All-electric injection molding machine

By introducing structures such as interstitial agitation cavity, horizontal agitation vertical plate and pressurized horizontal plate into the fully electric injection molding machine, the speed reduction motor drive is used to achieve stirring and quantitative discharge of liquid raw materials, which solves the problem of inaccurate solidification and control of liquid raw materials, and improves the injection molding efficiency and speed.

CN120269784APending Publication Date: 2025-07-08NINGBO HAIZHOU MASCH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510605447.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-12
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

The existing fully electric injection molding machines are prone to solidification when liquid raw materials are discharged and cannot accurately control the discharge volume, which affects the injection molding efficiency and speed.

Method used

The structures of interstitial agitation chamber, horizontal agitation vertical plate, pressurized horizontal plate and blocking inner ring are adopted. The agitation and quantitative discharge of liquid raw materials are achieved through the speed reduction motor drive. Combined with the design of pressurized vertical pipe and hollow vertical pipe, it ensures that the liquid raw materials do not solidify during the discharge process and accurately control the discharge amount.

Benefits of technology

It realizes effective stirring of liquid raw materials, prevents solidification, ensures improvement of injection molding efficiency and precise control, and reduces the need for secondary treatment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120269784A_ABST
    Figure CN120269784A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of injection molding machines, in particular to an all-electric injection molding machine which comprises a bottom support supporting plate and a fixed support arm plate fixedly connected to the bottom support supporting plate, an injection molding calandria is fixedly connected to the fixed support arm plate, an interval storage stirring cavity is rotationally connected to the injection molding calandria, and a transverse support fixing plate is fixedly connected into the interval storage stirring cavity. A plurality of transverse stirring vertical plates are uniformly and fixedly connected to the transverse support fixing plate, a storage cavity is fixedly connected to the fixed support arm plate, the storage cavity is rotationally connected with an interval storage stirring cavity, a transmission gear I is fixedly connected to the interval storage stirring cavity, a gear motor I is fixedly connected to the fixed support arm plate, and a transmission gear II is fixedly connected to an output shaft of the gear motor I; and the transmission gear II is in meshed transmission connection with the transmission gear I. The injection molding equipment has the beneficial effects that the discharged liquid raw materials can be stirred, the liquid raw materials are prevented from being solidified when being discharged, the amount of the discharged liquid raw materials can be accurately controlled, secondary treatment does not need to be conducted on the discharged liquid raw materials, and the injection molding efficiency of the liquid raw materials is further improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of injection molding machines, and in particular to a full-electric injection molding machine. Background Art

[0002] Injection molding machine is also called injection molding machine or injection machine. It is the main molding equipment that uses plastic molding molds to make plastic products of various shapes from thermoplastics or thermosetting plastics. It is divided into vertical, horizontal and all-electric types. The injection molding machine can heat the plastic and apply high pressure to the molten plastic to make it eject and fill the mold cavity. Traditional injection molding machines mostly use hydraulic drive systems and have a large output force.

[0003] With the development of motor control technology and mechanical transmission technology, all-electric injection molding machines are gradually emerging. Existing all-electric injection molding machines have made progress in structural design, transmission efficiency, control accuracy, and energy-saving effects compared to the past. However, there are still some problems, such as the inability to stir the liquid raw materials to be discharged, which may cause the liquid raw materials to solidify at the discharge port; the inability to accurately control the discharge amount, which may cause more or less liquid raw materials to be discharged, resulting in the recycling or secondary addition of liquid raw materials, which seriously affects the injection speed. For this reason, it is particularly important to design a fully automatic injection molding machine that can stir and control the discharge amount at the discharge port. Summary of the invention

[0004] A technical problem to be solved by the present application is: to achieve stirring treatment of the discharged liquid raw material to prevent the liquid raw material from solidifying during discharge, and to accurately control the amount of the discharged liquid raw material without the need for secondary treatment of the discharged liquid raw material, thereby further improving the injection molding efficiency of the liquid raw material.

[0005] In order to solve the above technical problems, an embodiment of the present application provides a fully electric injection molding machine, including a bottom supporting plate and a fixed supporting arm plate fixedly connected to the bottom supporting plate, an injection molding pipe is fixedly connected to the fixed supporting arm plate, an intermediate storage stirring chamber is rotatably connected to the injection molding pipe, a horizontal supporting plate is fixedly connected in the intermediate storage stirring chamber, a plurality of horizontal stirring vertical plates are evenly fixedly connected to the horizontal supporting plate, a material storage cavity is fixedly connected to the fixed supporting arm plate, and the material storage cavity is rotatably connected to the intermediate storage stirring chamber.

[0006] In some embodiments, a transmission gear I is fixedly connected to the intermediate stirring chamber, a reduction motor I is fixedly connected to the fixed support arm plate, a transmission gear II is fixedly connected to the output shaft of the reduction motor I, and the transmission gear II is meshed and transmission-connected with the transmission gear I.

[0007] In some embodiments, a feeding cone is fixedly connected to the material storage cavity.

[0008] In some embodiments, pressure - applying cross - tubes are fixedly connected to both ends above the storage cavity. Deceleration motors II are fixedly connected to the outer ends of the two pressure - applying cross - tubes. Cross - translation lead screws are fixedly connected to the output shafts of the two deceleration motors II. Pressure - applying cross - plates are slidably connected to the two pressure - applying cross - tubes through keyways. The two pressure - applying cross - plates are respectively in threaded transmission connection with the two cross - translation lead screws.

[0009] In some embodiments, pressure - applying vertical tubes are fixedly connected to the upper parts of the inner ends of the two pressure - applying cross - tubes. Deceleration motors III are fixedly connected to the upper parts of the two pressure - applying vertical tubes. Lifting lead screws are fixedly connected to the output shafts of the two deceleration motors III. Lifting sliding plates are slidably connected to the two pressure - applying vertical tubes through keyways. The two lifting sliding plates are respectively in threaded transmission connection with the two lifting lead screws.

[0010] In some embodiments, a shielding outer ring is slidably connected to the storage cavity. A plurality of fixed - support arch plates are evenly and fixedly connected to the shielding outer ring. A shielding inner ring is fixedly connected to the plurality of fixed - support arch plates. The shielding inner ring and the shielding outer ring are in the same plane and there is a circular - ring gap between them.

[0011] In some embodiments, a deceleration motor IV is fixedly connected to the shielding inner ring. An adjustment lead screw is fixedly connected to the output shaft of the deceleration motor IV. An internal - thread cavity is slidably connected to the shielding inner ring. The adjustment lead screw is in threaded transmission connection with the internal - thread cavity. A speed - control circular ring is fixedly connected to the lower part of the internal - thread cavity.

[0012] In some embodiments, a supporting gear is rotatably connected in the circular - ring gap between the shielding inner ring and the shielding outer ring. A plurality of hollow vertical tubes are rotatably connected to the supporting gear. A plurality of hollow stirring plates are evenly and fixedly connected to the plurality of hollow vertical tubes and are communicated with each other. The lower parts of the plurality of hollow vertical tubes are rotatably connected to a sealing rotating plate and are communicated with each other. A collection cavity is rotatably connected to the sealing rotating plate and is sealed. A drain pipe is fixedly connected to the collection cavity. The drain pipe is fixedly connected to the storage cavity and the fixed - support arm plate. A storage cavity is fixedly connected to the upper parts of the plurality of hollow vertical tubes and is communicated with each other.

[0013] In some embodiments, a circumferential gear is fixedly connected to each of the plurality of hollow vertical tubes. A fixed gear is fixedly connected to the shielding inner ring. The plurality of circumferential gears are all in meshing transmission connection with the fixed gear.

[0014] In some embodiments, a deceleration motor V is fixedly connected to the shielding inner ring. A driving gear is fixedly connected to the output shaft of the deceleration motor V. The driving gear is in meshing transmission connection with the supporting gear.

[0015] The present invention has at least the following beneficial effects:

[0016] 1. When the intermediate storage stirring cavity rotates, it can drive multiple horizontal stirring vertical plates to rotate through the horizontal support fixed plate, so as to realize the stirring treatment of the bottom of the storage cavity and the liquid raw material in the injection pipe. In this way, it can ensure that the liquid raw material discharged through the injection pipe will not solidify, and further improve the injection efficiency.

[0017] 2. After starting the reduction motor II, it can drive the horizontal movement lead screw to rotate. The rotating horizontal movement lead screw will drive the pressure application horizontal plate to slide from the outside to the inside of the pressure application horizontal pipe, so as to realize the transmission of pressure into the storage cavity. At this time, the liquid raw material in the storage cavity is discharged through the injection pipe. Through the movement of the two pressure application horizontal plates, the quantitative treatment of the discharged liquid raw material can be carried out to ensure the discharge of the required amount of liquid raw material. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The present invention will be further described in detail below in conjunction with the drawings and specific implementation methods.

[0019] Figure 1 is a schematic structural diagram of the overall structure of a fully electric injection molding machine;

[0020] Figure 2 is a schematic structural diagram of a part of a fully electric injection molding machine;

[0021] Figure 3 is a schematic cross-sectional structural diagram of an embodiment for stirring the discharged liquid raw material;

[0022] Figure 4 is a schematic structural diagram of an embodiment for storing liquid raw material;

[0023] Figure 5 is a schematic cross-sectional structural diagram of an embodiment for storing liquid raw material;

[0024] Figure 6 is a schematic structural diagram of an embodiment for stirring liquid raw material;

[0025] Figure 7 is a schematic partial structural diagram of an embodiment for stirring liquid raw material;

[0026] Figure 8 is a schematic structural diagram of an embodiment for controlling the falling speed of liquid raw material;

[0027] Figure 9 is a schematic structural diagram of an embodiment for comprehensively stirring liquid raw material;

[0028] Figure 10 is a schematic partial structural diagram of an embodiment for comprehensively stirring liquid raw material.

[0029] In the figure: bottom support plate 101, fixed support arm plate 102, injection molding pipe 103, intermediate storage stirring cavity 104, horizontal support fixing plate 105, horizontal stirring vertical plate 106, storage cavity 107, transmission gear I 201, reduction motor I 202, transmission gear II 203, feeding cone cavity 301, pressure - applying horizontal pipe 401, reduction motor II 402, horizontal translation lead screw 403, pressure - applying horizontal plate 404, pressure - applying vertical pipe 501, reduction motor III 502, lifting lead screw 503, lifting slide plate 504, shielding inner ring 601, fixed support arch plate 602, shielding outer ring 603, reduction motor IV 701, adjustment lead screw 702, internal thread cavity 703, speed - control ring 704, supporting gear 801, hollow vertical pipe 802, hollow stirring plate 803, sealing rotating plate 804, collection cavity 805, liquid discharge pipe 806, storage cavity 807, circumferential gear 901, fixed gear 902, reduction motor V 903, driving gear 904. Specific implementation mode

[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0031] Embodiment 1: Please refer to Figure 1-5 , the present invention provides a technical solution: an all - electric injection molding machine, including a bottom support plate 101 and a fixed support arm plate 102 fixedly connected to the bottom support plate 101. A injection molding pipe 103 is fixedly connected to the fixed support arm plate 102. An intermediate storage stirring cavity 104 is rotatably connected to the injection molding pipe 103. A horizontal support fixing plate 105 is fixedly connected inside the intermediate storage stirring cavity 104. A plurality of horizontal stirring vertical plates 106 are evenly and fixedly connected to the horizontal support fixing plate 105. A storage cavity 107 is fixedly connected to the fixed support arm plate 102. The storage cavity 107 is rotatably connected to the intermediate storage stirring cavity 104.

[0032] Furthermore, the bottom support plate 101 plays a supporting and fixing role, so that the device can be placed stably on the ground, and can also provide a fixed space for the fixed support arm plate 102. The mold can be placed on the bottom support plate 101, and the fixed support arm plate 102 plays a fixed supporting role. The liquid raw material is discharged through the injection molding row pipe 103. The mold can be placed below the injection molding row pipe 103. The injection molding row pipe 103 is provided with a valve. After opening the valve, the liquid raw material will be discharged through the injection molding row pipe 103. The liquid raw material will first enter the intermediate storage stirring chamber 104, and the stirring process of the liquid raw material will be completed in the intermediate storage stirring chamber 104. The intermediate storage stirring chamber 104 can be a horizontal support fixing plate 105. Providing a fixed space, the horizontal supporting plate 105 can provide a fixed space for multiple horizontal stirring vertical plates 106. The rotation of multiple horizontal stirring vertical plates 106 can realize stirring of liquid raw materials, and a large amount of liquid raw materials can be stored in the storage cavity 107. The storage cavity 107 can also provide a rotating space above the intermediate storage stirring chamber 104 to ensure that the intermediate storage stirring chamber 104 can rotate smoothly. Moreover, the connection between the intermediate storage stirring chamber 104 and the injection molding pipe 103 and the storage cavity 107 is sealed and can only rotate. The liquid raw material will not leak out through the connection between the intermediate storage stirring chamber 104 and the injection molding pipe 103 and the storage cavity 107.

[0033] First, place the liquid raw material into the material storage cavity 107, and then place the mold on the bottom support plate 101 and below the injection molding tube 103. The liquid raw material in the material storage cavity 107 will flow into the intermediate stirring chamber 104 and the injection molding tube 103. At this time, the intermediate stirring chamber 104 is rotated, and the horizontal supporting plate 105 drives the multiple horizontal stirring vertical plates 106 to rotate, so as to achieve the stirring treatment of the liquid raw material at the bottom of the material storage cavity 107 and the injection molding tube 103. In this way, it can be ensured that the liquid raw material discharged through the injection molding tube 103 will not solidify, and the injection molding efficiency is further improved. Finally, the valve on the injection molding tube 103 is opened, and the liquid raw material in the injection molding tube 103 will be discharged and finally fall into the mold to complete the injection molding of the liquid raw material.

[0034] Example 2: Please refer to Figure 1-4 The present invention provides a technical solution: a fully electric injection molding machine, wherein a transmission gear I201 is fixedly connected to the intermediate stirring chamber 104, a reduction motor I202 is fixedly connected to the fixed support arm plate 102, a transmission gear II203 is fixedly connected to the output shaft of the reduction motor I202, and the transmission gear II203 is meshed and transmission-connected with the transmission gear I201.

[0035] Further, the intermediate storage stirring chamber 104 can be driven to rotate by the transmission gear I 201. The rotation of the intermediate storage stirring chamber 104 is used to stir the liquid raw material to be discharged, which can ensure that there are no solidified blocks in the discharged liquid raw material. The reduction motor I 202 is connected to the power supply through a wire and a switch. After starting the reduction motor I 202, the transmission gear II 203 can be driven to rotate. The rotating transmission gear II 203 can drive the transmission gear I 201 to rotate, and finally the rotation of the intermediate storage stirring chamber 104 is completed.

[0036] Embodiment 3: Please refer to Figure 1 、 4 and 5. The present invention provides a technical solution: a fully electric injection molding machine, and a feeding cone cavity 301 is fixedly connected to the storage cavity 107.

[0037] Further, after the feeding cone cavity 301 is provided, it is convenient to add the liquid raw material into the storage cavity 107. Moreover, a filter layer is installed in the feeding cone cavity 301, and the filter layer can be used to filter the liquid raw material to ensure that there is no residue of impurities in the liquid raw material. If impurities enter the storage cavity 107, it will affect the injection molding quality. Moreover, the feeding cone cavity 301 is provided with a sealing cover. After the liquid raw material is added, the sealing treatment of the feeding cone cavity 301 by using the sealing cover can prevent impurities from entering the storage cavity 107, and also realizes the sealing treatment of the feeding cone cavity 301, which is convenient for the later pressure discharge treatment.

[0038] Embodiment 4: Please refer to Figure 1 、 4 and 5. The present invention provides a technical solution: a fully electric injection molding machine, and pressure application horizontal pipes 401 are fixedly connected to both ends above the storage cavity 107. Reduction motors II 402 are fixedly connected to the outer ends of the two pressure application horizontal pipes 401. Horizontal translation lead screws 403 are fixedly connected to the output shafts of the two reduction motors II 402. Pressure application horizontal plates 404 are slidably connected to the two pressure application horizontal pipes 401 through key grooves, and the two pressure application horizontal plates 404 are respectively in threaded transmission connection with the two horizontal translation lead screws 403.

[0039] Further, the pressure application horizontal pipe 401 can provide a fixed space for the reduction motor II 402 and also provide a sliding space for the pressure application horizontal plate 404. After starting the reduction motor II 402, the horizontal translation lead screw 403 can be driven to rotate. The rotating horizontal translation lead screw 403 will drive the pressure application horizontal plate 404 to slide from the outside to the inside of the pressure application horizontal pipe 401, so as to transfer the pressure into the storage cavity 107. At this time, the liquid raw material in the storage cavity 107 is discharged through the injection molding discharge pipe 103. The quantitative treatment of the discharged liquid raw material can be achieved by the movement of the two pressure application horizontal plates 404 to ensure the discharge of the required amount of liquid raw material.

[0040] Embodiment 5: Please refer toFigure 1 , 4 As shown in FIGS. 4 and 5, the present invention provides a technical solution: a fully electric injection molding machine. Above the inner ends of the two pressurizing horizontal pipes 401, there are fixedly connected with pressurizing vertical pipes 501. Above the two pressurizing vertical pipes 501, there are fixedly connected with reduction motors III 502. On the output shafts of the two reduction motors III 502, there are fixedly connected with lifting lead screws 503. Inside the two pressurizing vertical pipes 501, there are slidably connected with lifting slides 504 through key grooves. The two lifting slides 504 are respectively in threaded transmission connection with the two lifting lead screws 503.

[0041] Furthermore, after arranging two pressurizing vertical pipes 501, the pressurizing space of the two pressurizing horizontal pipes 401 can be increased. And the diameters of the two pressurizing vertical pipes 501 are smaller than the diameters of the two pressurizing horizontal pipes 401. After starting the reduction motor III 502, it can drive the lifting lead screw 503 to rotate. The rotating lifting lead screw 503 will drive the lifting slide 504 to slide up and down, so as to realize the transfer of pressure to the storage cavity 107 through the two pressurizing vertical pipes 501, and use the two pressurizing horizontal pipes 401 to quickly discharge the liquid raw material. When it is almost full, use the two pressurizing vertical pipes 501 to transfer the pressure to the storage cavity 107. Because using the two pressurizing vertical pipes 501 can more accurately determine the amount of the discharged liquid raw material, finally realizing the accurate discharge of the liquid raw material, without the need for subsequent treatment of the liquid raw material, avoiding the recycling or secondary addition of the liquid raw material, and further improving the injection speed.

[0042] Example 6: Please refer to Figure 1 , 4 As shown in FIGS. 6 - 9, the present invention provides a technical solution: a fully electric injection molding machine. A shielding outer ring 603 is slidably connected to the storage cavity 107. A plurality of fixed support arch plates 602 are uniformly fixedly connected to the shielding outer ring 603. A shielding inner ring 601 is fixedly connected to the plurality of fixed support arch plates 602. The shielding inner ring 601 and the shielding outer ring 603 are in the same plane and there is a circular ring gap between them.

[0043] Furthermore, the shielding inner ring 601 and the shielding outer ring 603 are fixed together through a plurality of fixed support arch plates 602. After the shielding inner ring 601 and the shielding outer ring 603 are fixed together, the shielding and sealing treatment of the opening above the storage cavity 107 can be realized. The circular ring gap between the shielding inner ring 601 and the shielding outer ring 603 can provide a rotating space for the supporting gear 801.

[0044] Example 7: Please refer to Figure 1 , 4As shown in FIGS. 6 - 8, the present invention provides a technical solution: a fully electric injection molding machine. A reduction motor IV 701 is fixedly connected to the inner shielding ring 601. An adjustment lead screw 702 is fixedly connected to the output shaft of the reduction motor IV 701. An internal thread cavity 703 is slidably connected to the inner shielding ring 601. The adjustment lead screw 702 is in threaded transmission connection with the internal thread cavity 703. A speed control ring 704 is fixedly connected below the internal thread cavity 703.

[0045] Furthermore, after starting the reduction motor IV 701, it can drive the adjustment lead screw 702 to rotate. The rotating adjustment lead screw 702 will drive the speed control ring 704 to move up and down through the internal thread cavity 703, thereby changing the size of the gap between the speed control ring 704 and the material storage cavity 107. Different sizes of the gap between the speed control ring 704 and the material storage cavity 107 will result in different discharge speeds of the liquid raw material. When the liquid raw material is just discharged, the gap between the speed control ring 704 and the material storage cavity 107 can be increased to allow the liquid raw material to be discharged quickly. When the liquid raw material is almost finished being injected, the gap between the speed control ring 704 and the material storage cavity 107 is reduced to slow down the discharge speed of the liquid raw material. In this way, on the premise of ensuring the injection effect, the injection time can be further shortened.

[0046] Example 8: Please refer to Figure 1 、 4 -7, 9 and 10, the present invention provides a technical solution: a fully electric injection molding machine. A supporting gear 801 is rotatably connected in the circular ring notch between the inner shielding ring 601 and the outer shielding ring 603. A plurality of hollow vertical tubes 802 are evenly and rotatably connected to the supporting gear 801. A plurality of hollow stirring plates 803 are evenly and fixedly connected to and communicated with the plurality of hollow vertical tubes 802. The lower parts of the plurality of hollow vertical tubes 802 are rotatably connected through circular holes with a sealing rotating plate 804 and are communicated therewith. The connection part is sealed, and the liquid raw material will not enter the collection cavity 805 through the air connection part. A collection cavity 805 is rotatably connected to the sealing rotating plate 804 and is sealed. A drain pipe 806 is fixedly connected to the collection cavity 805. The drain pipe 806 is fixedly connected to the material storage cavity 107 and the fixed support arm plate 102. A storage cavity 807 is fixedly connected and communicated with the upper parts of the plurality of hollow vertical tubes 802.

[0047] Furthermore, the supporting gear 801 plays a role in bearing and connecting, and can provide a fixed space for multiple hollow vertical pipes 802. The multiple hollow vertical pipes 802 can provide a fixed space for multiple groups of multiple hollow stirring plates 803. Moreover, a hollow structure design is adopted between the hollow vertical pipes 802 and the multiple hollow stirring plates 803 connected thereto to achieve the circulation of liquid. The liquid entering the multiple hollow vertical pipes 802 and multiple groups of multiple hollow stirring plates 803 can enter the collection cavity 805 through the sealing rotating plate 804. The liquid entering the collection cavity 805 will be discharged through the drain pipe 806. Hot water can be added to the storage cavity 807. Then, the hot water in the storage cavity 807 will enter the multiple hollow vertical pipes 802 and finally flow into multiple groups of multiple hollow stirring plates 803, keeping the multiple hollow vertical pipes 802 and multiple groups of multiple hollow stirring plates 803 in a warm state. This ensures that the multiple hollow vertical pipes 802 can stir the liquid raw material in a warm state for multiple groups of multiple hollow stirring plates 803, improving the stirring efficiency of the liquid raw material and preventing the liquid raw material from solidifying on the multiple hollow vertical pipes 802 and multiple groups of multiple hollow stirring plates 803 due to temperature drop. The hot water located in the multiple hollow vertical pipes 802 and multiple groups of multiple hollow stirring plates 803 can flow back into the collection cavity 805 through the sealing rotating plate 804 and finally be discharged through the drain pipe 806. The drain pipe 806 can be connected to a water tank, and the hot water in the water tank is pumped into the storage cavity 807 by a water pump to achieve the circulation of hot water, ensuring that the multiple hollow vertical pipes 802 and multiple groups of multiple hollow stirring plates 803 are always in a warm state. When the supporting gear 801 rotates, it can drive the multiple hollow vertical pipes 802 and multiple groups of multiple hollow stirring plates 803 to rotate in the storage cavity 107, thereby realizing the stirring process of the liquid raw material in the storage cavity 107 and preventing the solidification of the liquid raw material in the storage cavity 107.

[0048] Embodiment 9: Please refer to Figure 1 and 4 -10. The present invention provides a technical solution: a fully electric injection molding machine. Circumferential gears 901 are fixedly connected to multiple said hollow vertical pipes 802, and a fixed gear 902 is fixedly connected to the shielding inner ring 601. The multiple circumferential gears 901 are all in meshing transmission connection with the fixed gear 902.

[0049] Furthermore, when the supporting gear 801 drives the multiple hollow vertical pipes 802 to rotate, the multiple hollow vertical pipes 802 will also rotate, and finally drive the multiple circumferential gears 901 to rotate. When the multiple circumferential gears 901 rotate, they will come into contact with the fixed fixed gear 902. At this time, the multiple circumferential gears 901 will perform a movement of rotating around their own axis, thereby realizing the movement of driving the multiple hollow vertical pipes 802 to rotate around their own axis, completing the movement of the multiple hollow vertical pipes 802 rotating while rotating around their own axis, and further improving the stirring efficiency of the liquid raw material in the storage cavity 107.

[0050] Embodiment 10: Please refer to Figure 1 、 4 Figures 6 and 7. The present invention provides a technical solution: a fully electric injection molding machine. A reduction motor V903 is fixedly connected to the inner shielding ring 601. A driving gear 904 is fixedly connected to the output shaft of the reduction motor V903. The driving gear 904 is in meshing transmission connection with a supporting gear 801.

[0051] Further, after starting the reduction motor V903, the driving gear 904 can be driven to rotate. The rotating driving gear 904 will drive the supporting gear 801 to rotate, so as to realize the stirring process of the liquid raw material in the storage cavity 107.

[0052] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention.

Claims

1. A fully electric injection molding machine, characterized in that: The invention comprises a bottom supporting plate (101) and a fixed supporting arm plate (102) fixedly connected to the bottom supporting plate (101); an injection molding row pipe (103) is fixedly connected to the fixed supporting arm plate (102); an intermediate storage stirring chamber (104) is rotatably connected to the injection molding row pipe (103); a horizontal supporting fixing plate (105) is fixedly connected in the intermediate storage stirring chamber (104); a plurality of horizontal stirring vertical plates (106) are evenly fixedly connected to the horizontal supporting fixing plate (105); a material storage cavity (107) is fixedly connected to the fixed supporting arm plate (102); and the material storage cavity (107) is rotatably connected to the intermediate storage stirring chamber (104).

2. The all-electric injection molding machine according to claim 1, characterized in that: The intermediate stirring chamber (104) is fixedly connected with a transmission gear I (201), the fixed support arm plate (102) is fixedly connected with a reduction motor I (202), the output shaft of the reduction motor I (202) is fixedly connected with a transmission gear II (203), and the transmission gear II (203) is meshed and transmission-connected with the transmission gear I (201).

3. The all-electric injection molding machine according to claim 1, characterized in that: The material storage cavity (107) is fixedly connected to a material feeding cone cavity (301).

4. An all-electric injection molding machine according to claim 1, characterized in that: Both ends above the material storage cavity (107) are fixedly connected to a pressurizing transverse tube (401), the outer ends of the two pressurizing transverse tubes (401) are fixedly connected to a reduction motor II (402), the output shafts of the two reduction motors II (402) are fixedly connected to a transverse screw (403), the insides of the two pressurizing transverse tubes (401) are slidably connected to a pressurizing transverse plate (404) via a keyway, and the two pressurizing transverse plates (404) are respectively connected to the two transverse screws (403) via threaded transmission.

5. An all-electric injection molding machine according to claim 4, characterized in that: A pressurizing vertical pipe (501) is fixedly connected to the upper part of the inner end of the two pressurizing horizontal pipes (401), a reduction motor III (502) is fixedly connected to the upper part of the two pressurizing vertical pipes (501), a lifting screw (503) is fixedly connected to the output shaft of the two reduction motors III (502), and a lifting slide plate (504) is slidably connected to the inside of the two pressurizing vertical pipes (501) through a key groove, and the two lifting slide plates (504) are respectively connected to the two lifting screws (503) through threaded transmission.

6. The all-electric injection molding machine according to claim 1, characterized in that: The material storage cavity (107) is slidably connected to a shielding outer ring (603), a plurality of fixed support arch plates (602) are evenly fixedly connected to the shielding outer ring (603), a shielding inner ring (601) is fixedly connected to the plurality of fixed support arch plates (602), and the shielding inner ring (601) and the shielding outer ring (603) are located in the same plane with a circular ring gap left therebetween.

7. An all-electric injection molding machine according to claim 6, characterized in that: The shielding inner ring (601) is fixedly connected to a reduction motor IV (701), the output shaft of the reduction motor IV (701) is fixedly connected to an adjustment screw (702), the shielding inner ring (601) is slidably connected to an internal thread cavity (703), the adjustment screw (702) and the internal thread cavity (703) are connected via threaded transmission, and a speed control ring (704) is fixedly connected below the internal thread cavity (703).

8. A fully electric injection molding machine according to claim 7, characterized in that: A supporting gear (801) is rotatably connected in the annular gap between the shielding inner ring (601) and the shielding outer ring (603); a plurality of hollow vertical tubes (802) are evenly rotatably connected to the supporting gear (801); a plurality of hollow stirring plates (803) are evenly fixedly connected to the plurality of hollow vertical tubes (802) and are connected; a sealing rotating plate (804) is rotatably connected to the bottom of the plurality of hollow vertical tubes (802) and is connected; a collecting cavity (805) is rotatably connected to the sealing rotating plate (804) and is sealed; a drain pipe (806) is fixedly connected to the collecting cavity (805); the drain pipe (806) is fixedly connected to the material storage cavity (107) and the fixed support arm plate (102); a storage cavity (807) is fixedly connected to the top of the plurality of hollow vertical tubes (802) and is connected.

9. The all-electric injection molding machine according to claim 8, characterized in that: A plurality of the hollow vertical tubes (802) are all fixedly connected with a circumferential gear (901), a fixed gear (902) is fixedly connected with the shielding inner ring (601), and the plurality of circumferential gears (901) are all meshed and transmission-connected with the fixed gear (902).

10. A fully electric injection molding machine according to claim 8, characterized in that: The shielding inner ring (601) is fixedly connected to a reduction motor V (903), and a driving gear (904) is fixedly connected to the output shaft of the reduction motor V (903). The driving gear (904) is meshed and transmission-connected with the supporting gear (801).