A multi-chamber pearl production device
By setting up a bead position adjustment device in the bead condensation production equipment, the first bead can accurately fall into the cavity of the second bead and move inside it, the problem that existing equipment cannot produce multi-cavity beads is solved, and the production of multi-cavity beads is achieved to meet market demand.
Patent Information
- Application Number
- CN202211241816.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-11
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2042-10-11
AI Technical Summary
The existing bead production equipment cannot produce multi-cavity beads, that is, a structure in which the first bead is located in the second bead and the first bead can move within the second bead.
A multi-cavity bead production equipment is designed, and by providing a bead position adjustment device between the first production device and the second production device, the first bead can accurately fall into the cavity of the second bead and move therein. The device includes a load bearing mechanism and an adjustment mechanism, through a material guide mechanism, the first coagulation bead is introduced into the load bearing mechanism, and the spacing between the adjacent two first coagulation beads is adjusted by the adjustment block and the transfer drive member.
The production of multi-cavity beads in which the first bead is located in the second bead and can move within it is achieved, meeting the market demand for multi-cavity beads.
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Figure CN115535589B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of production of laundry beads, and particularly relates to a production device for multi-chamber laundry beads. Background Art
[0002] Laundry beads, also known as laundry pearls, are an innovative laundry product. They are named laundry beads because of their bead-like shape. Laundry beads are designed specifically for machine washing, with simple operation and convenience without getting hands dirty. A small laundry bead can wash a full load of clothes. They have a fragrant smell, a soft, smooth and moderately thick texture, are mild in nature and do not damage clothes. Their unique low-foam concentrated color-locking formula makes them easier to rinse. The beads dissolve in water immediately without residue and can effectively and quickly remove stubborn stains, making the clothes clean and new.
[0003] Existing laundry beads generally have a single-layer structure, that is, there is only one cavity for containing materials, and this cavity is generally sealed by two films. The laundry beads with such a structure have a single structure and shape, which cannot meet the market demand. Therefore, a multi-chamber laundry bead (as shown in Figure 1 ) is specially designed. The multi-chamber laundry bead includes a large bead and a small bead. The small bead A is located inside the large bead B, and the small bead A can move inside the large bead B. However, the existing production equipment for laundry beads cannot produce such multi-chamber laundry beads.
[0004] Therefore, the existing technology needs to be improved and developed. Summary of the Invention
[0005] The purpose of the present invention is to provide a production device for multi-chamber laundry beads, which can produce multi-chamber laundry beads in which a first bead is located inside a second bead and the first bead can move inside the second bead.
[0006] The present invention provides a production device for multi-chamber laundry beads, including a first production device for producing a first bead and a second production device for producing a second bead, and further including:
[0007] A bead position adjustment device; the bead position adjustment device is arranged between the first production device and the second production device;
[0008] The bead position adjustment device includes a carrying mechanism and an adjustment mechanism. After the first beads fall into the carrying mechanism, the adjustment mechanism adjusts the distance between two adjacent first beads, so that the first beads accurately fall into the cavity of the second beads on the second production device when the carrying mechanism is opened.
[0009] The production device for multi-chamber laundry beads provided by the present invention, through the design of arranging a bead position adjustment device between the first production device and the second production device, enables the production device for multi-chamber laundry beads to produce multi-chamber laundry beads in which a first bead is located inside a second bead and the first bead can move inside the second bead, thereby meeting the market demand.
[0010] Further, the above-mentioned pearl position adjusting device further includes a feeding mechanism, which is located between the first production device and the carrying mechanism, and is used to accurately introduce the first pearls into the carrying mechanism.
[0011] By arranging a feeding mechanism between the first production device and the carrying mechanism in the present invention, the first pearls produced by the first production device can accurately fall into the carrying mechanism.
[0012] Further, the above-mentioned adjusting mechanism includes a plurality of adjusting blocks, a plurality of connecting blocks and a material transfer driving member; the plurality of adjusting blocks are arranged in sequence, and each adjusting block has an adjusting portion, and the adjusting portion is slidably arranged on the carrying mechanism; the plurality of connecting blocks are respectively arranged on the plurality of adjusting blocks, and two adjacent connecting blocks are in movable contact; the output end of the material transfer driving member is connected to one of the two adjusting blocks located on both sides among the plurality of adjusting blocks.
[0013] In the present invention, the distance between two adjacent adjusting blocks is adjusted by the cooperation of the material transfer driving member and the plurality of connecting blocks, and the structure is simple and the adjustment is convenient.
[0014] Further, the number of the above-mentioned material transfer driving members is two, the plurality of adjusting blocks are divided into two groups, and the two output ends of the two material transfer driving members are respectively connected to one of the two adjusting blocks located on both sides of the two groups of adjusting blocks.
[0015] Further, the above-mentioned adjusting mechanism further includes a limiting member, and the limiting member is respectively in movable contact with the two connecting blocks arranged on two adjacent adjusting blocks between the two groups of adjusting blocks.
[0016] Further, the above-mentioned adjusting mechanism further includes a guiding member, and the plurality of adjusting blocks are all connected to the guiding member.
[0017] Further, the above-mentioned feeding mechanism includes a plurality of feeding grooves arranged in parallel, the distance between two adjacent feeding grooves is equal to the distance between two adjacent first pearls on the first production device, and the upper surface of each feeding groove is an inclined surface.
[0018] Further, the above-mentioned feeding mechanism includes a plurality of feeding grooves arranged in parallel and a plurality of feeding pushing members, the distance between two adjacent feeding grooves is equal to the distance between two adjacent first pearls on the first production device, and the feeding pushing member can slide in the feeding groove to push the first pearls in the feeding groove into the carrying mechanism.
[0019] Further, the above-mentioned bearing mechanism includes a bearing driving member and a bearing plate; the bearing plate is connected to the output end of the bearing driving member, and the bearing driving member drives the bearing plate to open or close.
[0020] Further, both the above-mentioned first production device and the second production device include a forming die, a preheating mechanism, a bottom film conveying mechanism, a filling mechanism, a top film conveying mechanism, a sealing mechanism, and a cutting mechanism; the bottom film conveying mechanism, preheating mechanism, filling mechanism, top film conveying mechanism, sealing mechanism, and cutting mechanism of the first production device are sequentially arranged on the rotation path of the forming die of the first production device, and the bottom film conveying mechanism, preheating mechanism, filling mechanism, top film conveying mechanism, sealing mechanism, and cutting mechanism of the second production device are sequentially arranged on the rotation path of the forming die of the second production device.
[0021] As can be seen from the above, the multi-cavity pearl production equipment of the present invention, through the design of arranging a pearl position adjustment device between the first production device and the second production device, enables the adjustment mechanism to adjust the distance between two adjacent first pearls falling on the bearing mechanism, so that the first pearl can accurately fall into the cavity of the second pearl produced by the second production device when the bearing mechanism is opened, and further obtains a multi-cavity pearl in which the first pearl is located inside the second pearl and the first pearl can move inside the second pearl, so as to meet the market demand.
[0022] Other features and advantages of the present invention will be described in the subsequent description, and part of them will become obvious from the description, or be understood by implementing the embodiments of the present invention. The objectives and other advantages of the present invention can be achieved and obtained through the structures specifically pointed out in the written description and the drawings. Description of the Drawings
[0023] Figure 1 It is a schematic structural diagram of a multi-cavity pearl provided by an embodiment of the present invention.
[0024] Figure 2 It is a schematic structural diagram of a multi-cavity pearl production equipment provided by an embodiment of the present invention.
[0025] Figure 3 It is a front structural schematic diagram of a pearl position adjustment device provided by an embodiment of the present invention.
[0026] Figure 4 It is a back structural schematic diagram of a pearl position adjustment device provided by an embodiment of the present invention.
[0027] Figure 5 It is a structural schematic diagram of a pearl position adjustment device in an open state provided by an embodiment of the present invention.
[0028] Figure 6Schematic structural diagram of an adjustment mechanism provided by an embodiment of the present invention.
[0029] Label description: 10, first production device; 101, forming die; 102, bottom film conveying mechanism; 103, preheating mechanism; 104, filling mechanism; 105, top film conveying mechanism; 106, sealing mechanism; 107, cutting mechanism; 1071, transverse cutting assembly; 1072, longitudinal cutting assembly; 20, second production device; 30, pearl position adjustment device; 301, adjustment mechanism; 3011, adjustment block; 30111, adjustment part; 3012, connecting block; 3013, material transfer driving part; 3014, limiting part; 3015, guiding part; 302, bearing mechanism; 3021, bearing driving part; 3022, bearing plate; 303, material guiding mechanism; 3031, material guiding groove; 3032, material guiding pushing part; 30321, material guiding pushing cylinder; 30322, material guiding push rod. Detailed implementation manners
[0030] The following details the implementation manners of the present invention. Examples of the implementation manners are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions from beginning to end. The implementation manners described below with reference to the drawings are exemplary only for explaining the present invention and should not be construed as a limitation to the present invention.
[0031] The following disclosure provides many different implementation manners or examples for implementing different structures of the present invention. To simplify the disclosure of the present invention, components and settings of specific examples are described below. Of course, they are only examples and are not intended to limit the present invention. In addition, the present invention may repeat reference numerals and / or reference letters in different examples. Such repetition is for the purpose of simplification and clarity and does not itself indicate the relationship between the various implementation manners and / or settings discussed.
[0032] As Figure 2 shown, a multi - cavity pearl production device provided by the present invention includes a first production device 10 for producing the first pearl, a second production device 20 for producing the second pearl, and a pearl position adjustment device 30. The pearl position adjustment device 30 is located between the first production device 10 and the second production device 20.
[0033] In a specific application, the bead position adjusting device 30 includes a carrying mechanism 302 and an adjusting mechanism 301. After the first beads produced by the first production device 10 fall into the carrying mechanism 302, the adjusting mechanism 301 adjusts the distance between two adjacent first beads on the carrying mechanism 302 so that the distance between two adjacent first beads is equal to the distance between two adjacent second beads in the second beads produced by the second production device 20, so that the first beads accurately fall into the cavities of the second beads on the second production device 20 when the carrying mechanism 302 is opened.
[0034] It should be noted that the cavity of the second bead mentioned above refers to a non-closed structure with an opening and the same shape as the cavity of the forming die 101 of the second production device 20 formed by the bottom film of the second bead during the production of the second bead by the second production device 20. The first bead falls into the non-closed structure from the opening. After the first bead enters the non-closed structure, the top film of the second bead is then sealed with the bottom film of the second bead to obtain a multi-cavity bead with the first bead located inside the second bead and the first bead being able to move inside the second bead.
[0035] Through this technical solution, the multi-cavity bead production equipment can accurately drop the first beads produced by the first production device 10 into the cavities of the second beads produced by the second production device 20, thereby obtaining multi-cavity beads with the first beads located inside the second beads and the first beads being able to move inside the second beads.
[0036] Specifically, the adjusting mechanism 301 can adopt a manipulator. That is to say, after the first beads fall into the carrying mechanism 302, the manipulator adjusts the distance between two adjacent first beads so that the distance between two adjacent first beads is equal to the distance between two adjacent second beads in the second beads produced by the second production device 20.
[0037] Such as Figure 3 、 Figure 4 、 Figure 5 and Figure 6 As shown, in some preferred embodiments, the adjusting mechanism 301 includes a plurality of adjusting blocks 3011, a plurality of connecting blocks 3012 and a material transfer driving member 3013. The plurality of adjusting blocks 3011 are arranged in sequence. Each adjusting block 3011 has an adjusting portion 30111, and the adjusting portion 30111 is slidably arranged on the carrying mechanism 302. The plurality of connecting blocks 3012 are respectively arranged on the plurality of adjusting blocks 3011, and two adjacent connecting blocks 3012 are in movable abutment. The output end of the material transfer driving member 3013 is connected to one of the two adjusting blocks 3011 located on both sides among the plurality of adjusting blocks 3011.
[0038] It should be noted that the sequential arrangement of multiple adjustment blocks 3011 means that the multiple adjustment blocks 3011 are arranged in a "one" shape, and the two adjustment blocks 3011 on both sides refer to the leftmost and rightmost adjustment blocks 3011 among the multiple adjustment blocks 3011 arranged in a "one" shape.
[0039] In specific applications, in the default state, the bead position adjustment device is in the closed state (as Figure 3 shown). At this time, the distance between adjacent two adjustment parts 30111 is equal to the distance between adjacent two first beads on the first production device 10. The first bead falling into the bearing mechanism 302 is located within the adjustment part 30111. When the bead position adjustment device adjusts the distance between adjacent two first beads, the material transfer driving part 3013 generates a driving force to drive the adjustment block 3011 connected to its output end to move. During the movement of the adjustment block 3011, the remaining adjustment blocks 3011 among the multiple adjustment blocks 3011 are driven by the connecting block 3012 to move, changing the distance between adjacent two adjustment blocks 3011, so that the distance between adjacent two adjustment parts 30111 is adjusted to be equal to the distance between adjacent two second beads. At this time, the bead position adjustment device is in the open state (as Figure 5 shown), and the first bead can accurately fall into the cavity of the second bead under the action of its own gravity. Specifically, the material transfer driving part 3013 can be a cylinder.
[0040] Through this technical solution, the distance between adjacent two adjustment parts 30111 can be made equal to the distance between adjacent two second beads, so that the first bead can accurately fall into the cavity of the second bead. Compared with using an expensive manipulator, the cost is saved. Moreover, compared with the manipulator that can only adjust the position of one first bead each time, this technical solution can adjust the positions of multiple first beads simultaneously, improving the adjustment speed.
[0041] Specifically, the adjustment part 30111 is a through "U" - shaped structure or "mouth" - shaped structure. When the adjustment mechanism 301 adjusts the distance between adjacent two first beads, the adjustment part 30111 can play a role in limiting the first bead, so that the first bead can only move within the range of the adjustment part 30111. Thus, when the adjustment part 30111 corresponds to the cavity of the second bead, the first bead can accurately fall into the cavity of the second bead.
[0042] In some preferred embodiments, the number of the above-mentioned material transfer driving members 3013 is two, and the multiple adjustment blocks 3011 are divided into two groups. The two output ends of the two material transfer driving members 3013 are respectively connected to one of the two adjustment blocks 3011 located on both sides in the two groups of adjustment blocks 3011. In specific applications, by designing the number of the material transfer driving members 3013 to be two and dividing the multiple adjustment blocks 3011 into two groups, the two material transfer driving members 3013 can simultaneously drive the two groups of adjustment blocks 3011 to adjust the distance to both sides, shortening the time for adjusting the distance between the multiple adjustment blocks 3011, thereby improving the efficiency.
[0043] In some preferred embodiments, the above-mentioned adjustment mechanism 301 further includes a limiting member 3014. The limiting member 3014 respectively and movably abuts against two connecting blocks 3012 provided on two adjacent adjustment blocks 3011 between the two groups of adjustment blocks 3011. In specific applications, the limiting member 3014 limits the two adjacent connecting blocks 3012 between the two groups of adjustment blocks 3011, so that the distance between the two adjacent adjustment blocks 3011 after movement is equal to the distance between two adjacent second condensate beads, so that the adjustment portion 30111 corresponds to the cavity of the second condensate bead, so as to ensure that the first condensate bead in the adjustment portion 30111 accurately falls into the cavity of the second condensate bead. Specifically, the limiting member 3014 has two oppositely arranged limiting portions, the distance between the two limiting portions is equal to the distance between two adjacent second condensate beads, and one side of the two limiting portions opposite to each other movably abuts against two connecting blocks 3012 provided on two adjacent adjustment blocks 3011 between the two groups of adjustment blocks 3011.
[0044] In some preferred embodiments, the adjusting mechanism 301 further includes a guiding member 3015, and a plurality of adjusting blocks 3011 are all connected to the guiding member 3015. Through this technical solution, a guiding effect is exerted on the plurality of adjusting blocks 3011 to ensure that the adjusting blocks 3011 move linearly. Specifically, the guiding member 3015 is a linear guide rail. Specifically, the number of guiding members 3015 is two, and the two guiding members 3015 are arranged in parallel. A part of the plurality of adjusting blocks 3011 is connected to one of the two guiding members 3015, and another part of the plurality of adjusting blocks 3011 is connected to the other of the two guiding members 3015. Compared with using only one guiding member 3015, using two guiding members 3015 reduces the number of adjusting blocks 3011 connected to each guiding member 3015, making the force more uniform to achieve a better guiding effect. Specifically, the adjusting blocks 3011 that are connected to one of the two guiding members 3015 among the plurality of adjusting blocks 3011 are arranged at intervals from the adjusting blocks 3011 that are connected to the other of the two guiding members 3015. For example, the two guiding members 3015 are respectively a first guiding member and a second guiding member, and the number of adjusting blocks 3011 is four, namely a first adjusting block, a second adjusting block, a third adjusting block, and a fourth adjusting block. The first adjusting block, the second adjusting block, the third adjusting block, and the fourth adjusting block are arranged in sequence in a "one" shape. If the first adjusting block and the third adjusting block are connected to the first guiding member, then the second adjusting block and the fourth adjusting block are connected to the second guiding member, and so on.
[0045] In some preferred embodiments, the bearing mechanism 302 includes a bearing driving member 3021 and a bearing plate 3022. The bearing plate 3022 is connected to the output end of the bearing driving member 3021, and the bearing driving member 3021 drives the bearing plate 3022 to move corresponding to the plurality of adjusting portions 30111. In specific applications, the bearing driving member 3021 drives the bearing plate 3022 to move to directly below the plurality of adjusting portions 30111 and abut against the bottom of the plurality of adjusting portions 30111. At this time, the bearing mechanism 302 is in a closed state, and the first condensate beads that fall into the bearing mechanism 302 are located in the accommodating cavity formed by the adjusting portion 30111 and the bearing plate 3022. After the adjusting mechanism 301 adjusts the distance between two adjacent first condensate beads, the bearing driving member 3021 drives the bearing plate 3022 to move in a direction away from the plurality of adjusting portions 30111, so that the bearing plate 3022 does not abut against the bottom of the plurality of adjusting portions 30111. At this time, the bearing mechanism 302 is in an open state, and the first condensate beads in the adjusting portion 30111 fall into the cavity of the second condensate beads under the action of their own gravity. Specifically, the bearing driving member 3021 can be a cylinder.
[0046] In some preferred embodiments, the above-mentioned bead position adjusting device 30 further includes a feeding mechanism 303. The feeding mechanism 303 is located between the first production device 10 and the bearing mechanism 302, and the feeding mechanism 303 is used to accurately introduce the first beads into the bearing mechanism 302. In a specific application, the first beads produced by the first production device 10 fall into the feeding mechanism 303, and the feeding mechanism 303 accurately introduces the first beads into the bearing mechanism 302, so that the first beads are located in the accommodating cavity formed by the adjusting portion 30111 and the bearing plate 3022, facilitating subsequent adjustment of the position of the first beads.
[0047] In some preferred embodiments, the above-mentioned feeding mechanism 303 includes a plurality of feeding grooves 3031 arranged in parallel. The distance between two adjacent feeding grooves 3031 is equal to the distance between two adjacent first beads on the first production device 10, and the upper surface of each feeding groove 3031 is an inclined surface. Through this technical solution, the first beads produced by the first production device 10 can slide precisely along the inclined surface under the action of their own gravity into the accommodating cavity formed by the adjusting portion 30111 and the bearing plate 3022.
[0048] In some other preferred embodiments, the above-mentioned feeding mechanism 303 includes a plurality of feeding grooves 3031 arranged in parallel and a plurality of feeding pushing members 3032. The distance between two adjacent feeding grooves 3031 is equal to the distance between two adjacent first beads on the first production device 10. The feeding pushing members 3032 can slide in the feeding grooves 3031 to push the first beads in the feeding grooves 3031 into the bearing mechanism 302. In a specific application, the first beads produced by the first production device 10 fall into the feeding grooves 3031, and the feeding pushing members 3032 push the first beads in the feeding grooves 3031 into the accommodating cavity formed by the adjusting portion 30111 and the bearing plate 3022, avoiding the situation where the first beads remain in the feeding grooves 3031. Specifically, the feeding pushing members 3032 include feeding pushing cylinders 30321 and feeding push rods 30322. The feeding push rods 30322 are connected to the output ends of the feeding pushing cylinders 30321, and the shape of the feeding push rods 30322 matches the shape of the feeding grooves 3031 to fully ensure that the feeding push rods 30322 can push the first beads in the feeding grooves 3031 into the accommodating cavity formed by the adjusting portion 30111 and the bearing plate 3022.
[0049] In some preferred embodiments, the above-mentioned first production device 10 and the second production device 20 both include a molding die 101, a bottom film conveying mechanism 102, a preheating mechanism 103, a filling mechanism 104, a top film conveying mechanism 105, a sealing mechanism 106, and a cutting mechanism 107. The bead position adjusting device 30 is located between the molding die 101 of the first production device 10 and the molding die 101 of the second production device 20.
[0050] In a specific application, the first production device 10 and the second production device 20 operate simultaneously. The operating principles of the first production device 10 and the second production device 20 are the same. Taking the first production device 10 as an example, the operating principles of the first production device 10 and the second production device 20 will be specifically described below.
[0051] When the first production device 10 operates, first, the bottom film conveying mechanism 102 conveys the bottom film to the station of the forming die 101, so that the bottom film corresponds to the cavity of the forming die 101. The cavity sucks the corresponding bottom film into the cavity, and the bottom film deforms into an open non-closed structure with the same shape as the cavity. During the process of the bottom film conveying mechanism 102 conveying the bottom film to the station of the forming die 101, the bottom film first passes through the preheating mechanism 103, and the preheating mechanism 103 preheats the bottom film to make the bottom film easier to deform. Secondly, the forming die 101 conveys the deformed bottom film to the station of the filling mechanism 104, so that the opening of the bottom film corresponds to the discharge port of the filling mechanism 104, and the filling mechanism 104 fills the material into the bottom film. Thirdly, the top film conveying mechanism 105 conveys the top film to correspond to the bottom film filled with the material, and the sealing mechanism 106 seals the bottom film and the top film to obtain a continuous first bead. Finally, the forming die 101 conveys the continuous first bead through the cutting mechanism 107, and the cutting mechanism 107 divides the continuous first bead into individual first beads.
[0052] It should be noted that during the operation of the second production device 20, before the bottom film and the top film of the second bead are sealed, the first bead produced by the first production device 10 first passes through the bead position adjusting device 30 for position adjustment, and then falls into the non-closed structure formed by the bottom film of the second bead. After the first bead falls into the non-closed structure formed by the bottom film of the second bead, the bottom film of the second bead is then sealed with the top film of the second bead, so as to obtain a multi-cavity bead in which the first bead is located inside the second bead and the first bead can move inside the second bead.
[0053] Specifically, the material filled by the filling mechanism 104 can be liquid, powder or granule. In this embodiment, the material in the second bead is a liquid washing solution, and the material in the first bead is a granular fragrance bead. In this way, a multi-cavity bead can not only clean the clothes thoroughly, but also ensure that the clothes have a long-lasting fragrance after washing.
[0054] Specifically, both the bottom film conveying mechanism 102 and the top film conveying mechanism 105 adopt a conveying roller group in the prior art.
[0055] Specifically, the sealing mechanism 106 is a pressure roller. When the top film and the bottom film filled with materials pass through the sealing mechanism 106, the sealing mechanism 106 can seal the part of the bottom film that is not sucked into the mold cavity with the top film. It should be noted that the top film and the bottom film are subjected to humidity adjustment treatment by a humidity adjustment device before sealing, so that the top film and the bottom film can be sealed at room temperature.
[0056] Specifically, the bottom film can be sucked into the mold cavity by means of vacuum pumping.
[0057] Specifically, in this embodiment, the forming mold 101 of the first production device 10 is a drum-shaped mold, and the forming mold 101 of the second production device 20 is a conveyor belt-shaped mold.
[0058] Specifically, the preheating mechanism 103 can adopt a roller with heating tubes embedded inside. During the conveying process of the bottom film, the outer surface of the roller abuts against the bottom film, making the bottom film more likely to deform after being heated.
[0059] Specifically, the filling mechanism 104 can adopt a filling nozzle. The filling nozzle is connected to an external material supply device through a pipeline, and the materials provided by the material supply device are filled into the non-closed structure formed by the bottom film through the pipeline and the filling nozzle in sequence.
[0060] Specifically, the cutting mechanism 107 includes a transverse cutting component 1071 and a longitudinal cutting component 1072. The transverse cutting component 1071 includes a transverse cutting knife, which is fixed relative to the forming mold 101. The transverse cutting knife transversely cuts the coagulated beads connected in one piece, making the coagulated beads connected in one piece become multiple rows of coagulated beads. The longitudinal cutting component 1072 includes a longitudinal cutting knife and a longitudinal cutting driving cylinder. The longitudinal cutting knife is connected to the output shaft of the longitudinal cutting driving cylinder. The longitudinal cutting knife is located on the conveying path of the forming mold 101. When the forming mold 101 conveys multiple rows of coagulated beads to the station of the longitudinal cutting component 1072, the longitudinal cutting driving cylinder drives the longitudinal cutting knife to cut the multiple rows of coagulated beads, making the multiple rows of coagulated beads become individual coagulated beads. It should be noted that the coagulated beads mentioned here refer to the first coagulated beads or multi-chamber coagulated beads.
[0061] In summary, through the design of setting the bead position adjustment device 30 between the first production device 10 and the second production device 20, the multi-chamber bead production equipment of the present invention enables the adjustment mechanism 301 to adjust the distance between two adjacent first beads falling on the bearing mechanism 302, so that the first beads can accurately fall into the cavities of the second beads produced by the second production device 20 when the bearing mechanism 302 is opened. Furthermore, multi-chamber beads with the first beads located inside the second beads and the first beads being able to move inside the second beads are obtained to meet the market demand.
[0062] The above are only some embodiments of the present invention. For those of ordinary skill in the art, without departing from the inventive concept of the present invention, several deformations and improvements can still be made, and these all fall within the protection scope of the present invention.
Claims
1. A multi - cavity pearl - like bead production device, comprising a first production device for producing first pearl - like beads and a second production device for producing second pearl - like beads, characterized in that, it further comprises: a bead position adjustment device; the bead position adjustment device is arranged between the first production device and the second production device; the bead position adjustment device includes a carrying mechanism and an adjustment mechanism. After the first bead - like beads fall into the carrying mechanism, the adjustment mechanism adjusts the distance between two adjacent first bead - like beads, so that the first bead - like beads accurately fall into the cavities of the second bead - like beads on the second production device when the carrying mechanism opens; the bead position adjustment device further includes a feeding mechanism, the feeding mechanism is located between the first production device and the carrying mechanism, and the feeding mechanism is used to accurately introduce the first bead - like beads into the carrying mechanism; the feeding mechanism includes a plurality of juxtaposed feeding grooves, the distance between two adjacent feeding grooves is equal to the distance between two adjacent first bead - like beads on the first production device, and the upper surface of each feeding groove is an inclined surface; the feeding mechanism includes a plurality of juxtaposed feeding grooves and a plurality of feeding push members, the distance between two adjacent feeding grooves is equal to the distance between two adjacent first bead - like beads on the first production device, and the feeding push members can slide in the feeding grooves to push the first bead - like beads in the feeding grooves into the carrying mechanism.
2. The multi - cavity pearl - like bead production device according to claim 1, characterized in that, the adjustment mechanism includes a plurality of adjustment blocks, a plurality of connecting blocks and a material transfer driving member; the plurality of adjustment blocks are arranged in sequence, each adjustment block has an adjustment portion, and the adjustment portion is slidably arranged on the carrying mechanism; the plurality of connecting blocks are respectively arranged on the plurality of adjustment blocks, and two adjacent connecting blocks are in movable contact; the output end of the material transfer driving member is connected to one of the two adjustment blocks located on both sides among the plurality of adjustment blocks.
3. The multi - cavity pearl - like bead production device according to claim 2, characterized in that, the number of the material transfer driving members is two, the plurality of adjustment blocks are divided into two groups, and the two output ends of the two material transfer driving members are respectively connected to one of the two adjustment blocks located on both sides of the two groups of adjustment blocks.
4. The multi - cavity pearl - like bead production device according to claim 3, characterized in that, the adjustment mechanism further includes a limiting member, and the limiting member is respectively in movable contact with two connecting blocks arranged on two adjacent adjustment blocks between the two groups of adjustment blocks.
5. The multi - cavity pearl - like bead production device according to claim 2, characterized in that, the adjustment mechanism further includes a guiding member, and the plurality of adjustment blocks are all connected to the guiding member.
6. The multi - cavity pearl - like bead production device according to claim 1, characterized in that, the carrying mechanism includes a carrying driving member and a carrying plate; the carrying plate is connected to the output end of the carrying driving member, and the carrying driving member drives the carrying plate to open or close.
7. The multi - cavity pearl - like bead production device according to claim 1, characterized in that, Both the first production device and the second production device include a forming die, a bottom film conveying mechanism, a preheating mechanism, a filling mechanism, a top film conveying mechanism, a sealing mechanism and a cutting mechanism; the bottom film conveying mechanism, the preheating mechanism, the filling mechanism, the top film conveying mechanism, the sealing mechanism and the cutting mechanism of the first production device are sequentially arranged on the rotation path of the forming die of the first production device, and the bottom film conveying mechanism, the preheating mechanism, the filling mechanism, the top film conveying mechanism, the sealing mechanism and the cutting mechanism of the second production device are sequentially arranged on the rotation path of the forming die of the second production device.
Citation Information
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