pushing arm (110) and the lower feeding frame (105) to protrude from or retreat from the guide surface (107), and when the pushing arm (110) protrudes from the guide surface (107), the pushing arm (110) enables the pipes to move towards the blocking frame (106) or limits the movement of the pipes towards the blocking frame (106).

7. The dosing feed conveyor of claim 6, wherein, The pushing arm (110) can rotate around the connection with the upper feeding frame (201) as the axis, so that the upper end or the lower end of the pushing arm (110) protrudes from the guide surface (107). When the upper end of the pushing arm (110) protrudes from the guide surface (107), the pipe is moved towards the blocking frame (106). When the lower end of the pushing arm (110) protrudes from the guide surface (107), the movement of the pipe towards the blocking frame (106) is limited.

8. The dosing feed conveyor of claim 1, wherein, The receiving member (203) is arranged at an angle with the horizontal plane.

9. The dosing feed conveyor of claim 8, wherein, The upper feeding belts (202) are arranged at intervals in the length direction of the pipe, and the top connecting line of the upper feeding belts (202) is consistent with the inclination angle of the receiving member (203).

10. The dosing feed conveyor of claim 1, wherein, The receiving member (203) has a receiving groove (204) for placing the pipe, and / or the upper feeding belt (202) is provided with a supporting member (205) for supporting the pipe falling from the discharging port (104), and the supporting member (205) has a limiting groove (206) for placing the pipe.