System and method for manufacturing skin regeneration patch assembly
The manufacturing system for skin regeneration patches addresses convenience and exudate absorption issues by using vacuum forming and punching processes with biocompatible materials, resulting in a thin, adhesive, and aesthetically pleasing patch that effectively adheres to curved areas without swelling.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- NANOBIOSYSTEM CO LTD
- Filing Date
- 2025-11-05
- Publication Date
- 2026-06-04
AI Technical Summary
Existing skin regeneration patches face challenges in convenience, adhesive strength, cosmetic effect, and absorption of exudate, especially when applied to curved areas.
A manufacturing system and method for producing a thin skin regeneration patch assembly that includes a core buffer sheet, patch core plate sheet, patch support sheet, and skin regeneration patch sheet, with vacuum forming and punching processes to create a patch core and sheet that does not absorb exudate, using biocompatible materials like polycaprolactone and collagen.
The system produces a convenient, adhesive, and aesthetically pleasing patch that effectively adheres to curved areas without absorbing exudate, enhancing treatment efficacy and user experience.
Smart Images

Figure KR2025018002_04062026_PF_FP_ABST
Abstract
Description
Skin regeneration patch assembly manufacturing system and manufacturing method
[0001] The present invention relates to a skin regeneration patch assembly manufacturing system and a manufacturing method.
[0002] A skin regeneration patch that promotes skin regeneration by attaching it to a user's affected area may take the form of a sheet or a film. The thinner the skin regeneration patch, the greater the user's convenience. In order for the skin regeneration patch to be used conveniently, the structure of the skin regeneration patch needs to be improved.
[0003] The convenience of the user of the skin regeneration patch may include, for example, the adhesive strength with which the skin regeneration patch adheres to the affected area, the cosmetic effect when the skin regeneration patch is adhered to the affected area, and the degree to which the skin regeneration patch adheres to the affected area when the affected area has a curved shape.
[0004] (Patent Document 1) KR 10-1241752 B1
[0005] The present invention aims to solve the aforementioned problems and other problems.
[0006] The present invention has another objective of providing a system for manufacturing a skin regeneration patch assembly and a method for manufacturing a skin regeneration patch comprising a thin skin regeneration patch.
[0007] The present invention has another objective of providing a system for manufacturing a skin regeneration patch assembly and a method for manufacturing a skin regeneration patch assembly that does not absorb exudate generated from the skin.
[0008] According to one aspect of the present invention, a skin regeneration patch assembly manufacturing system may be provided, comprising: a core buffer sheet supply unit for supplying a core buffer sheet; a patch core plate sheet supply unit for supplying a patch core plate sheet; a patch core forming unit that receives the core buffer sheet and the patch core plate sheet and forms a skin regeneration patch core from the patch core plate sheet; a patch core transfer unit for transferring the skin regeneration patch core; a patch support sheet supply unit for supplying a patch support sheet; a skin regeneration patch plate sheet supply unit for supplying a skin regeneration patch plate sheet; and a skin regeneration patch module forming unit that receives the skin regeneration patch plate sheet and the patch support sheet and forms a skin regeneration patch sheet from the skin regeneration patch plate sheet; wherein the skin regeneration patch module forming unit receives the patch support sheet; a skin regeneration patch sheet attached to the patch support sheet; and the skin regeneration patch core attached to the skin regeneration patch sheet.
[0009] The patch core forming part may include: a plate sheet and buffer sheet receiving part in which the core buffer sheet and the patch core plate sheet are received; a vacuum forming part that forms a vacuum through a buffer sheet vacuum hole formed in the core buffer sheet; and a core punching part that forms a skin regeneration patch core through processing of the core buffer sheet.
[0010] The above skin regeneration patch module molding part may include: a patch support sheet receiving part in which the patch support sheet and the skin regeneration patch are received; and a skin regeneration patch sheet punching part for forming a skin regeneration patch sheet through processing of the skin regeneration patch.
[0011] The above skin regeneration patch module molding part further includes a regeneration patch sheet removal part, and the regeneration patch sheet removal part can remove a portion of the skin regeneration patch excluding the skin regeneration patch sheet.
[0012] The patch support sheet may include: a patch support sheet body; a patch support sheet opening formed in the patch support sheet body; and a patch support knob detachably coupled to the patch support sheet body.
[0013] According to another aspect of the present invention, a method for manufacturing a skin regeneration patch assembly may be provided, comprising the steps of: supplying a core buffer sheet; supplying a patch core disc sheet and laminating it onto the core buffer sheet; forming a skin regeneration patch core through punching the patch core disc sheet; separating the skin regeneration patch core; supplying a patch support sheet; supplying a skin regeneration patch and attaching it to the patch support sheet; forming a skin regeneration patch sheet through punching the skin regeneration patch; and attaching the skin regeneration patch core to the skin regeneration patch sheet.
[0014] The above skin regeneration patch core forming step includes a vacuum forming step through a vacuum hole formed through the core buffer sheet, and the vacuum forming step can enable close contact between the core buffer sheet and the patch core plate sheet.
[0015] The above skin regeneration patch core attachment step can seat the skin regeneration patch core in the patch support sheet opening formed in the patch support sheet.
[0016] The patch support sheet may include: a patch support sheet body; a patch support sheet opening formed in the patch support sheet body; and a patch support knob detachably coupled to the patch support sheet body.
[0017] The method further includes a step of separating a skin regeneration patch module, wherein the skin regeneration patch module separation step may involve separating the skin regeneration patch sheet, the skin regeneration patch core, and the patch support knob from the patch support sheet.
[0018] According to at least one of the embodiments of the present invention, a system for manufacturing a skin regeneration patch assembly and a method for manufacturing a skin regeneration patch assembly including a thin skin regeneration patch may be provided.
[0019] According to at least one of the embodiments of the present invention, a system for manufacturing a skin regeneration patch assembly that does not absorb exudate generated from the skin and a method for manufacturing such an assembly may be provided.
[0020] FIG. 1 is a drawing showing a patch core disc sheet and a core cushion sheet used in a skin regeneration patch assembly manufacturing process according to one embodiment of the present invention.
[0021] Figure 2 is a drawing showing the combined appearance of the patch core disc sheet and the core cushion sheet illustrated in Figure 1.
[0022] Figure 3 is a drawing showing the patch core disc sheet and core buffer sheet shown in Figure 2 cut along A1-A2, and a skin regeneration patch core formed on the patch core disc sheet through a core punching blade.
[0023] Figure 4 is a diagram showing the separation of a punched skin regeneration patch core through a patch core transfer unit.
[0024] FIG. 5 is a drawing showing a patch support sheet according to one embodiment of the present invention.
[0025] Figure 6 is a cross-section of the patch support sheet shown in Figure 5, cut along B1-B2.
[0026] FIG. 7 is a drawing showing the skin regeneration patch sheet punching section of the skin regeneration patch sheet, cut along B1-B2 of the patch support sheet illustrated in FIG. 5.
[0027] FIG. 8 is a drawing showing the remaining skin regeneration patch sheet after punching the skin regeneration patch disc sheet, by cutting the patch support sheet (100) shown in FIG. 5 along B1-B2.
[0028] FIG. 9 is a drawing showing the patch support sheet (100) illustrated in FIG. 5 cut along B1-B2, with a skin regeneration patch core attached to the patch support sheet.
[0029] Figure 10 is a diagram showing the separation of a skin regeneration patch module from a patch support sheet.
[0030] FIG. 11 is a block diagram showing a manufacturing process for a skin regeneration patch assembly according to one embodiment of the present invention.
[0031] FIG. 12 is a flowchart illustrating a manufacturing process for a skin regeneration patch assembly according to one embodiment of the present invention.
[0032] Hereinafter, embodiments disclosed in this specification will be described in detail with reference to the attached drawings. Identical or similar components regardless of drawing symbols are assigned the same reference number, and redundant descriptions thereof will be omitted. The suffixes "module" and "part" used for components in the following description are assigned or used interchangeably solely for the ease of drafting the specification and do not inherently possess distinct meanings or roles.
[0033] In addition, when describing the embodiments disclosed in this specification, if it is determined that a detailed description of related prior art may obscure the essence of the embodiments disclosed in this specification, such detailed description is omitted. Furthermore, the attached drawings are intended only to facilitate understanding of the embodiments disclosed in this specification, and the technical concept disclosed in this specification is not limited by the attached drawings; it should be understood that they include all modifications, equivalents, and substitutions that fall within the spirit and technical scope of the present invention.
[0034] Terms including ordinal numbers, such as first, second, etc., may be used to describe various components, but said components are not limited by said terms. These terms are used solely for the purpose of distinguishing one component from another.
[0035] When it is stated that one component is "connected" or "connected" to another component, it should be understood that while it may be directly connected or connected to that other component, there may also be other components in between. On the other hand, when it is stated that one component is "directly connected" or "directly connected" to another component, it should be understood that there are no other components in between.
[0036] The singular expression includes the plural expression unless the context clearly indicates otherwise. In this application, terms such as "comprising" or "having" are intended to specify the existence of the features, numbers, steps, actions, components, parts, or combinations thereof described in the specification, and should be understood as not precluding the existence or addition of one or more other features, numbers, steps, actions, components, parts, or combinations thereof.
[0037] In the drawings, the size of components may be exaggerated or reduced for convenience of explanation. For example, the size and thickness of each component shown in the drawings are depicted arbitrarily for convenience of explanation, so the present invention is not necessarily limited to what is illustrated.
[0038] Where an embodiment can be implemented differently, a specific process sequence may be performed differently from the order described. For example, two processes described consecutively may be performed substantially simultaneously or proceed in the reverse order of the description.
[0039] In the following embodiments, when it is stated that a membrane, region, component, etc. is connected, it includes not only cases where the membrane, region, or component is directly connected, but also cases where other membranes, regions, or components are interposed between them to form an indirect connection. For example, when it is stated in this specification that a membrane, region, component, etc. is electrically connected, it includes not only cases where the membrane, region, or component, etc. are directly electrically connected, but also cases where other membranes, regions, or components are interposed between them to form an indirect electrical connection.
[0040] The XYZ coordinate system may be used in this specification. The XYZ coordinate system may be a Cartesian coordinate system. For example, the XYZ coordinate system may be a right-handed Cartesian coordinate system.
[0041] For example, the positive X-axis direction can be forward. For example, the negative X-axis direction can be rearward. For example, the positive Y-axis direction can be right direction. For example, the negative Y-axis direction can be left direction. For example, the positive Z-axis direction can be upward. For example, the negative Z-axis direction can be downward.
[0042] Referring to FIGS. 10 and 11, a skin regeneration patch assembly manufacturing system (1) according to the present invention can manufacture a skin regeneration patch assembly (10). The skin regeneration patch assembly (10) may include a patch support sheet (100) and a skin regeneration patch (200).
[0043] Referring to FIGS. 1 and FIGS. 11, a skin regeneration patch assembly manufacturing system (1) may include a core buffer sheet supply unit (20). The core buffer sheet supply unit (20) may include a core buffer sheet (21). The core buffer sheet (21) may form a plate or board shape.
[0044] The core buffer sheet supply unit (20) may include a buffer sheet vacuum hole (22). The buffer sheet vacuum hole (22) may penetrate the upper surface of the core buffer sheet (21) and the lower surface of the core buffer sheet (21). For example, the buffer sheet vacuum hole (22) may connect the upper surface of the core buffer sheet (21) and the lower surface of the core buffer sheet (21).
[0045] The buffer sheet vacuum hole (22) can be opened above and below the core buffer sheet (21). The buffer sheet vacuum hole (22) can function as a flow path for forming a vacuum.
[0046] The skin regeneration patch assembly manufacturing system (1) may include a patch core sheet supply unit (30). The patch core sheet supply unit (30) may include a patch core sheet (31).
[0047] The patch core sheet supply unit (30) can supply a patch core sheet (31) to the core buffer sheet (21). For example, the patch core sheet supply unit (30) can position the patch core sheet (31) on top of the core buffer sheet (21). The patch core sheet (31) can form a plate or board shape.
[0048] FIG. 2 is a drawing showing the combined appearance of the patch core disc sheet (31) and the core buffer sheet (21) shown in FIG. 1. FIG. 3 is a drawing showing the patch core disc sheet (31) and the core buffer sheet (21) shown in FIG. 2 cut along A1-A2, showing the formation of a skin regeneration patch core (220) on the patch core disc sheet (31) through a core punching blade (431).
[0049] Referring to FIGS. 2, FIGS. 3 and FIGS. 11, a skin regeneration patch assembly manufacturing system (1) may include a patch core forming part (40). The patch core forming part (40) may include a plate sheet and a cushioning sheet receiving part (410).
[0050] The disc sheet and buffer sheet receiving portion (410) may form a hollow shape. For example, the disc sheet and buffer sheet receiving portion (410) may have an upper open space formed for the formation of a skin regeneration patch core (220).
[0051] The original sheet and buffer sheet receiving portion (410) can receive the core buffer sheet (21) and the patch core original sheet (31). The core buffer sheet (21) is first supplied to the original sheet and buffer sheet receiving portion (410) through the core buffer sheet supply portion (20), and the patch core original sheet (31) can be supplied and placed on top of the core buffer sheet (21) through the patch core original sheet supply portion (30).
[0052] The patch core forming section (40) may include a vacuum forming section (420). The vacuum forming section (420) may be connected to a buffer sheet vacuum hole (22). With the patch core plate sheet (31) stacked on top of the core buffer sheet (21), the vacuum forming section (420) can form a vacuum pressure on the lower surface of the patch core plate sheet (31) through the buffer sheet vacuum hole (22). Through this, the patch core plate sheet (31) can maintain a state of close contact with the core buffer sheet (21).
[0053] The patch core forming portion (40) may include a core punching portion (430). The core punching portion (430) may be located on the original sheet and buffer sheet receiving portion (410). For example, the core punching portion (430) may be located on the stacked core buffer sheet (21) and the patch core original sheet (31).
[0054] The core punching section (430) may include a core punching blade (431). The core punching section (430) may move up and down. During the downward movement of the core punching section (430), the core punching blade (431) may penetrate the patch core plate sheet (31).
[0055] During the process of penetrating the patch core plate sheet (31), the core punching blade (431) can be pressed into the upper surface of the core buffer sheet (21). Through this, punching of the patch core plate sheet (31) can be performed smoothly.
[0056] A skin regeneration patch core (220) can be formed in the patch core plate sheet (31) through punching with the core punching blade (431). For example, the inner diameter of the core punching blade (431) can form the diameter of the skin regeneration patch core (220).
[0057] The skin regeneration patch core (220) can form the shape of a film or sheet. For example, the skin regeneration patch core (220) can form an upper surface and a lower surface.
[0058] The skin regeneration patch core (220) may contain ingredients necessary for skin regeneration. For example, the skin regeneration patch core (220) may contain a biocompatible polymer. For example, the skin regeneration patch core (220) may contain a polycaprolactone (PCL) component.
[0059] For example, the skin regeneration patch core (220) may include a poly-lactide-co-glycolide-acid (PLGA) component. For example, the skin regeneration patch core (220) may include a hydrocolloid.
[0060] For example, the skin regeneration patch core (220) may include a collagen component. For example, the skin regeneration patch core (220) may include porcine collagen. For example, the skin regeneration patch core (220) may include porcine collagen type 1.
[0061] For example, the skin regeneration patch core (220) may contain polylactic acid (PLA). For example, the skin regeneration patch core (220) may contain polypropylene lactic acid (PDLLA). For example, the skin regeneration patch core (220) may contain chitosan.
[0062] Biocompatible materials are exemplified as materials included in the skin regeneration patch core (220), but are not limited thereto. Polycaprolactone and polylactide coglycolic acid may be hydrophobic. For example, polycaprolactone and polylactide coglycolic acid may not absorb exudate from the skin.
[0063] Exudate from the skin can aid in the healing of the affected area. Therefore, since the skin regeneration patch core (220) does not absorb the exudate, the treatment of the affected area can be performed more effectively.
[0064] Additionally, if the skin regeneration patch core (220) absorbs exudate, the skin regeneration patch core (220) may swell. By not absorbing exudate, the beauty effect felt by the user may be enhanced.
[0065] For example, the ingredients required for skin regeneration may form one side of the skin regeneration patch core (220). For example, the ingredients required for skin regeneration may form at least a portion of the lower surface of the skin regeneration patch core (220).
[0066] Referring to FIGS. 4 and FIGS. 11, the skin regeneration patch assembly manufacturing system (1) may include a patch core transfer unit (50). The patch core transfer unit (50) may include a patch core transfer actuator (51). The patch core transfer unit (50) may separate the skin regeneration patch core (220).
[0067] For example, the patch core transfer actuator (51) can adsorb the skin regeneration patch core (220) from the patch core disc sheet (31) and transfer it upward. When the patch core transfer actuator (51) is operated, the vacuum forming unit (420) can stop operating.
[0068] Referring to FIGS. 5, 6 and 11, a skin regeneration patch assembly manufacturing system (1) may include a patch support sheet supply unit (60). The patch support sheet supply unit (60) may supply a patch support sheet (100).
[0069] The patch support sheet (100) may include a patch support sheet body (110). The patch support sheet body (110) may form the shape of a film or a sheet.
[0070] For example, the patch support sheet body (110) can form two sides. For example, the patch support sheet body (110) can form an upper face and a lower face. The upper face of the patch support sheet body (110) can face upward.
[0071] The lower surface of the patch support sheet body (110) may face downward. The thickness of the patch support sheet body (110) may be the distance between the upper surface and the lower surface of the patch support sheet body (110).
[0072] The patch support sheet (100) may include a patch support knob (112). The patch support knob (112) may be detachably coupled to the patch support sheet body (110). For example, the patch support sheet body (110) and the patch support knob (112) may be formed by processing a single sheet.
[0073] The patch support sheet (100) may include a patch support sheet opening (120). The patch support sheet opening (120) may be an opening formed in the patch support sheet body (110).
[0074] For example, the patch support sheet opening (120) can penetrate the upper and lower surfaces of the patch support sheet body (110). For example, the patch support sheet opening (120) can be connected to the upper and lower surfaces of the patch support sheet body (110).
[0075] The patch support sheet opening (120) can be formed by the patch support sheet body (110) and the patch support knob (112). For example, a portion of the boundary of the patch support sheet body (110) and a portion of the boundary of the patch support knob (112) can form the perimeter of the patch support sheet opening (120).
[0076] For example, a portion of the perimeter of the patch support sheet opening (120) can be connected to the patch support sheet body (110). For example, another portion of the perimeter of the patch support sheet opening (120) can be connected to the patch support knob (112).
[0077] Referring to FIGS. 7 and FIGS. 11, the skin regeneration patch assembly manufacturing system (1) may include a skin regeneration patch disc sheet supply unit (70). The skin regeneration patch disc sheet supply unit (70) may include a skin regeneration patch disc sheet (71). The skin regeneration patch disc sheet (71) may be placed under the patch support sheet (100).
[0078] The skin regeneration patch disc sheet (71) can cover the entire lower surface of the patch support sheet (100). For example, the skin regeneration patch disc sheet (71) can be attached to the lower surface of the patch support sheet body (110) and the lower surface of the patch support knob (112).
[0079] Additionally, the skin regeneration patch disc sheet (71) can block the lower opening of the patch support sheet opening (120). By doing so, the patch support sheet opening (120) may be open only upwards.
[0080] The skin regeneration patch assembly manufacturing system (1) may include a skin regeneration patch module molding part (80). The skin regeneration patch module molding part (80) may include a patch support sheet receiving part (810).
[0081] The patch support sheet receiving portion (810) can receive the patch support sheet (100) and the skin regeneration patch plate sheet (71). For example, the patch support sheet receiving portion (810) may have an open space formed for the formation of the skin regeneration patch sheet (210).
[0082] The skin regeneration patch module molding part (80) may include a skin regeneration patch sheet punching part (820). The skin regeneration patch sheet punching part (820) may be located below the patch support sheet (100) and the skin regeneration patch original sheet (71). For example, the skin regeneration patch sheet punching part (820) may be located below the laminated patch support sheet (100) and the skin regeneration patch original sheet (71).
[0083] The skin regeneration patch sheet punching portion (820) can move up and down. During the upward movement of the skin regeneration patch sheet punching portion (820), the patch penetrating blade (821) forming the skin regeneration patch sheet punching portion (820) can penetrate the skin regeneration patch disc sheet (71).
[0084] During the penetration process of the skin regeneration patch disc sheet (71), the patch penetration blade (821) can be pressed into the lower surface of the patch support sheet body (110). Through this, the punching of the skin regeneration patch disc sheet (71) can be performed smoothly.
[0085] A skin regeneration patch sheet (210) can be formed from a skin regeneration patch plate sheet (71) through punching with the patch penetration blade (821). For example, the inner diameter of the patch penetration blade (821) can form the diameter of the skin regeneration patch sheet (210).
[0086] The skin regeneration patch sheet (210) can form the shape of a film or a sheet. For example, the skin regeneration patch sheet (210) can form an upper surface and a lower surface.
[0087] Referring to FIGS. 8 and FIGS. 11, the skin regeneration patch module molding part (80) may include a regeneration patch sheet removal part (830). The regeneration patch sheet removal part (830) can separate the skin regeneration patch original sheet (71), excluding the skin regeneration patch sheet (210), from the patch support sheet (100). As a result, only the skin regeneration patch sheet (210) can remain attached to the patch support sheet (100).
[0088] FIG. 9 is a drawing showing a skin regeneration patch core (220) attached to a patch support sheet (100).
[0089] Referring to FIGS. 8, 9 and 11, the patch core transfer unit (50) can transfer the skin regeneration patch core (220) to the skin regeneration patch module molding unit (80). The patch core transfer unit (50) can position the skin regeneration patch core (220) in the patch support sheet opening (120).
[0090] The skin regeneration patch core (220) can be combined with or attached to the skin regeneration patch sheet (210). For example, the lower surface of the skin regeneration patch core (220) can be combined with or attached to the upper surface of the skin regeneration patch sheet (210).
[0091] For example, the skin regeneration patch core (220) may be bonded to or attached to the central area of the skin regeneration patch sheet (210). For example, the lower surface of the skin regeneration patch core (220) may be bonded to or attached to the central area of the skin regeneration patch sheet (210).
[0092] Here, the upper surface of the skin regeneration patch sheet (210) may include a circular central region and a peripheral region surrounding the central region. Meanwhile, the patch support sheet body (110) and the patch support knob (112) may be attached to the peripheral region.
[0093] The skin regeneration patch sheet (210) can be simultaneously attached to the patch support sheet body (110), the skin regeneration patch core (220), and the patch support knob (112). For example, the skin regeneration patch core (220) can be attached to the central area of the skin regeneration patch sheet (210) having a disc shape.
[0094] The patch support knob (112) may be placed in a rear portion of the peripheral area of the skin regeneration patch sheet (210). The patch support sheet body (110) may be placed in an area excluding the rear portion of the peripheral area of the skin regeneration patch sheet (210).
[0095] The skin regeneration patch core (220) can be positioned parallel to the patch support knob (112). For example, the skin regeneration patch core (220) can be positioned in front of the patch support knob (112). The lower surface of the skin regeneration patch core (220) can be positioned in the same plane as the lower surface of the patch support knob (112).
[0096] The skin regeneration patch module (15) may include a skin regeneration patch (200) and a patch support knob (112). The skin regeneration patch (200) and the patch support knob (112) may be combined with each other.
[0097] For example, the skin regeneration patch sheet (210) and the patch support knob (112) can be combined with each other. For example, the skin regeneration patch sheet (210) and the patch support knob (112) can be detachably combined or attached to each other. For example, the upper surface of the skin regeneration patch sheet (210) and the lower surface of the patch support knob (112) can be detachably combined or attached to each other.
[0098] Referring to FIG. 10, the skin regeneration patch module (15) can be separated from the patch support sheet body (110). For example, a user can separate the patch support knob (112) from the patch support sheet body (110) and hold it.
[0099] For example, the user can detach the skin regeneration patch module (15) from the patch support sheet body (110) by lowering the patch support knob (112) while holding the patch support knob (112). Before the skin regeneration patch module (15) is detached from the patch support sheet body (110), the skin regeneration patch core (220) may be positioned in the patch support sheet opening (120).
[0100] FIG. 11 is a block diagram illustrating a manufacturing process for a skin regeneration patch assembly according to an embodiment of the present invention. Referring to FIG. 11, a skin regeneration patch assembly manufacturing system (1) according to an embodiment of the present invention may include a control unit (90). The control unit (90) may perform computation. The control unit (90) may process signals.
[0101] For example, the control unit (90) may receive input signals (S1, S2, S3, S4, S5, S6, S7) and generate output signals (S8, S9, S10, S11, S12, S13, S14) based on the input signals (S1, S2, S3, S4, S5, S6, S7). The input signals (S1, S2, S3, S4, S5, S6, S7) may include or represent at least one of a first signal (S1), a second signal (S2), a third signal (S3), a fourth signal (S4), a fifth signal (S5), a sixth signal (S6), and a seventh signal (S7).
[0102] The output signals (S8, S9, S10, S11, S12, S13, S14) may include or represent at least one of the eighth signal (S8), the ninth signal (S9), the tenth signal (S10), the eleventh signal (S11), the twelfth signal (S12), the thirteenth signal (S13), and the fourteenth signal (S14).
[0103] The core buffer sheet supply unit (20) can generate a first signal (S1) regarding input and transmit it to the control unit (90). The first signal (S1) may include information regarding whether the core buffer sheet supply unit (20) has supplied the core buffer sheet (21) to the patch core forming unit (40).
[0104] The control unit (90) can generate an eighth signal (S8) based on a first signal (S1). The eighth signal (S8) may include a supply command signal for the core buffer sheet (21) and information on the number of times the supplied core buffer sheet (21) has been used.
[0105] The patch core plate sheet supply unit (30) can generate a second signal (S2) regarding input and transmit it to the control unit (90). The second signal (S2) may include information regarding whether the patch core plate sheet supply unit (30) has supplied the patch core plate sheet (31) to the patch core forming unit (40).
[0106] The control unit (90) can generate a ninth signal (S9) based on a second signal (S2). The ninth signal (S9) may include a supply command signal for the patch core plate sheet (31) and punching information of the supplied patch core plate sheet (31).
[0107] The patch core forming unit (40) can generate a third signal (S3) regarding input and transmit it to the control unit (90). The third signal (S3) may include vacuum forming information through the vacuum forming unit (420) and punching information through the core punching unit (430).
[0108] The control unit (90) can generate a 10th signal (S10) based on a 3rd signal (S3). The 10th signal (S10) may include a vacuum forming command signal for a buffer sheet vacuum hole (22) of a core buffer sheet (21) and a punching command signal through a core punching unit (430).
[0109] The patch core transfer unit (50) can generate a fourth signal (S4) regarding input and transmit it to the control unit (90). The fourth signal (S4) may include information regarding whether the patch core transfer unit (50) has adsorbed the molded skin regeneration patch core (220) and whether the skin regeneration patch core (220) has been supplied to the skin regeneration patch module molding unit (80).
[0110] The control unit (90) can generate an eleventh signal (S11) based on a fourth signal (S4). The eleventh signal (S11) may include information such as an adsorption start signal of the skin regeneration patch core (220) through the patch core transfer unit (50) and a transfer start signal of the skin regeneration patch core (220).
[0111] The patch support sheet supply unit (60) can generate a fifth signal (S5) regarding input and transmit it to the control unit (90). The fifth signal (S5) may include information regarding whether the patch support sheet supply unit (60) has supplied the patch support sheet (100) to the skin regeneration patch module molding unit (80).
[0112] The control unit (90) can generate a 12th signal (S12) based on a 5th signal (S5). The 12th signal (S12) may include a signal to start supplying a patch support sheet (100) through the patch support sheet supply unit (60).
[0113] The skin regeneration patch original sheet supply unit (70) can generate a sixth signal (S6) regarding input and transmit it to the control unit (90). The sixth signal (S6) may include information regarding whether the skin regeneration patch original sheet supply unit (70) has supplied the skin regeneration patch original sheet (71) to the skin regeneration patch module molding unit (80).
[0114] The control unit (90) can generate a 13th signal (S13) based on a 6th signal (S6). The 13th signal (S13) may include a supply command signal for the skin regeneration patch original sheet (71) and punching information for the supplied skin regeneration patch original sheet (71).
[0115] The skin regeneration patch module molding part (80) can generate a seventh signal (S7) regarding input and transmit it to the control part (90). The seventh signal (S7) may include punching information for the skin regeneration patch original sheet (71) through the skin regeneration patch sheet punching part (820) and operation information through the regeneration patch sheet removal part (830).
[0116] The control unit (90) can generate a 14th signal (S14) based on a 7th signal (S7). The 14th signal (S14) may include information on the initiation of punching for the skin regeneration patch original sheet (71) through the skin regeneration patch sheet punching unit (820) and a signal for the removal of the skin regeneration patch original sheet (71), excluding the skin regeneration patch sheet (210), through the regeneration patch sheet removal unit (830).
[0117] FIG. 12 is a flowchart illustrating a manufacturing process for a skin regeneration patch assembly according to one embodiment of the present invention.
[0118] First, the core buffer sheet supply unit (20) can supply the core buffer sheet (21) to the original sheet and buffer sheet receiving unit (410) of the patch core forming unit (40) (S100).
[0119] The patch core plate sheet supply unit (30) can supply the patch core plate sheet (31) to the plate sheet and buffer sheet receiving unit (410) (S200).
[0120] The patch core forming part (40) can form a skin regeneration patch core (220) (S300). The skin regeneration patch core (220) forming step can be performed by vacuum adsorbing between the core buffer sheet (21) and the patch core plate sheet (31) using the vacuum forming part (420).
[0121] The skin regeneration patch core (220) molding step can be performed by punching the core buffer sheet (21) using the core punching part (430) while in the vacuum adsorbed state. Through this, the skin regeneration patch core (220) can be molded separately from the core buffer sheet (21).
[0122] Next, a patch support sheet (100) can be supplied through the patch support sheet supply unit (60) (S400). The patch support sheet (100) can be supplied to the skin regeneration patch module molding unit (80).
[0123] The skin regeneration patch disc sheet supply unit (70) can supply a skin regeneration patch disc sheet (71). The skin regeneration patch disc sheet (71) can be supplied below the patch support sheet (100) placed in the skin regeneration patch module molding unit (80).
[0124] The patch core molding part (40) can mold the skin regeneration patch (200) (S500). The skin regeneration patch sheet punching part (820) can punch the skin regeneration patch (200) to form a skin regeneration patch sheet (210).
[0125] Next, the patch core transfer unit (50) can transfer the skin regeneration patch core (220) to the skin regeneration patch module molding unit (80) (S600).
[0126] Finally, the skin regeneration patch assembly (10) may include a patch support sheet (100), a skin regeneration patch core (220) attached to the lower surface of the patch support sheet (100), and a skin regeneration patch core (220) disposed in a patch support sheet opening (120) formed in the patch support sheet (100).
[0127] In the above state, a skin regeneration patch (200) including a skin regeneration patch sheet (210) and a skin regeneration patch core (220) and a skin regeneration patch module (15) having a patch support knob (112) can be completed (S700).
[0128] Although a method for manufacturing a skin regeneration patch assembly according to an embodiment of the present invention has been described as a specific embodiment, this is merely an example and the present invention is not limited thereto, and should be interpreted as having the broadest scope in accordance with the basic concept disclosed in this specification.
[0129] Those skilled in the art may combine or substitute the disclosed embodiments to implement embodiments not specified, and such also does not deviate from the scope of the present invention. Furthermore, those skilled in the art may easily modify or alter the embodiments disclosed based on this specification, and it is evident that such modification or alteration also falls within the scope of the present invention.
[0130] The present invention relates to a system for manufacturing a skin regeneration patch assembly and a method for manufacturing it. The present invention can be utilized in fields including medical supplies, health supplies, and the fields of lifestyle health and skin care products.
Claims
1. A core buffer sheet supply unit that supplies a core buffer sheet; A patch core sheet supply unit that supplies a patch core sheet; A patch core forming part that accommodates the core buffer sheet and the patch core disc sheet, and forms a skin regeneration patch core from the patch core disc sheet; A patch core transfer unit for transferring the above-mentioned skin regeneration patch core; A patch support sheet supply unit that supplies a patch support sheet; A skin regeneration patch disc sheet supply unit that supplies a skin regeneration patch disc sheet; and A skin regeneration patch module forming part that accommodates the skin regeneration patch disc sheet and the patch support sheet, and forms a skin regeneration patch sheet from the skin regeneration patch disc sheet; The above-mentioned skin regeneration patch module molding part is, The above patch support sheet; A skin regeneration patch sheet attached to the patch support sheet above; and accommodating the skin regeneration patch core attached to the skin regeneration patch sheet, Skin regeneration patch assembly manufacturing system.
2. In Paragraph 1, The above patch core forming part is, A disc sheet and buffer sheet receiving portion in which the core buffer sheet and the patch core disc sheet are received; A vacuum forming unit that forms a vacuum through a buffer sheet vacuum hole formed in the core buffer sheet; and A core punching section comprising a core punching section for forming a skin regeneration patch core through processing the core buffer sheet, Skin regeneration patch assembly manufacturing system.
3. In Paragraph 1, The above-mentioned skin regeneration patch module molding part is, A patch support sheet receiving portion in which the above patch support sheet and the above skin regeneration patch are received; and A skin regeneration patch sheet punching unit that forms a skin regeneration patch sheet through processing of the above-mentioned skin regeneration patch; comprising Skin regeneration patch assembly manufacturing system.
4. In Paragraph 3, The above-mentioned skin regeneration patch module molding part is, It further includes a regenerative patch sheet removal section, and The above-mentioned regeneration patch sheet removal unit is, Removing the portion of the above skin regeneration patch excluding the skin regeneration patch sheet, Skin regeneration patch assembly manufacturing system.
5. In Paragraph 1, The above patch support sheet is, Patch support sheet body; A patch support sheet opening formed in the patch support sheet body; and A patch support knob detachably coupled to the patch support sheet body, Skin regeneration patch assembly manufacturing system.
6. Step of supplying the core buffer sheet; A step of supplying a patch core disc sheet and laminating it onto the core buffer sheet; A step of forming a skin regeneration patch core through punching processing on the above patch core disc sheet; Step of separating the above skin regeneration patch core; Step of supplying a patch support sheet; A step of supplying a skin regeneration patch and attaching it to the patch support sheet; A step of forming a skin regeneration patch sheet through punching processing of the above skin regeneration patch; and A step comprising attaching the skin regeneration patch core to the skin regeneration patch sheet; Method for manufacturing a skin regeneration patch assembly.
7. In Paragraph 6, The above skin regeneration patch core forming step is, A step of forming a vacuum through a buffer sheet vacuum hole formed through the core buffer sheet, The above vacuum forming step enables close contact between the core buffer sheet and the patch core disc sheet, Method for manufacturing a skin regeneration patch assembly.
8. In Paragraph 6, The above skin regeneration patch core attachment step is, A skin regeneration patch core placed in a patch support sheet opening formed in the patch support sheet. Method for manufacturing a skin regeneration patch assembly.
9. In Paragraph 8, The above patch support sheet is, Patch support sheet body; The patch support sheet opening formed in the patch support sheet body; and A patch support knob detachably coupled to the patch support sheet body, Method for manufacturing a skin regeneration patch assembly.
10. In Paragraph 9, It further includes a step of separating the skin regeneration patch module, The above skin regeneration patch module separation step is, In the patch support sheet above, separating the skin regeneration patch sheet, the skin regeneration patch core, and the patch support knob, Method for manufacturing a skin regeneration patch assembly.