Automatic pouring forming machine for environment-friendly soft sweets

By adopting an annular conveying chain and multiple mold designs in the fudge casting machine, the corresponding relationship between the detachable plastic mold plate and the casting device is solved, and the problems of high mold cost, low efficiency and pollution in the prior art are achieved, and efficient and sanitary fudge production are achieved.

CN222885204UActive Publication Date: 2025-05-20GUANGDONG GOOD MOOD FOOD GRP CO LTD
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Patent Information

Application Number
CN202520586084.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-31
Publication Date
2025-05-20
Estimated Expiration
2035-03-31

AI Technical Summary

Technical Problem

The molds of the existing gum candy casting machines use single-row metal spray molds, which are cost-effective and have low casting efficiency, and the metal leather fragments are prone to fall off, contaminating the gum candy, resulting in unhygienic products and low qualified yield.

Method used

The design of an annular conveying chain and multiple molds is adopted. The mold includes a stainless rectangular frame and a removable plastic mold plate. There are multiple mold cavitys on the plastic mold plate. The casting device corresponds to the mold cavity one by one. It is continuously produced through the annular conveying chain. The cooling device and the finished conveying belt are used in conjunction with each other to ensure the formation and output of the fondant.

Benefits of technology

It realizes safe and hygienic production of fudge, improves casting efficiency and molding effect, reduces production costs, avoids metal debris pollution, and improves the hygiene and quality of the product.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an automatic pouring forming machine for environment-friendly soft sweets, which comprises an annular conveying chain, at least one pouring device, a cooling device, a finished product conveying belt and a plurality of molds, each mold is arranged on the annular conveying chain, and the pouring device, the cooling device and the finished product conveying belt are sequentially arranged along the conveying direction of the annular conveying chain. The pouring device and the cooling device are both located above the annular conveying chain. The mold comprises a stainless rectangular frame and a plastic mold disc, the stainless rectangular frame is installed on the annular conveying chain, a containing groove capable of containing the plastic mold disc is formed in the stainless rectangular frame, and the edges of the four vertex angles of the stainless rectangular frame are each provided with a cap-shaped cover with a downward opening. Each cap-shaped cover is internally provided with an elastic pressing piece capable of positioning the upper surface of the plastic mold disc, the plastic mold disc is detachably installed in the containing groove through the elastic pressing pieces, a plurality of mold cavities with upward openings are formed in the plastic mold disc, and the mold cavities are evenly distributed into multiple rows and multiple columns; and a plurality of pouring nozzles are arranged on the pouring device.
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Description

Technical Field

[0001] The utility model relates to the technical field of gummy candy forming production equipment, in particular to an environment-friendly automatic gummy candy pouring and forming machine. Background Art

[0002] Gummy candy is a kind of soft and slightly elastic candy, and its water content is usually 10-20%. At present, in the industrial production of gummy candy, a pouring machine is mostly used to pour and form gummy candy.

[0003] The gummy candy pouring machine generally includes a frame, a conveying chain, a plurality of molds, a feeding device and a cooling device. The conveying chain is arranged on the frame, and the plurality of molds are sequentially arranged on the conveying chain along the conveying direction of the conveying chain. The feeding device is arranged on the frame and is located above one end of the conveying chain. The cooling device is arranged on the frame and is located on one side of the feeding device close to the other end of the conveying chain. At least one mold cavity is arranged on the top surface of each mold. The feeding device injects liquid syrup into the mold cavity of the mold directly below it. Under the conveying of the conveying chain, the mold for pouring gummy candy enters the cooling device for cooling and forming, and then demolding is carried out, that is, the production of gummy candy is completed.

[0004] However, the mold of this kind of gummy candy pouring machine adopts a single-row metal spraying mold. This kind of single-row metal spraying mold has a high cost and a low pouring efficiency. Moreover, the metal skin fragments on the inner wall of this metal spraying mold are easy to fall off, and these metal skin fragments are easy to stick to the surface of the gummy candy, making the produced gummy candy products unhygienic, with a low qualified product rate and a poor forming effect, and failing to ensure the health and hygiene of gummy candy food. Summary of the Utility Model

[0005] The problem to be solved by the utility model is to provide an environment-friendly automatic gummy candy pouring and forming machine, which can continuously produce a plurality of gummy candies, is safe and hygienic, and improves the pouring efficiency and forming effect.

[0006] In order to solve the above technical problems, the technical scheme adopted by the utility model is as follows:

[0007] An environmentally friendly gummy automatic pouring and molding machine, comprising an annular conveying chain, at least one pouring device, a cooling device, a finished product conveyor belt, and a plurality of molds. Each mold is sequentially arranged on the annular conveying chain along the conveying direction of the annular conveying chain. The pouring device, the cooling device, and the finished product conveyor belt are sequentially arranged along the conveying direction of the annular conveying chain. Moreover, the pouring device and the cooling device are both located above the annular conveying chain, and the finished product conveyor belt is located below the annular conveying chain. It is characterized in that: the mold includes a stainless steel rectangular frame and a plastic mold plate. The stainless steel rectangular frame is installed on the annular conveying chain. There is a receiving groove on the stainless steel rectangular frame that can accommodate the plastic mold plate. At the four top corner edges of the stainless steel rectangular frame, there are respectively cap-shaped covers with openings facing downwards. Inside each cap-shaped cover, there is an elastic pressing member that can position the upper surface of the plastic mold plate. The plastic mold plate is detachably installed in the receiving groove through each elastic pressing member. The plastic mold plate is provided with a plurality of mold cavities with openings facing upwards, and each mold cavity is evenly distributed in multiple rows and columns; the pouring device is provided with a plurality of pouring nozzles, and the number of pouring nozzles is the same as that of the mold cavities and they correspond one by one.

[0008] Since the plastic mold plate is detachably installed in the receiving groove, a different plastic mold plate can be replaced for each gummy variety produced, and thus multiple types of gummies can be produced.

[0009] Before pouring, each plastic mold plate is installed in the receiving groove of the corresponding stainless steel rectangular frame, and each plastic mold plate is positioned in the receiving groove through each elastic pressing member.

[0010] During pouring, syrup is poured into the corresponding mold cavities on the plastic mold plate through the pouring nozzles of the pouring device. After pouring, each mold is conveyed to the area of the cooling device by the annular conveying chain, and the syrup in each mold cavity is cooled and shaped by the cooling device; when the annular conveying chain rotates the shaped gummies below the annular conveying chain, due to the action of gravity, the gummy finished products naturally fall onto the finished product conveyor belt, and finally the gummy finished products are output directionally by the finished product conveyor belt.

[0011] In a preferred solution, the elastic pressing member includes a compression spring and a steel ball. The compression spring is inside the cap-shaped cover, and the upper end of the compression spring is fixedly connected to the top of the cap-shaped cover. The steel ball is connected to the lower end of the compression spring, and the lower part of the steel ball protrudes below the opening of the cap-shaped cover; at the four top corner edges of the upper surface of the plastic mold plate, there are respectively grooves corresponding to the openings of the cap-shaped covers. When the plastic mold plate is installed in the receiving groove, the lower part of the steel ball is in the groove. In the initial state, the lower part of the steel ball protrudes below the opening of the cap-shaped cover under the action of the compression spring. When the plastic mold plate is installed in the receiving groove, the compression spring is squeezed by the upper surface of the plastic mold plate through the steel ball, and the lower part of the steel ball is squeezed into the corresponding groove of the plastic mold plate to position and press the plastic mold plate.

[0012] In a preferred embodiment, the pouring device includes a frame, a lifting drive mechanism, a connecting plate, a fixed seat, a middle-position movable plate, a plurality of piston columns, and a cylinder capable of driving the middle-position movable plate to move horizontally; the number of piston columns is the same as that of the pouring nozzles and they correspond to each other one by one; the lifting drive mechanism is installed on the frame, the connecting plate is connected to the power output end of the lifting drive mechanism, the fixed seat is installed on the frame and is located below the connecting plate, and the upper ends of the respective piston columns are all connected to the connecting plate; the upper surface of the fixed seat is provided with a plurality of guide holes evenly distributed in multiple rows and columns, and the respective piston columns are respectively located in the corresponding guide holes; the lower surface of the fixed seat is provided with a plurality of pouring ports corresponding to the guide holes, the respective pouring nozzles are respectively installed in the corresponding pouring ports, and the lower ends of the respective piston columns can extend into the pouring ports; the cylinder is installed on the frame, the side wall of the fixed seat is provided with a first through hole communicating with the inner cavity of the fixed seat, the piston rod of the cylinder passes through the first through hole, and the end of the piston rod of the cylinder is located in the inner cavity of the fixed seat, the middle-position movable plate is located in the inner cavity of the fixed seat and can move horizontally in the inner cavity of the fixed seat, and the middle-position movable plate is connected to the end of the piston rod of the cylinder; the middle-position movable plate is provided with a plurality of second through holes corresponding to the guide holes and the pouring ports, the lower surface of the middle-position movable plate is in contact and cooperation with the lower surface of the inner cavity of the fixed seat, and there is a plane between adjacent two second through holes capable of covering the corresponding pouring port; at least one feed port is provided on the side wall of the fixed seat, the feed port communicates with the inner cavity of the fixed seat, and the feed port is located between the upper surface of the fixed seat and the middle-position movable plate. The above-mentioned middle-position movable plate plays a switching role during the movement process, opening and closing the respective pouring ports. During pouring, the feed port on the side wall of the fixed seat is connected to an external syrup storage bin; then, the lifting drive mechanism drives the connecting plate and the connected piston columns to move up and down (the whole plate is lifted and lowered as a combination): the lifting drive mechanism drives the connecting plate and the connected piston columns to move upward, increasing the volume of the inner cavity of the fixed seat, sucking the syrup in the syrup storage bin into the inner cavity of the fixed seat through the feed port. At this time, the cylinder drives the middle-position movable plate to move, so that the respective second through holes on the middle-position movable plate are staggered from the corresponding pouring ports, and the plane on the middle-position movable plate covers the corresponding pouring port, and the syrup enters into the respective second through holes; when the lifting drive mechanism drives the connecting plate and the connected piston columns to move downward, the cylinder drives the middle-position movable plate to move, so that the respective second through holes on the middle-position movable plate are aligned with the corresponding pouring ports, the piston columns extend downward into the corresponding second through holes, and the syrup in the second through holes is pressed out through the corresponding pouring ports and pouring nozzles and respectively injected into the corresponding mold cavities on the plastic mold plate.

[0013] The specific structure of the above-mentioned lifting drive mechanism can be a structure in which a motor, a synchronous pulley and a synchronous belt cooperate with each other, or it can also be a lifting cylinder.

[0014] In a further preferred embodiment, the pouring device further comprises at least one hopper with an upward opening, the hopper is installed on the side wall of the fixed seat, and the lower end of the hopper is communicated with the feed inlet. The above hopper is used to connect with an external syrup storage bin.

[0015] In a more preferred embodiment, a first temperature controller is connected to the outside of the hopper. According to the display of the first temperature controller, the temperature of the syrup in the hopper can be monitored and adjusted.

[0016] In a preferred embodiment, the cooling device includes an air-conditioning chamber, an air-conditioning unit and a second temperature controller. The air-conditioning chamber covers the outer side of the latter half of the annular conveyor chain. The air-conditioning unit is installed in the air-conditioning chamber, and the air outlet of the air-conditioning unit faces the latter half of the annular conveyor chain. The second temperature controller is installed outside the air-conditioning chamber. After the syrup is poured, the annular conveyor chain transports the syrup in each mold cavity to the air outlet of the air-conditioning unit. After being blown by cold air, the syrup cools and solidifies in the mold cavity. According to the display of the second temperature controller, the temperature in the air-conditioning chamber can be monitored and adjusted.

[0017] In a preferred embodiment, a blowing demolding device is further included. The blowing demolding device includes a plurality of blowing nozzles. Each blowing nozzle is arranged between the annular conveyor chain and the finished product conveyor belt, and each blowing nozzle faces the corresponding mold cavity below the annular conveyor chain. When the gummy candies in the mold cavity are cooled and solidified and transported above each blowing nozzle, air is blown upward into the corresponding mold cavity through the blowing nozzle, and the gummy candies are forcibly demolded from the mold cavity. The gummy candy finished products fall on the finished product conveyor belt and are output by the finished product conveyor belt.

[0018] In a preferred embodiment, the material of the stainless steel rectangular frame is cold-rolled stainless steel. The processed surface of cold-rolled stainless steel has no oxide skin and good quality.

[0019] Compared with the prior art, the present utility model has the following advantages:

[0020] The present utility model adopts a plastic mold plate with a multi-row and multi-column mold cavity design, which can increase the number of pourings each time, improve the production speed and efficiency. Moreover, the inner wall of the plastic mold plate is not easy to fall off, avoiding metal fragment contamination of the gummy candies, improving the hygiene and quality of the products, and reducing defective products. The cost of the stainless steel rectangular frame and the plastic mold plate of the present utility model is lower than that of traditional metal molds, reducing the production cost. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is a schematic structural diagram of a specific embodiment of the present utility model;

[0022] Figure 2 is a schematic structural diagram of the mold in a specific embodiment of the present utility model;

[0023] Figure 3It is a schematic structural diagram of the pouring device in a specific embodiment of the present utility model. Specific Embodiment

[0024] The present utility model will be specifically described below in conjunction with the accompanying drawings and specific embodiments.

[0025] As Figures 1-3 shown, the automatic pouring and forming machine for environmentally friendly gummy candies in this embodiment includes an annular conveyor chain 1, at least one pouring device 2, a cooling device 3, a finished product conveyor belt 4, and a plurality of molds 5. Each mold 5 is sequentially arranged on the annular conveyor chain 1 along the conveying direction of the annular conveyor chain 1. The pouring device 2, the cooling device 3, and the finished product conveyor belt 4 are sequentially arranged along the conveying direction of the annular conveyor chain 1. Moreover, the pouring device 2 and the cooling device 3 are both above the annular conveyor chain 1, and the finished product conveyor belt 4 is below the annular conveyor chain 1; the mold 5 includes a stainless steel rectangular frame 51 and a plastic mold plate 5-2. The stainless steel rectangular frame 51 is installed on the annular conveyor chain 1. A receiving groove 511 capable of accommodating the plastic mold plate 52 is provided on the stainless steel rectangular frame 51. Cap-shaped covers 512 with downward openings are respectively provided at the four top corner edges of the stainless steel rectangular frame 51. Elastic pressing members 53 capable of positioning the upper surface of the plastic mold plate 52 are respectively provided in each cap-shaped cover 512. The plastic mold plate 52 is detachably installed in the receiving groove 511 through the respective elastic pressing members 53. A plurality of mold cavities 521 with upward openings are provided on the plastic mold plate 52, and the mold cavities 521 are evenly distributed in multiple rows and columns; a plurality of pouring nozzles 21 are provided on the pouring device 2, and the number of pouring nozzles 21 is the same as and corresponds one-to-one with the number of mold cavities 521.

[0026] Since the plastic mold plate 52 is detachably installed in the receiving groove 511, a different plastic mold plate 52 can be replaced for each gummy candy variety produced, and thus multiple types of gummy candies can be produced.

[0027] Before pouring, each plastic mold plate 52 is installed in the receiving groove 511 of the corresponding stainless steel rectangular frame 51, and each plastic mold plate 52 is positioned in the receiving groove 511 through the respective elastic pressing members 53.

[0028] During pouring, syrup is poured into the corresponding mold cavities 521 on the plastic mold plate 52 through the respective pouring nozzles 21 of the pouring device 2. After pouring, each mold 5 is conveyed by the annular conveyor chain 1 to the area of the cooling device 3, and the syrup in each mold cavity 521 is cooled and shaped by the cooling device 3; when the annular conveyor chain 1 rotates the shaped gummy candies below the annular conveyor chain 1, due to the action of gravity, the gummy candy products naturally fall onto the finished product conveyor belt 4, and finally the gummy candy products are output directionally by the finished product conveyor belt 4.

[0029] The elastic pressing member 53 includes a compression spring 531 and a steel ball 532. The compression spring 531 is located within the cap-shaped cover 512, and the upper end of the compression spring 531 is fixedly connected to the top of the cap-shaped cover 512. The steel ball 532 is connected to the lower end of the compression spring 531, and the lower portion of the steel ball 532 is exposed below the opening of the cap-shaped cover 512. At the four top corner edges of the upper surface of the plastic mold plate 52, grooves 522 corresponding to the opening of the cap-shaped cover 512 are respectively provided. When the plastic mold plate 52 is installed in the accommodation groove 511, the lower portion of the steel ball 532 is located within the groove 522. In the initial state, the lower portion of the steel ball 532 is exposed below the opening of the cap-shaped cover 512 under the action of the compression spring 531. When the plastic mold plate 52 is installed in the accommodation groove 511, the compression spring 531 is extruded by the upper surface of the plastic mold plate 52 through the steel ball 532, and the lower portion of the steel ball 532 is extruded into the corresponding groove 522 of the plastic mold plate 52 to position and press the plastic mold plate 52.

[0030] The material of the stainless steel rectangular frame 51 is cold-rolled stainless steel. The processed surface of the cold-rolled stainless steel has no oxide scale and good quality.

[0031] The pouring device includes a frame 29, a lifting drive mechanism 22, a connecting plate 23, a fixed seat 24, a middle-position movable plate 25, and a plurality of piston columns 26, as well as a cylinder (not marked in the figure) capable of driving the middle-position movable plate 25 to move horizontally; the number of piston columns 26 is the same as that of the pouring nozzles 21 and they correspond one by one; the lifting drive mechanism 22 is installed on the frame 29, the connecting plate 23 is connected to the power output end of the lifting drive mechanism 22, the fixed seat 24 is installed on the frame 29 and is located below the connecting plate 23, and the upper ends of the respective piston columns 26 are all connected to the connecting plate 23; a plurality of guide holes 241 evenly distributed in multiple rows and columns are provided on the upper surface of the fixed seat 24, and the respective piston columns 26 are respectively located in the corresponding guide holes 241; a plurality of pouring ports 243 corresponding to the guide holes 241 are provided on the lower surface of the fixed seat 24, the respective pouring nozzles 21 are respectively installed in the corresponding pouring ports 243, and the lower ends of the respective piston columns 26 can extend into the pouring ports 243; the cylinder is installed on the frame 29, a first through hole communicating with the inner cavity of the fixed seat 24 is provided on the side wall of the fixed seat 24, the piston rod of the cylinder passes through the first through hole, and the end of the piston rod of the cylinder is located in the inner cavity of the fixed seat 24, the middle-position movable plate 25 is located in the inner cavity of the fixed seat 24 and can move horizontally in the inner cavity of the fixed seat 24, and the middle-position movable plate 25 is connected to the end of the piston rod of the cylinder; a plurality of second through holes 251 corresponding to the guide holes 241 and the pouring ports 243 are provided on the middle-position movable plate 25, the lower surface of the middle-position movable plate 25 is in contact and cooperation with the lower surface of the inner cavity of the fixed seat 24, and a plane capable of covering the corresponding pouring port 243 is provided between two adjacent second through holes 251; at least one feed port 242 is provided on the side wall of the fixed seat 24, the feed port 242 communicates with the inner cavity of the fixed seat 24, and the feed port 242 is located between the upper surface of the fixed seat 24 and the middle-position movable plate 25. The middle-position movable plate 25 functions as a switch during the movement process, opening and closing the respective pouring ports 243.During pouring, the feeding port 242 on the side wall of the fixed seat 24 is connected to an externally connected syrup storage bin; then, the lifting drive mechanism 22 drives the connecting plate 23 and the piston column 26 connected thereto to move up and down (lifting as a whole plate combination): when the lifting drive mechanism 22 drives the connecting plate 23 and the piston column 26 connected thereto to move upward, the internal cavity volume of the fixed seat 24 increases, sucking the syrup in the syrup storage bin into the internal cavity of the fixed seat 24 through the feeding port 242. At this time, the cylinder drives the middle-position movable plate 25 to move, so that the respective second through holes 251 on the middle-position movable plate 25 are staggered from the corresponding pouring ports 243, and the plane on the middle-position movable plate 25 covers the corresponding pouring ports 243, and the syrup enters into the respective second through holes 251; when the lifting drive mechanism 22 drives the connecting plate 23 and the piston column 26 connected thereto to move downward, the cylinder drives the middle-position movable plate 25 to move, so that the respective second through holes 251 on the middle-position movable plate 25 are aligned with the corresponding pouring ports 243, and the piston column 26 extends downward into the corresponding second through holes 251, pressing out the syrup in the second through holes 251 through the corresponding pouring ports 243 and the pouring nozzles 21, and injecting them into the corresponding mold cavities on the plastic mold tray respectively.

[0032] The pouring device 2 further includes at least one hopper 27 with an upward opening, and the hopper 27 is installed on the side wall of the fixed seat 24, and the lower end of the hopper 27 is communicated with the feeding port 242.

[0033] A first temperature control meter 28 is connected to the outside of the hopper 27. According to the display of the first temperature control meter 28, the temperature of the syrup in the hopper 27 can be monitored and adjusted.

[0034] The cooling device 3 includes an air-conditioning box room 31, an air-conditioning unit 32 and a second temperature control meter 33. The air-conditioning box room 31 covers the outer side of the latter half of the annular conveyor chain 1. The air-conditioning unit 32 is installed in the air-conditioning box room 31, and the air outlet of the air-conditioning unit 32 faces the latter half of the annular conveyor chain 1. The second temperature control meter 33 is installed on the outside of the air-conditioning box room 31. After the syrup is poured, the annular conveyor chain 1 transports the syrup in each mold cavity 521 to the air outlet of the air-conditioning unit 32, and after being blown by cold air, the syrup cools and forms in the mold cavity 521. According to the display of the second temperature control meter 33, the temperature in the air-conditioning box room 31 can be monitored and adjusted.

[0035] This embodiment further includes a blowing demolding device 7. The blowing demolding device 7 includes a plurality of blowing nozzles 71. Each blowing nozzle 71 is arranged between the annular conveyor chain 1 and the finished product conveyor belt 4, and each blowing nozzle 71 faces the corresponding mold cavity 521 below the annular conveyor chain 1. When the soft candy in the mold cavity 521 is cooled and formed and is transported above each blowing nozzle 71, air is blown upward into the corresponding mold cavity 521 through the blowing nozzle 71, forcing the soft candy to be demolded from the mold cavity 521, and the soft candy finished products fall on the finished product conveyor belt 4 and are output by the finished product conveyor belt 4.

[0036] In addition, it should be noted that for the specific embodiments described in this specification, the names of their respective parts and the like can be different. Any equivalent or simple changes made according to the structure, features, and principles described in the inventive concept of this utility model are included within the protection scope of this utility model patent. Those skilled in the technical field to which this utility model pertains can make various modifications, supplements, or use similar ways to substitute for the specific embodiments described, as long as they do not deviate from the structure of this utility model or exceed the scope defined by this claims, they should all fall within the protection scope of this utility model.

Claims

1. An environmentally friendly soft candy automatic pouring and molding machine, comprising an annular conveyor chain, at least one pouring device, a cooling device, a finished product conveyor belt and a plurality of molds, wherein each mold is sequentially arranged on the annular conveyor chain along the conveying direction of the annular conveyor chain, the pouring device, the cooling device and the finished product conveyor belt are sequentially arranged along the conveying direction of the annular conveyor chain, and the pouring device and the cooling device are both located above the annular conveyor chain, and the finished product conveyor belt is located below the annular conveyor chain; characterized in that: The mold includes a stainless rectangular frame and a plastic mold tray. The stainless rectangular frame is installed on the circular conveyor chain. The stainless rectangular frame is provided with a receiving groove capable of accommodating the plastic mold tray. The four top corner edges of the stainless rectangular frame are respectively provided with a cap-shaped cover with an opening facing downward. Each cap-shaped cover is respectively provided with an elastic clamping piece capable of positioning the upper surface of the plastic mold tray. The plastic mold tray is detachably installed in the receiving groove through each elastic clamping piece. The plastic mold tray is provided with a plurality of mold cavities with an opening facing upward, and each mold cavity is evenly distributed in multiple rows and columns. The pouring device is provided with a plurality of pouring nozzles, and the number of the pouring nozzles is the same as that of the mold cavities and they correspond one to one.

2. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 1, characterized in that: The elastic pressing part includes a compression spring and a steel ball. The compression spring is located in the cap-shaped cover, and the upper end of the compression spring is fixedly connected to the top of the cap-shaped cover. The steel ball is connected to the lower end of the compression spring, and the lower part of the steel ball is exposed below the opening of the cap-shaped cover. The four top corner edges of the upper surface of the plastic mold plate are respectively provided with grooves corresponding to the opening of the cap-shaped cover. When the plastic mold plate is installed in the accommodating groove, the lower part of the steel ball is located in the groove.

3. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 1, characterized in that: The pouring device includes a frame, a lifting drive mechanism, a connecting plate, a fixed seat, a middle movable plate and a plurality of piston columns, and a cylinder capable of driving the middle movable plate to move horizontally; the number of piston columns is the same as that of the pouring nozzles and they correspond one to one; the lifting drive mechanism is installed on the frame, the connecting plate is connected to the power output end of the lifting drive mechanism, the fixed seat is installed on the frame and is located below the connecting plate, and the upper ends of the piston columns are connected to the connecting plate; the upper surface of the fixed seat is provided with a plurality of guide holes evenly distributed in multiple rows and columns, and each piston column is respectively located in a corresponding guide hole; the lower surface of the fixed seat is provided with a plurality of pouring ports corresponding to the guide holes, each pouring nozzle is respectively installed in a corresponding pouring port, and the lower end of each piston column can extend to the pouring port The cylinder is installed on the frame, and a first through hole connected to the inner cavity of the fixed seat is provided on the side wall of the fixed seat. The piston rod of the cylinder passes through the first through hole, and the end of the piston rod of the cylinder is in the inner cavity of the fixed seat. The middle movable plate is in the inner cavity of the fixed seat and can move horizontally in the inner cavity of the fixed seat. The middle movable plate is connected to the end of the piston rod of the cylinder; a plurality of second through holes corresponding to the guide holes and the pouring ports are provided on the middle movable plate, and the lower surface of the middle movable plate contacts and cooperates with the lower surface of the inner cavity of the fixed seat, and a plane that can cover the corresponding pouring ports is provided between two adjacent second through holes; at least one feed port is provided on the side wall of the fixed seat, the feed port is connected to the inner cavity of the fixed seat, and the feed port is between the upper surface of the fixed seat and the middle movable plate.

4. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 3, characterized in that: The pouring device further comprises at least one scoop with an upward opening, the scoop is mounted on the side wall of the fixing seat, and the lower end of the scoop is connected to the feed port.

5. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 4, characterized in that: The outer side of the bucket is connected with a first temperature control meter.

6. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 1, characterized in that: The cooling device includes an air-conditioning room, an air-conditioning unit and a second temperature control meter. The air-conditioning room cover is on the outside of the rear half of the circular conveyor chain. The air-conditioning unit is installed in the air-conditioning room. The air outlet of the air-conditioning unit faces the rear half of the circular conveyor chain. The second temperature control meter is installed on the outside of the air-conditioning room.

7. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 1, characterized in that: It also includes an air blowing demoulding device, which includes a plurality of air blowing nozzles, each of which is arranged between the annular conveying chain and the finished product conveying belt, and each of which faces a corresponding mold cavity below the annular conveying chain.

8. The environmentally friendly soft candy automatic pouring and molding machine as claimed in claim 1, characterized in that: The stainless rectangular frame is made of cold-rolled stainless steel.