Stamping oil injection device

By designing a stamping oil spraying device, and utilizing the coordinated work of the transmission component, the oil spraying component, and the air blowing component, the problems of low oil spraying efficiency and difficulty in quantifying the oil volume on the surface of metal plates were solved, realizing an automated oil spraying process and improving the yield of stamping processing.

CN224128429UActive Publication Date: 2026-04-17ZHUHAI JINCHUANG TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI JINCHUANG TECH CO LTD
Filing Date
2026-01-21
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In stamping and stretching processes, the efficiency of oil spraying on the surface of metal sheets is low, and the amount of oil is difficult to quantify, resulting in a low yield of stamped finished products. Furthermore, excessive oil can easily lead to oil accumulation and bulging in the mold.

Method used

A stamping oil spraying device was designed. Through the coordinated work of the transmission component, the oil spraying component, the flipping component and the air blowing component, the oil spraying, flipping and blowing processes are precisely controlled by the sensor to form a uniform and appropriate amount of oil layer.

Benefits of technology

It achieves an automated oil spraying process that requires no manual intervention, ensuring uniformity and appropriate amount of oil layer, and improving the yield of stamping processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stamping oil injection device which comprises a base, an oil groove is formed in the top of the base, and a transmission assembly and an overturning assembly are assembled on the top of the oil groove. The transmission assembly comprises a transmission frame of which the input end and the output end are provided with transmission rollers, a driving motor for driving any transmission roller, and a conveying belt for assembling based on the transmission rollers at the two ends; an oil injection assembly is arranged at the top of the input end of the transmission assembly; a blowing assembly is arranged at the top of the output end; the overturning assembly comprises an overturning motor and an I-shaped clamp driven by the overturning motor; the transmission assembly conveys materials in a one-way mode, the oil spraying assembly sprays oil to the materials conveyed to the position below the oil spraying assembly, the overturning motor drives the I-shaped clamp to overturn the materials from the input end to the output end, and the air blowing assembly blows away residual oil from the overturned materials. Therefore, in the transmission advancing process of the materials, oil spraying, overturning and blowing-down procedures are sequentially carried out, manual intervention is not needed, a uniform and appropriate oil layer can be formed on the surfaces of the materials, it is ensured that follow-up stamping machining is smooth, and the yield is remarkably increased.
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Description

Technical Field

[0001] This utility model relates to the field of stamping technology, and in particular to a stamping oil spraying device. Background Technology

[0002] If the metal sheet is stamped directly during the stamping and stretching process, stretch marks will be produced on its surface. Therefore, workers will use an oil spray gun to spray an oil layer on the surface of the metal sheet before stamping. This process is inefficient, and it is difficult to quantify the amount of oil and the uniformity of the oil layer on the surface of the metal sheet. If there is too much oil, the oil accumulation in the stamping die will cause the stamped product to bulge, resulting in a low yield. Utility Model Content

[0003] This embodiment discloses a stamping oil injection device, specifically including:

[0004] The base 1 has an oil tank 11 at its top, and a transmission assembly 12 and a tilting assembly 13 are assembled on the top of the oil tank 11.

[0005] The transmission assembly 12 includes a transmission frame 122 with transmission rollers 121 mounted at the input and output ends, a drive motor 123 that drives any of the transmission rollers 121, and a conveyor belt 124 mounted on the transmission rollers 121 at both ends.

[0006] The transmission assembly 12 has an oil injection assembly 14 at the top of its input end and an air blowing assembly 15 at the top of its output end.

[0007] The flipping assembly 13 includes a flipping motor 131 and an I-beam clamp 132 driven by the flipping motor 131;

[0008] The transmission assembly 12 transmits material W in one direction, the oil spraying assembly 14 sprays oil onto the material W transmitted below it, the flipping motor 131 drives the I-beam clamp 132 to flip the material W from the input end to the output end, and the air blowing assembly 15 blows away the residual oil from the flipped material W.

[0009] As an optional implementation, the bottom of the transmission frame 122 is equipped with several crossbars 1201, the input end side is equipped with an oil spray crossbar 1202, and the output end side is equipped with an air blowing crossbar 1203.

[0010] The oil injection assembly 14 is mounted on the oil injection crossbeam 1202, and the air blowing assembly 15 is mounted on the air blowing crossbeam 1203.

[0011] As an optional implementation, several sensors are mounted on the crossbar 1201, the oil spray crossbar 1202 and the air blowing crossbar 1203 to measure the material W placed on the conveyor belt 124.

[0012] As an optional implementation, when any sensor detects that material W has been transferred to the area below the spray gun 1202, the corresponding spray gun assembly 14 is triggered to spray oil onto material W.

[0013] As an optional implementation, when any sensor detects that material W is being transported and placed on one side of the input end of the I-beam clamp 132, the flipping motor 131 is triggered to drive the I-beam clamp 132 to flip, and the material W is flipped over and placed on the surface of the output end of the conveyor belt 124.

[0014] As an optional implementation, when any sensor detects that the material W has been transferred to the underside of the air blowing crossbar 1203, the corresponding air blowing assembly 15 is triggered to blow away the residual oil from the material W.

[0015] As an optional implementation, the sensor is an infrared sensor or a microwave sensor.

[0016] As an optional implementation, the oil spraying assembly 14 sprays the falling oil droplets and the air blowing assembly 15 blows away the falling oil droplets, which fall into the oil tank 11.

[0017] As an optional implementation, one side of the material W is concave.

[0018] As an optional implementation, when the material W is placed with its concave side facing up at the input end of the transmission component 12, the flipping component 13 flips the material W so that the material W is placed with its concave side facing down at the output end of the transmission component 12.

[0019] Compared with the prior art, this embodiment has the following beneficial effects:

[0020] In this embodiment, the material undergoes oil spraying, tumbling and blowing processes in sequence during the transmission process. No manual intervention is required, which can form a uniform and appropriate oil layer on the surface of the material, ensuring smooth subsequent stamping processing and significantly improving the yield. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in this embodiment, the accompanying drawings used in the embodiment will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 This is a three-dimensional structural schematic diagram of a stamping oil injection device disclosed in this embodiment;

[0023] Figure 2 This is a schematic diagram of the side plan structure of a stamping oil injection device disclosed in this embodiment;

[0024] Figure 3 This is a schematic diagram of the planar structure of the top surface of a stamping oil injection device disclosed in this embodiment.

[0025] The specific structural component comparison table is as follows:

[0026] Detailed Implementation

[0027] The technical solutions in this embodiment will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0028] Please see Figures 1-3 The first aspect of this embodiment discloses a stamping oil injection device, comprising:

[0029] Base 1, with an oil tank 11 at the top, and a transmission assembly 12 and a tilting assembly 13 are mounted on the top of the oil tank 11;

[0030] The transmission assembly 12 includes a transmission frame 122 with transmission rollers 121 mounted at the input and output ends, a drive motor 123 for driving any one of the transmission rollers 121, and a conveyor belt 124 mounted on the transmission rollers 121 at both ends.

[0031] An oil injection assembly 14 is provided at the top of the input end of the transmission assembly 12, and an air blowing assembly 15 is provided at the top of the output end;

[0032] The flipping assembly 13 includes a flipping motor 131 and an I-beam clamp 132 driven by the flipping motor 131;

[0033] The transmission component 12 transmits material W in one direction, the oil spraying component 14 sprays oil onto the material W transmitted below it, the flipping motor 131 drives the I-beam clamp 132 to flip the material W from the input end to the output end, and the air blowing component 15 blows away the residual oil from the flipped material W.

[0034] In this embodiment, during the transmission process, the material W undergoes oil spraying, tumbling and blowing processes in sequence without manual intervention. This process can form a uniform and appropriate oil layer on the surface of the material W, ensuring smooth subsequent stamping processing and significantly improving the yield rate.

[0035] As an optional implementation, the bottom of the transmission frame 122 is equipped with several crossbars 1201, the input end side is equipped with an oil injection crossbar 1202, and the output end side is equipped with an air blowing crossbar 1203.

[0036] The fuel injection assembly 14 is mounted on the fuel injection crossbeam 1202, and the air blowing assembly 15 is mounted on the air blowing crossbeam 1203.

[0037] As an optional implementation, several sensors are mounted on the crossbar 1201, the oil spray crossbar 1202, and the air blowing crossbar 1203 to measure the material W placed on the conveyor belt 124.

[0038] Here, sensors are used to achieve precise control of the timing of operations, thus eliminating the need for manual intervention or adjustment of the timing of operations for each component.

[0039] Furthermore, since the operation is triggered by sensors, precise positioning is not required when placing material W; the corresponding component can be activated by the sensor.

[0040] As an optional implementation, when any sensor detects that material W has been transferred to the area below the spray gun 1202, the corresponding spray gun assembly 14 is triggered to spray oil onto material W.

[0041] As an optional implementation, when any sensor detects that material W is being transported and placed on one side of the input end of the I-beam clamp 132, the flipping motor 131 is triggered to drive the I-beam clamp 132 to flip, and the material W is flipped over and placed on the surface of the output end of the conveyor belt 124.

[0042] As an optional implementation, when any sensor detects that the material W has been transferred to the underside of the air blowing crossbar 1203, the corresponding air blowing assembly 15 is triggered to blow away the residual oil from the material W.

[0043] Understandably, the oil spraying rate of the oil spraying assembly 14 and the air blowing pressure of the air blowing assembly 15 should be flexibly adjusted according to the specifications and shape of the material W to ensure that the surface of the material W is coated with an oil layer during the conveying process, and to ensure that the air blowing assembly 15 does not cause the oil layer on the surface of the material W to be lost due to excessive air blowing pressure, so as to facilitate subsequent stamping processing.

[0044] As an alternative implementation, the sensor is an infrared sensor or a microwave sensor.

[0045] Here, the type of sensor should be flexibly configured according to actual needs, and multiple sensors can also be used in combination to obtain good detection accuracy in the working environment of oil splashing.

[0046] As an optional implementation, the oil spraying assembly 14 sprays the falling oil droplets and the air blowing assembly 15 blows away the falling oil droplets, which fall into the oil tank 11.

[0047] As an alternative implementation, one side of material W is concave.

[0048] As an optional implementation, when the material W is placed with its concave side facing up at the input end of the transmission component 12, the flipping component 13 flips the material W so that the material W is placed with its concave side facing down at the output end of the transmission component 12.

[0049] During the oil spraying process of the oil spraying assembly 14, during the tumbling process of the material W, and during the blowing process of the air blowing assembly 15, oil droplets will fall and collect in the oil tank 11, which can be refilled into the oil spraying assembly 14 for recycling.

[0050] Compared with the prior art, this embodiment has the following beneficial effects:

[0051] In this embodiment, the material undergoes oil spraying, tumbling and blowing processes in sequence during the transmission process. No manual intervention is required, which can form a uniform and appropriate oil layer on the surface of the material, ensuring smooth subsequent stamping processing and significantly improving the yield.

Claims

1. A stamping oil injection device characterized by comprising: include: The base (1) has an oil tank (11) at its top, and a transmission assembly (12) and a tilting assembly (13) are assembled on the top of the oil tank (11). The transmission assembly (12) includes a transmission frame (122) with transmission rollers (121) mounted at the input and output ends, a drive motor (123) for driving any of the transmission rollers (121), and a conveyor belt (124) mounted on the transmission rollers (121) at both ends. The transmission assembly (12) has an oil injection assembly (14) at the top of its input end and an air blowing assembly (15) at the top of its output end. The flipping assembly (13) includes a flipping motor (131) and an I-beam clamp (132) driven by the flipping motor (131). The transmission assembly (12) transmits material (W) in one direction, the oil spraying assembly (14) sprays oil onto the material (W) transmitted below it, the flipping motor (131) drives the I-beam clamp (132) to flip the material (W) from the input end to the output end, and the air blowing assembly (15) blows away the residual oil from the flipped material (W).

2. A stamping oil injection device according to claim 1, characterized in that include: The bottom of the transmission frame (122) is equipped with several crossbars (1201), the input end side is equipped with an oil injection crossbar (1202), and the output end side is equipped with an air blowing crossbar (1203). The oil injection assembly (14) is mounted on the oil injection crossbeam (1202), and the air blowing assembly (15) is mounted on the air blowing crossbeam (1203).

3. A stamping oil injection device according to claim 2, characterized in that include: Several sensors are mounted on the crossbar (1201), the oil spray crossbar (1202) and the air blowing crossbar (1203) to measure the material (W) placed on the conveyor belt (124).

4. A stamping oil injection device according to claim 3, wherein include: When any sensor detects that the material (W) has been transferred to the underside of the spray gun (1202), the corresponding spray gun assembly (14) is triggered to spray oil onto the material (W).

5. A stamping oil injection device according to claim 4, wherein include: When any sensor detects that the material (W) is being transferred and placed on one side of the input end of the I-beam clamp (132), the flipping motor (131) is triggered to drive the I-beam clamp (132) to flip, and the material (W) is flipped over and placed on the surface of the output end of the conveyor belt (124).

6. A stamping oil injection device according to claim 5, wherein include: When any sensor detects that the material (W) has been transferred to the underside of the air blowing crossbar (1203), the corresponding air blowing assembly (15) is triggered to blow off the residual oil from the material (W).

7. A stamping oil injection device according to claim 3, wherein include: The sensor is an infrared sensor or a microwave sensor.

8. A stamping oil injection device according to claim 1, wherein include: The oil spraying assembly (14) sprays the falling oil droplets and the air blowing assembly (15) blows away the falling oil droplets, which fall into the oil tank (11).

9. A stamping oil injection device according to claim 1, wherein include: One side of the material (W) is concave.

10. A stamping oil injection device according to claim 9, wherein include: When the material (W) is placed with its concave side facing up at the input end of the transmission assembly (12), the flipping assembly (13) flips the material (W) so that the material (W) is placed with its concave side facing down at the output end of the transmission assembly (12).