Refill unit for sunscreen and refillable stick container equipped with same

The refillable stick container design addresses the recyclability and cost issues of stick-type containers by using a lift-up shell and holder system for secure refilling, enhancing ease of assembly and reducing waste.

JP7793875B2Active Publication Date: 2026-01-06SAMWHA CO LTD
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Patent Information

Application Number
JP2024169530
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-10-20
Filing Date
2024-09-27
Publication Date
2026-01-06
Estimated Expiration
2044-09-27

AI Technical Summary

Technical Problem

Existing stick-type containers, such as those for sunscreen, are not easily recyclable due to their complex structure, leading to resource waste, and require high manufacturing costs due to their small size and complex mechanism for moving the stick material up and down.

Method used

A refill unit and refillable stick container design featuring a lift-up shell and holder that securely couple with a container assembly, allowing for easy refilling and high bonding strength, with components like shell and holder engaging portions, connector and shaft engaging portions, and a screw guide mechanism for vertical movement.

Benefits of technology

Enables refilling of stick materials like sunscreen or deodorant with ease, maintaining high bond strength and reducing manufacturing costs through a structure that is easy to assemble and disassemble, promoting recyclability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a refill unit of a stick type sunscreen product and a refill type stick container provided with the same.SOLUTION: A refill unit comprises a lifting shell 600 in which a shell space opened upward is formed inside, and a holder 700 arranged movably in a vertical direction inside the shell space. The lifting shell 600 contains a shell body 610 having an insertion hole 630 in its lower surface, and a shell engagement part 650 provided with a shell stepped jaw 670 which extends downward and protrudes in a lateral direction. The holder 700 contains a holder body 720 and a holder engagement part 740 provided with a holder stepped jaw 760 which extends downward and protrudes in the lateral direction. When the refill unit moves toward a container assembly under a condition where the holder 700 is at a lowest position in the shell space, the shell engagement part 650 is coupled to a connector 400 of the container assembly, and the holder engagement part 740 is coupled to a shaft 300 of the container assembly.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a sunscreen container, and more particularly to a refill unit that enables refilling of a stick-type sunscreen product, and a refillable stick container equipped with the refill unit. [Background technology]

[0002] A stick-type product is a product that uses a stick material in which a composition containing necessary ingredients is solidified in a solid form. Stick containers for this product generally store most of the stick material inside the container, but are provided with a structure that allows the user to operate it so that only a portion is exposed to the outside as needed. That is, as the stick-type product is used, the exposed upper part of the stick material is worn down, and as the upper part of the stick material wears down, its height gradually decreases, and the stick container moves the stick material further up to maintain the exposed state. In recent years, in addition to cosmetics such as lipstick and lip balm, products for various purposes such as sunscreen, deodorant, stick glue, and ointment have been provided in stick form.

[0003] Stick-type products are generally portable and therefore manufactured in relatively small sizes. The small size of stick-type products limits the amount of usable contents and requires greater precision in the manufacture of stick containers. On the other hand, using stick materials requires a complex structure for moving the stick material up and down, as described above, which results in higher manufacturing costs compared to general containers. If stick containers were made into refillable containers so that these costly and complexly constructed stick containers could be recycled even after the stick material has been used up, resource waste could be significantly reduced.

[0004] Among stick-type products, stick-type sunscreen products, also known as "sun sticks," are applied over a relatively large area each time they are used, and therefore the stick material is made to have a large width. Therefore, in order to manufacture stick containers for sunscreen, deodorant, etc. in a refillable form, it is necessary to firmly fix the refill unit across the entire width of the stick material. Summary of the Invention [Problem to be solved by the invention]

[0005] Therefore, the present invention has been devised to solve the above-mentioned problems, and an object of the present invention is to provide a refill unit and a refillable stick container that can provide high bonding strength while allowing for easy refilling.

[0006] Other objects of the present invention will become clearer based on the embodiments described below. [Means for solving the problem]

[0007] One aspect of the present invention provides a refill unit configured to move forward to couple with a container assembly. The refill unit according to one aspect of the present invention may include a lift-up shell defining an internal shell space that extends a predetermined length in the left-right direction and a predetermined length in the up-down direction and is open upward; and a holder disposed within the shell space so as to be movable vertically. The lift-up shell may include a shell main body defining the internal shell space and having an insertion hole formed on a lower surface thereof; and a shell engaging portion extending downward from a lower surface of the shell main body and having a shell step jaw protruding laterally at a lower portion thereof. The holder may include a holder body disposed within the shell space; and the holder engaging portion extending downward from a lower surface of the holder body at a position corresponding to the center of the insertion hole and having a holder step jaw protruding laterally at a lower portion thereof. Here, when the holder is at the lowest position within the shell space, the holder engagement portion can be exposed below the underside of the shell body through the insertion hole, and when the refill unit moves forward toward the container assembly with the holder at the lowest position within the shell space, the shell engagement portion can be coupled to the connector of the container assembly, and the holder engagement portion can be coupled to the shaft of the container assembly.

[0008] The refill unit according to the present invention may have one or more of the following embodiments: For example, the lower surface of the holder body may be formed with a first alignment protrusion extending downward, with the holder engagement portion disposed therein at a position corresponding to the edge of the insertion hole, and the first alignment protrusion may be inserted into the insertion hole when the holder is at its lowest position within the shell space.

[0009] An alignment hole may be formed in a lower surface of the shell main body, the shell engaging portion may be formed in a shape surrounding the alignment hole, and a second alignment protrusion extending downward may be formed on a lower surface of the holder body. When the holder is at a lowest position in the shell space, the second alignment protrusion may be inserted into the alignment hole.

[0010] The lifting shell may further include a stopper block extending downward from the rear lower portion of the shell body to hide the rear side of the shell engaging portion and having a stopper surface facing forward on the side thereof.

[0011] When the shell step jaw protrudes outward from the lower portion of the shell engaging portion, at least one of a locking protrusion and a locking groove may be formed on the outer circumferential surface of the shell engaging portion.

[0012] The shell engaging portion may extend downward to form a shell engaging space therein, and when the shell step jaw protrudes inward from a lower portion of the shell engaging portion, the shell engaging portion may be configured to be open at the front and the shell engaging space may be open at the top and front. In this case, at least one of a locking protrusion and a locking groove may be formed on the inner peripheral surface of the shell engaging portion.

[0013] Another aspect of the present invention provides a refillable stick container configured to have a forward moving refill unit coupled to the top thereof. A refillable stick container according to one aspect of the present invention may include: a connector having a connector engaging portion configured to couple to a lifting shell of a refill unit, the connector having a through hole formed on its upper surface; a socket cylinder configured to be rotatable relative to the connector, the socket cylinder defining a socket space therein and a screw guide having a socket screw formed on its inner circumferential surface; a shaft engaging portion located above the through hole and an extension body at least a portion of which is located within the socket space, the shaft engaging portion being configured to couple to a holder of the refill unit, the extension body having a shaft screw formed on its surface so as to mesh with the socket screw; the connector engaging portion may extend upward from an upper surface of the connector and have a connector step jaw protruding laterally at its upper portion, and the shaft engaging portion may extend upward from an upper portion of the extension body and have a shaft step jaw protruding laterally at its upper portion; when the refill unit moves forward toward the connector, the connector engaging portion may be coupled to the lifting shell, and the shaft engaging portion may be coupled to the holder.

[0014] The refillable stick container according to the present invention may have one or more of the following embodiments. For example, the refillable stick container may further include a container body coupled to the connector and the screw guide. The container body may be fixed relative to the connector, and the screw guide may be coupled to the container body so as to be rotatable relative to the container body.

[0015] The shaft engagement portion extends upward to form a shaft engagement space inward, and when the shaft step jaw protrudes inward from the top of the shaft engagement portion, the shaft engagement portion can be configured so that the rear side is open and the shaft engagement space is open to the top and rear sides.

[0016] The connector may further include a front block extending upward from an upper portion of the front side of the connector to conceal the front sides of the connector engaging portion and the shaft engaging portion. The front block may have a contact surface formed on a side thereof facing rearward, and the refill unit may include a stopper block having a stopper surface facing frontward, and the stopper surface may be in close contact with the contact surface when the refill unit is coupled.

[0017] Yet another aspect of the present invention provides a refillable stick container. This refillable stick container according to one aspect of the present invention includes: an elevator shell that extends a predetermined length in the left-right direction and a predetermined length in the up-down direction and defines an upwardly open shell space therein; a holder that is arranged to be movable up and down within the shell space; a connector that has a through-hole formed on its upper surface and a connector engagement portion configured to be coupled to the elevator shell; a screw guide that is configured to be rotatable relative to the connector and includes a socket cylinder that defines a socket space therein and has a socket screw formed on its inner circumferential surface; and a shaft that includes a shaft engagement portion located above the through-hole and an extension body, at least a portion of which is located within the socket space, the shaft engagement portion being configured to be coupled to the holder, and a shaft screw configured to mesh with the socket screw formed on a surface of the extension body. Here, the elevator shell includes: a shell main body that defines the shell space therein and has an insertion hole formed on its lower surface; and a shell engagement portion that extends downward from the lower surface of the shell main body and has a shell step jaw that protrudes laterally at its lower portion. The holder may include a holder body disposed within the shell space; and a holder engaging portion extending downward from a lower surface of the holder body at a position corresponding to the center of the insertion hole and having a holder step jaw protruding laterally at its lower portion. The connector engaging portion may extend upward from an upper surface of the connector and have a connector step jaw protruding laterally at its upper portion, and the shaft engaging portion may extend upward from an upper portion of the extension body and have a shaft step jaw protruding laterally at its upper portion. When the holder is at its lowest position within the shell space, the holder engaging portion may be exposed below the lower surface of the shell body through the insertion hole, and when the lifting shell moves forward toward the connector with the holder at its lowest position within the shell space, the shell step jaw may engage with the connector step jaw, thereby connecting the shell engaging portion to the connector engaging portion, and the holder step portion may engage with the shaft step jaw, thereby connecting the holder engaging portion to the shaft engaging portion. [Effects of the Invention]

[0018] According to the means for solving the problems of the present invention as described above, various effects can be expected, including the following: However, the present invention is not established unless all of the following effects are achieved.

[0019] The stick container and refill unit according to one embodiment of the present invention allows for the refilling of stick materials having a large lateral length, such as sunscreen or deodorant.

[0020] The stick container and refill unit according to one embodiment of the present invention provide a structure that is easy to assemble and retains high bond strength after assembly. [Brief explanation of the drawings]

[0021] [Figure 1] 1 is a perspective view illustrating an exemplary stick container according to one embodiment of the present invention. [Figure 2] 1 is a cross-sectional view illustrating an example of a stick container according to one embodiment of the present invention. [Figure 3] 1 is a cross-sectional view illustrating an example of a stick container according to one embodiment of the present invention. [Figure 4] 1 is a diagram illustrating an example of a container body of a stick container according to one embodiment of the present invention. [Figure 5] 1 is a perspective view illustrating an example of a screw guide of a stick container according to an embodiment of the present invention. FIG. [Figure 6] FIG. 2 is a perspective view illustrating an example of a dial of a stick container according to one embodiment of the present invention. [Figure 7] 1 is a perspective view illustrating a state in which a container body, a screw guide, and a dial are combined in a stick container according to an embodiment of the present invention; DETAILED DESCRIPTION OF THE INVENTION

[0022] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the description with reference to the accompanying drawings, the same or corresponding components will be given the same reference numerals regardless of the drawing symbols, and duplicate descriptions thereof will be omitted.

[0023] For ease of explanation, terms such as "front," "rear," "inside," "outside," "upper," and "lower" are used in this specification. In the following description, the "front" refers to the inner side of the direction in which the lifting shell assembly (i.e., the assembly of the lifting shell 600 and the holder 700) moves to be coupled to the container assembly (i.e., the assembly of the shaft 300, the connector 400, the container body 1100, the screw guide 1200, and the dial 1300). The "front-rear direction" refers to the direction connecting the front and rear, the "left-right direction" refers to the direction connecting the left and right sides, and the "lateral direction" is a concept that encompasses the front-rear direction and the left-right direction. The "inside" refers to the side closer to the inside of the component or the stick container 2000 being described, and the "outside" refers to the side farther from the component or the interior of the stick container 2000. Meanwhile, the "upper" and "lower" terms are based on the stick container 2000 being positioned as shown in FIG. 2. When the refillable stick container 2000 according to one embodiment of the present invention is actually used, the upward direction, forward direction, etc. referred to in this specification may not coincide with the actual upward direction, forward direction, etc.

[0024] The stick container 2000 according to one embodiment of the present invention presented below is configured to contain a stick material 10 such as sunscreen, deodorant, etc. In this case, the stick material 10 is required to be quickly applied to a wide area by the user, and therefore the stick material 10 is generally made to have a large length in the left-right direction.

[0025] Fig. 1 is a perspective view showing an example of a stick container 2000 according to one embodiment of the present invention, and Figs. 2 and 3 are cross-sectional views showing the stick container 2000 according to one embodiment of the present invention cut along the left-right direction and the front-back direction, respectively. Figs. 4, 5, and 6 show an example of the container body 1100, screw guide 1200, and dial 1300 of the stick container 2000, respectively, and Fig. 7 shows an example of a state in which these are combined.

[0026] The stick container 2000 according to one embodiment of the present invention corresponds to a container that stores a stick material 10, such as sunscreen or deodorant, and allows a user to use it. The stick material 10 is provided on top of the holder 700 from inside the lift-up shell 600, and can be moved up and down by the user by turning the dial 1300. The stick container 2000 according to one embodiment of the present invention may include a container assembly, a lift-up shell assembly, and a cap assembly. In one embodiment of the present invention, the container assembly refers to a portion including the shaft 300, the connector 400, and the screw guide 1200, the lift-up shell assembly refers to a portion including the lift-up shell 600 and the holder 700, and the cap assembly refers to a portion including the inner cap 910 and the overcap 920. The lift-up shell assembly may also constitute a refill unit that is distributed separately.

[0027] The container assembly of the stick container 2000 serves to support the lifting shell assembly and also serves to lift and lower the holder 700 in response to a user's operation. In the stick container 2000 according to one embodiment of the present invention, the container assembly may include a shaft 300, a connector 400, a container body 1100, a screw guide 1200, and a dial 1300.

[0028] The shaft 300 corresponds to a portion that interacts with the socket screw 1260 of the screw guide 1200 and moves in the up and down direction in response to a user's operation. In an embodiment of the present invention, the shaft 300 may include an extension body 310, a shaft engaging portion 350, a shaft screw 360, and a brake protrusion 370.

[0029] The extension 310 may extend vertically as a main portion of the shaft 300, may be disposed inside the socket screw 1260 of the socket cylinder 1240, and may be configured to pass through a through-hole in the connector 400. The extension 310 may have a non-circular cross section so that it does not rotate relative to the connector 400 while moving vertically. For example, in the example shown in the figure, the cross section of the extension 310 of the shaft 300 is formed to be long in one direction, with two long sides of the cross section being flat and two short sides being arc-shaped.

[0030] The shaft engaging portion 350 is positioned above the through-hole of the connector 400 and can be configured to couple with the holder engaging portion 740 of the holder 700. The shaft engaging portion 350 extends upward from the upper portion of the extension body 310, and the shaft step jaw 390 provided on the upper portion can protrude laterally. In the example shown in FIG. 2, the shaft engaging portion 350 extends upward to form a shaft engaging space inside, and the holder engaging portion 740 is inserted into the shaft engaging space. The shaft step jaw 390 protrudes inward from the upper portion of the shaft engaging portion 350 and hooks onto the holder step portion 760 of the holder engaging portion 740 located below it. Of course, the shaft step jaw 390 may protrude outward from the shaft engaging portion 350, and the holder step jaw 760 may protrude inward from the holder engaging portion 740.

[0031] The shaft screw 360 may be formed over the entire extension 310 of the shaft 300, and may protrude outward from both sides of the outer circumferential surface of the extension 310. That is, the shaft screw 360 may be formed on the short side of the outer circumferential surface of the extension 310, which forms an arc. As described above, the shaft screw 360 may be formed only at a predetermined position on the extension 310, and the socket screw 1260 may be formed over the entire inner circumferential surface of the socket cylinder 1240.

[0032] The shaft 300 can be arranged so that the shaft screw 360 engages with the socket screw 1260 inside the socket cylinder 1240 of the screw guide 1200. When the dial 1300 is rotated by a user's operation, the socket screw 1260 rotates, but the shaft 300 cannot rotate together due to the extension body 310 arranged to prevent rotation. As the socket screw 1260 rotates, the shaft screw 360 engaged therewith moves along the socket screw 1260, but as the shaft 300 cannot rotate, the shaft screw 360 and the shaft 300 including it move vertically without rotating.

[0033] The brake protrusion 370 may protrude outward from a position on the lower part of the extension 310 where the shaft screw 360 is not formed. For example, the brake protrusion 370 may be formed on a long side of the lower part of the extension 310 that forms a flat surface.

[0034] The connector 400 connects the container assembly and the lifting shell assembly to each other. In one embodiment of the present invention, the lifting shell assembly can constitute a refill unit by itself. When the contents of one stick container 2000 are used up, the used lifting shell assembly can be replaced with a new lifting shell assembly of a refill unit. Therefore, the connector 400 can be configured to detachably connect the lifting shell assembly to the container assembly. In one embodiment of the present invention, the stick 10 and the lifting shell 600 that houses it have a large length in the left-right direction, which allows the connector 400 to also have a large length in the left-right direction. The connector 400 mainly includes a connector base 410, a support cylinder 420, a connector engaging portion 440, an inner engaging portion 470, and a front block 480.

[0035] The connector base 410 can form the upper surface of the connector 400, and the connector base 410 can have a through-hole through which the shaft 300 can pass. The through-hole can be formed inside the inner engagement portion 470. For example, in the example shown in FIG. 2, the inner engagement portions 470 are formed on both the left and right sides of the through-hole of the connector base 410, and clearance holes 475 are formed on both the left and right sides of the inner engagement portions 470. The through-hole has a shape and size corresponding to the cross-section of the extension 310, and can be configured to allow the extension 310 to pass through. In the example shown in FIG. 2, the through-hole is formed to a size that does not allow the connector engagement portion 440 to pass through.

[0036] The support cylinder 420 may have a hollow shape with an open bottom, and the bottom may be inserted into the container body 1100. The support cylinder 420 may have a non-circular cross section because it does not need to directly contact the rotating components. An engagement protrusion 423 for coupling with the container body 1100 may be formed on the outer surface of the support cylinder 420.

[0037] The connector engaging portion 440 is located on the top of the connector 400 and can be configured to couple with the shell engaging portion 650 of the lifting shell 600. In this embodiment, the lifting shell 600 and the connector 400 also have a large length in the left-right direction to accommodate the stick 10, which has a large length in the left-right direction. Correspondingly, the connector 400 can have multiple connector engaging portions 440. The connector engaging portions 440 can be provided on both sides of the through hole through which the shaft engaging portion 350 passes, as in the example shown in FIG. 2. In some embodiments, one of the connector engaging portions 440 can be formed to surround the through hole.

[0038] The connector engaging portion 440 extends upward from the connector base 410, and the connector step jaw 450 provided at the top can protrude laterally. In the example shown in FIG. 2, the connector engaging portion 450 extends upward to form a connector engaging space inside, and the shell engaging portion 650 is inserted into the connector engaging space. The connector step jaw 450 protrudes inward from the top of the connector engaging portion 650 and hooks onto the shell step jaw 670 of the shell engaging portion 650 located below it. Of course, the connector engaging portion 440 and the shell engaging portion 650 may have different shapes, with the connector step jaw 450 protruding outward and the shell step jaw 670 protruding inward.

[0039] 2 and 3, a locking groove (not shown) may be formed in the connector jaw 450. The locking groove (not shown) may be gently curved and concave. When the lifting shell assembly is coupled to the container assembly, a locking protrusion (not shown) of a shell engaging portion 650 (described later) is inserted into the locking groove (not shown) of the connector jaw 450, enabling a stronger engagement.

[0040] The inner engagement portion 470 is formed at the bottom of the connector base 410 and serves to connect the connector 400 to the container body 1100 while also fixing the shaft 300. The inner engagement portion 470 may be formed at a position corresponding to the shaft 300, and a through hole may be formed inside the inner engagement portion 470. In the example shown in FIG. 2, clearance holes 475 are formed on both the left and right sides of the inner engagement portion 470.

[0041] The inner engagement portion 470 may have an engagement protrusion 471 formed on its outer surface in the left-right direction, and a seating step jaw 473 formed on its inner surface. The engagement protrusion 471 engages with the engagement protrusion 1162 of the container body 1100, helping to firmly engage the connector 400 with the container body 1100, and the seating step jaw 473 can support the shaft engagement portion 350 when the shaft 300 is lowered to the maximum extent.

[0042] The front block 480 may extend upward from the upper front portion of the connector 400 to hide the front sides of the connector engaging portion 440 and the shaft engaging portion 350. The front block 480 may extend along the edge of the connector base 410 and may be formed over the entire front surface of the connector 400.

[0043] A contact surface (not shown) facing rearward may be formed on a side of the front block 480, with the rear side cut along a single plane. The contact surface 460 may be formed to be inclined relative to the vertical direction and configured to come into contact with a stopper surface (not shown) of a stopper block 680 formed on the lifting shell 600. In this embodiment, the connector 400 may include a plurality of connector engaging portions 440, and the contact surface (not shown) may be formed on the front block 480 formed over the entire connector 400.

[0044] In the stick container 2000 according to one embodiment of the present invention, the container body 1100 can be coupled to the connector 400 and the screw guide 1200. In one embodiment of the present invention, since the stick material 10 has a large width, it is easier to use a structure including a separately rotating portion rather than rotating the container body itself. In this embodiment, the container body 1100 does not rotate itself, but rather exposes a dial 1300 configured to be rotated by the user. Referring to FIG. 4, the container body 1100 according to this embodiment can include a bottom 1110, an outer wall 1120, an inner wall 1130, a fixed cylinder 1140, an enlarged diameter portion 1150, and an engagement portion 1160.

[0045] The bottom 1110 can form the entire underside of the container body 1100 and the stick container 2000, and the outer wall 1120 can extend upward from the edge of the bottom 1110. The bottom 1110 and the outer wall 1120 can form part of the exterior of the container body 1100 and the stick container 2000. An engagement protrusion 1122 can be formed on the inner surface of the outer wall 1120. The engagement protrusion 1122 can mate with an engagement protrusion 423 formed on the support cylinder 420 of the connector 400.

[0046] In one embodiment of the present invention, an exposure groove 1125 may be formed in the lower part of the container body 1100. The exposure groove 1125 may be open, for example, to the front side, the rear side, or both the front and rear sides of the container body 1100, and the outer wall 1120 may have a corresponding shape. In some embodiments, the exposure groove 1125 may be omitted, and the dial 1300 may be exposed below the bottom 1110.

[0047] When the container body 1100 has the exposed groove 1125 formed therein, the container body 1100 may include an inner wall 1130 that defines the exposed groove 1125. As shown in FIG. 4 , the inner wall 1130 and a platform 1132 formed thereon may form the exposed groove 1125 in which the dial 1300 is located.

[0048] The fixed cylinder 1140 is a part that serves to fix the screw guide 1200 therein. The fixed cylinder 1140 may extend upward from the bottom 1110 or the upper surface of the platform 1132 and may have a hollow shape that is open at the top and bottom. The fixed cylinder 1140 may have a cylindrical shape except for the portion corresponding to the enlarged diameter portion 1150, as shown in FIG. 4, or may have a completely cylindrical shape even at the portion corresponding to the enlarged diameter portion 1150. An installation space 1145 into which the screw guide 1200 is inserted may be formed inside the fixed cylinder 1140. The fixed cylinder 1140 may be designed so that the height of its upper end corresponds to the lower surface of the fixing protrusion 1242 of the screw guide 1200.

[0049] The enlarged diameter portion 1150 may be formed in an arc shape having a diameter larger than that of the fixed cylinder 1140 on both sides of the fixed cylinder, and the engagement portion 1160 may further extend upward from the enlarged diameter portion 1150. An engagement protrusion 1162 may protrude outward from the upper portion of the engagement portion 1160, which may be used to engage the container body 1100 with the connector 400.

[0050] The screw guide 1200 corresponds to a part that rotates by a user's operation to raise and lower the shaft 300. Referring to Fig. 5, the screw guide 1200 according to this embodiment may include a guide base 1210, a socket cylinder 1240, a socket screw 1260, an outer ring 1280, and an inner ring 1290.

[0051] The guide base 1210 may have an annular shape and may support the remainder of the screw guide 1200 .

[0052] The socket cylinder 1240 may extend upward from the guide base 1210. The socket cylinder 1240 may have a hollow cylindrical shape, and a socket space 1205 may be formed therein into which the extension body 310 of the shaft 300 may be inserted. The outer diameter of the socket cylinder 1240 may correspond to the inner diameter of the fixed cylinder 1140. A socket screw 1260 may be provided inside the socket cylinder 1240 and may face the socket space 1205.

[0053] A fixing protrusion 1242 may protrude outward from the top of the socket cylinder 1240, and a clearance slit 1245 may also be formed in the top of the socket cylinder 1240. The clearance slit 1245 may extend from a predetermined position on the socket cylinder 1240 to the upper end of the socket cylinder 1240.

[0054] The socket screw 1260 may be formed inside the socket cylinder 1240. The socket screw 1260 may be formed spirally protruding inward from the inside of the socket cylinder 1240 to form a type of female thread. The socket screw 1260 may be configured to mesh with the shaft screw 360 of the shaft 300. As in the example shown in the figures, the shaft screw 360 may be formed over the entire extension 310 of the shaft 300, and the socket screw 260 may be formed only at predetermined positions. Conversely, the shaft screw 360 may be formed only at predetermined positions on the extension 310, and the socket screw 1260 may be formed over the entire inner circumferential surface of the socket cylinder 1240.

[0055] The outer ring 1280 and the inner ring 1290 may protrude downward from the bottom of the guide base 1210. The outer ring 1280 and the inner ring 1290 may be formed in an annular shape, with the outer ring 1280 extending along the edge of the guide base 1210 and the inner ring 1290 extending in an annular shape from the inside of the outer ring 1280 at a small distance from the outer ring 1280. The outer ring 1280 and the inner ring 1290 may be used to connect the dial 1300 to the screw guide 1200. For example, as shown in FIGS. 2 and 3 , the inner ring 1380 of the dial 1300 may be press-fit into the gap between the outer ring 1280 and the inner ring 1290.

[0056] The outer ring 1280 may have one or more locking grooves 1285 formed therein. When the dial 1300 is coupled to the screw guide 1200, locking protrusions 1322 formed on the dial 1300 may be inserted into the locking grooves 1285, and the locking protrusions 1322 may transmit a rotational force applied to the dial 1300 to the screw guide 1200.

[0057] The dial 1300 is engaged with the screw guide 1200 and is a portion that the user grips and rotates. Referring to FIG. 6, the dial 1300 can include a base 1310, a side wall 1320, and an inner ring 1380.

[0058] The base 1310 may form the lower portion of the dial 1300 and may have the overall shape of a circular plate. The sidewall 1320 may protrude upward from the base 1310 and extend along the edge of the base 1310. The sidewall 1320 of the dial 1300 corresponds to the portion that the user directly contacts when operating the stick container 2000. The sidewall 1320 may have an uneven surface to allow the user to rotate the dial 1300 more smoothly. As shown in FIG. 1 , the sidewall 1320 of the dial 1300 may be exposed to the front and rear sides of the stick container 2000 through exposure grooves 1125 of the container body 1100.

[0059] The inner circumferential surface of the side wall 1320 may be provided with one or more fixing protrusions 1322, which may protrude inward. As described above, when the dial 1300 is coupled to the screw guide 1200, the fixing protrusions 1322 may be inserted into the fixing grooves 1285. When a user rotates the dial 1300, the fixing protrusions 1322 may transmit a rotational force to the screw guide 1200.

[0060] In the example shown in the figures, a structure is depicted in which the dial 1300 is coupled to the screw guide 1200 for ease of manufacturing and to improve the aesthetic appearance, but the dial 1300 may be configured as part of the screw guide 1200. In other words, the stick container 2000 does not necessarily need to be provided with a separate dial 1300, and a part of the screw guide 1200 can be exposed to the outside of the container body 1100 and serve as the dial 1300.

[0061] 7 is a perspective view showing an example of a state in which a container body 1100, a screw guide 1200, and a dial 1300 are combined in a stick container 2000 according to one embodiment of the present invention. When a shaft 300 and a connector 400 are further combined in the configuration shown in FIG. 7, this forms a container assembly.

[0062] To assemble the container assembly, a manufacturer can first manufacture each of the shaft 300, connector 400, container body 1100, screw guide 1200, and dial 1300. Although these components have somewhat complex shapes, because all parts of each component are accessible from the top and bottom, they can be manufactured without difficulty, for example, by a molding process using upper and lower molds.

[0063] A dial 1300 can be coupled to the lower part of the screw guide 1200. With the fixing protrusion 1322 of the dial 1300 aligned with the fixing groove 1285 of the screw guide 1200, the manufacturer can press the screw guide 1200 and the dial 1300 toward each other, and the inner ring 1380 of the dial 1300 is press-fitted between the outer ring 1280 and the inner ring 1290. After that, the engagement protrusion formed on the outer peripheral surface of the guide base 1210 is inserted into the engagement groove formed in the side wall 1320 of the dial 1300, and the screw guide 1200 and the dial 1300 can be coupled together.

[0064] The connector 400 can be coupled to the top of the container body 1100. The manufacturer can press the container body 1100 and the connector 400 toward each other so that the support cylinder 420 of the connector 400 is inserted into the open top of the container body 1100, and the engagement protrusion 423 of the support cylinder 420 engages with the engagement protrusion 1122 of the outer wall 1120, and the engagement protrusion 471 of the inner engagement portion 470 engages with the engagement protrusion 1162 of the engagement portion 1160, thereby firmly coupling the container body 1100 and the connector 400.

[0065] In particular, when the engaging protrusion 1162 of the engaging portion 1160 encounters the engaging protrusion 471 of the inner engaging portion 470 as the connector 400 moves upward, the engaging portion 1160 expands outward due to elastic deformation, and the inner engaging portion 470 contracts inward due to elastic deformation. During this process, the upper inclined surface of the engaging protrusion 1162 rises along the lower inclined surface of the engaging protrusion 471, and when the engaging protrusion 1162 passes over the engaging protrusion 471, the lower surface of the engaging protrusion 1162 catches on the upper surface of the engaging protrusion 471.

[0066] The screw guide 1200 can be coupled to the lower part of the container body 1100. The manufacturer can move the socket cylinder 1240 upward at the exposed groove 1125 of the screw guide 1200 and insert it into the mounting space 1145. The outer diameter of the socket cylinder 1240 corresponds to the inner diameter of the fixed cylinder 1140, but the socket cylinder 1240 has a fixing protrusion 1242 that protrudes outward on its upper outer circumferential surface. However, the socket cylinder 1240 has an allowance slit 1245, so the socket cylinder 1240 can be inserted inside the fixed cylinder 1140.

[0067] When the manufacturer inserts the socket cylinder 1240 into the fixed cylinder 1140, the socket cylinder 1240 undergoes elastic deformation, contracting the allowance slit 1245 and narrowing its width, allowing it to enter the mounting space 1145. When the screw guide 1200 moves to the end, the fixing protrusion 1242 of the socket cylinder 1240 reaches the upper end of the fixed cylinder 1140, and the socket cylinder 1240 elastically returns to its original state, with the lower surface of the fixing protrusion 1242 hooking onto the upper end of the fixed cylinder 1140. In this state, the upper end of the dial 1300 is positioned below the platform 1132.

[0068] Meanwhile, when the screw guide 1200 is completely coupled to the container body 1100, the upper end of the socket cylinder 1240 supports the inner engaging portion 470 from the inside, preventing the inner engaging portion 470 from easily deforming inward. Therefore, after the screw guide 1200 is coupled to the container body 1100, the connector 400 coupled to the container body 1100 is not easily separated.

[0069] With the connector 400, container body 1100, screw guide 1200, and dial 1300 connected to one another in this manner, the manufacturer can connect the shaft 300 to the screw guide 1200. This is done by inserting the extension 310 of the shaft 300 into the socket space 1205 of the socket cylinder 1240 through the through-hole. After the shaft screw 360 of the shaft 300 is engaged with the socket screw 1260 of the socket cylinder 1240, the manufacturer can rotate the shaft 300. Since the shaft 300 cannot rotate relative to the connector 400 and container body 1100, the shaft 300 can gradually descend as the screw guide 1200 and dial 1300 rotate.

[0070] The lifting shell assembly of the stick container 2000 stores contents such as sunscreen, deodorant, etc. in the form of a stick material 10, and allows the user to adjust the extent to which the stick material is exposed by raising or lowering the stick material 10 in response to operation. In one embodiment of the present invention, the lifting shell assembly can constitute a refill unit, and when the contents of one stick container 2000 are used up, the lifting shell assembly with the used up contents can be replaced with another refill unit. Therefore, the lifting shell assembly can be configured to be detachably coupled to the connector 400 of the container assembly. The lifting shell assembly can mainly include a lifting shell 600 and a holder 700.

[0071] The lift-up shell 600 extends a predetermined length in the left-right direction and a predetermined length in the up-down direction, is hollow, and defines a shell space therein. The shell space can accommodate the holder 700 and contents in the form of stick materials 10 attached thereto. When using the stick container 2000 according to one embodiment of the present invention, a user can hold the lift-up shell 600 and / or the container body 1100 with one hand and the dial 1300 with the other hand, rotating them relative to each other. The lift-up shell 600 can include a shell body 610, a shell engagement portion 650, and a stopper block 680.

[0072] The shell body 610 may have a hollow columnar shape as a main part of the lifting shell 600. The shell body 610 may extend a predetermined length in the left-right and up-down directions and may have a shape that accommodates and surrounds the holder 700 and the stick 10 housed in the shell space inside. The top of the shell body 610 may be open, and the bottom may have a lower surface 620 that defines the bottom of the shell space, and the bottom surface 620 of the shell body 610 may have an insertion hole 630 and an alignment hole 640 formed therein.

[0073] The holder engaging portion 740 of the holder 700 can be inserted into the insertion hole 630 formed on the lower surface 620 of the shell body 610. That is, the insertion hole 630 can provide a passage for the holder engaging portion 740 to be coupled with the shaft engaging portion 350. Meanwhile, the first alignment protrusion 770 provided on the holder 700 can also be inserted into the insertion hole 630. That is, when the holder 700 is at the lowest position in the shell space, the first alignment protrusion 770 can be inserted into the insertion hole 630.

[0074] A second alignment protrusion 780 provided on the holder 700 can be inserted into the alignment hole 640 formed on the lower surface 620 of the shell body 610. That is, when the holder 700 is at the lowest position within the shell space, the second alignment protrusion 780 can be inserted into the alignment hole 640.

[0075] The shell engaging portion 650 is provided on the underside 620 of the shell body 610 and can be configured to couple with the connector engaging portion 440 of the connector 400. In this embodiment, the lifting shell 600 and the connector 400 also have a large length in the left-right direction to accommodate a stick 10 that has a large length in the left-right direction, and the lifting shell 600 can have a plurality of shell engaging portions 650 corresponding to this. The shell engaging portions 650 can be provided on both sides of the insertion hole 630 through which the holder engaging portion 740 passes, as in the example shown in FIG. 2. In some embodiments, one of the shell engaging portions 650 can be formed to surround the insertion hole 630.

[0076] The shell engaging portion 650 extends downward from the lower surface 620 of the shell body 610, and the shell step jaw 670 provided at the bottom can protrude laterally. In the example shown in FIG. 2, the shell engaging portion 650 extends downward and is formed to surround the area including the alignment hole 640. The shell step jaw 670 protrudes outward from the bottom of the shell engaging portion 650 and hooks onto the connector step jaw 450 of the connector engaging portion 440 located above it. Of course, the connector engaging portion 440 and the shell engaging portion 650 may have different shapes, with the connector step jaw 450 protruding outward and the shell step jaw 670 protruding inward. Although not shown in FIGS. 2 and 3, a locking protrusion (not shown) may be formed on the outer circumferential surface of the shell engaging portion 650. The locking protrusion (not shown) may be gently curved and protrude outward in a convex shape. When the lifting shell assembly is coupled to the container assembly, the locking protrusion (not shown) of the shell engaging portion 650 is inserted into the locking groove (not shown) of the connector step portion 450, enabling a stronger engagement. The locking protrusion (not shown) can be formed at a position corresponding to the locking groove (not shown), and can be formed at a position on a plane that cuts the shell body 610 in half.

[0077] The stopper block 680 may extend downward from the rear lower portion of the shell body 610 to hide the rear sides of the shell engaging portion 650 and the holder engaging portion 740. The stopper block 680 may extend along the edge of the lower surface 620 of the shell body 610 and may be formed across the entire rear side of the shell body 610. A stopper surface 690 facing the front side may be formed on the side of the stopper block 680. The stopper surface 690 of the stopper block 680 may have the same inclination as the contact surface 460 of the front block 480. When the lifting shell assembly is coupled to the container assembly, the stopper surface 690 may abut against the contact surface 460, forming an integrated shape between the stopper block 680 and the front block 480.

[0078] The holder 700 can be arranged to be movable vertically in the shell space within the lifting shell 600, and can be configured to support the stick 10 on its upper portion. A portion of the holder 700 is exposed through the insertion hole 630 of the lifting shell 600, and can be configured to be coupled to the upper end of the shaft 300 when the lifting shell assembly is coupled to the container assembly. The holder 700 can include a holder body 720, an outer side wall 730, a holder engaging portion 740, a first alignment protrusion 770, and a second alignment protrusion 780.

[0079] The holder body 720 may correspond to the main part of the holder 700 and may be disposed in the shell space inside the shell body 610. When the lifting shell assembly is filled with contents, the holder body 720 may be seated on the lower surface 620 of the shell body 610.

[0080] The holder body 720 may be formed with a recessed center, which is recessed in both the front-rear direction and the left-right direction, thereby providing high structural strength.

[0081] The outer sidewall 730 extends downward from the edge of the holder body 720 to maintain a stable position of the holder 700 within the shell space and to prevent contents or other foreign objects from flowing under the holder 700.

[0082] The holder engaging portion 740 is located at a position corresponding to the insertion hole 630 and can be configured to couple with the shaft engaging portion 350 of the shaft 300. The holder engaging portion 740 extends downward from the lower surface of the holder body 720, and a holder step jaw 760 provided at the lower portion can protrude laterally. In the example shown in FIG. 2, the holder engaging portion 740 extends downward, and the holder step jaw 760 protrudes outward from the lower portion of the holder engaging portion 740 and hooks onto the shaft step jaw 390 of the shaft engaging portion 350 located above it. Of course, the holder step jaw 760 of the holder engaging portion 740 may protrude inward, and the shaft step jaw 390 of the shaft engaging portion 350 may protrude outward.

[0083] The first alignment protrusion 770 and the second alignment protrusion 780 may be formed on the underside of the holder body 720 and serve to fix the holder 700 in an aligned position when the holder 700 is at its lowest position within the shell space.

[0084] The first alignment protrusions 770 may protrude downward from a position on the lower surface of the holder body 720 corresponding to the edge of the insertion hole 630. The holder engagement portions 740 may be located inside the first alignment protrusions 770, and the first alignment protrusions 770 may be formed around the holder engagement portions 740. That is, the holder engagement portions 740 may be formed at a position corresponding to the center of the insertion hole 630, and the first alignment protrusions 770 may be formed at a position corresponding to the edge of the insertion hole 630. Therefore, when the holder 700 is at its lowest position in the shell space, the first alignment protrusions 770 may be inserted into the insertion hole 630. Meanwhile, the second alignment protrusions 780 may protrude downward from a position on the lower surface of the holder body 720 corresponding to the alignment hole 640. When the holder 700 is at its lowest position in the shell space, the second alignment protrusions 780 may be inserted into the alignment hole 640.

[0085] The first alignment protrusion 770 and the second alignment protrusion 780 can serve to secure the holder 700 and the stick material 10 thereon in situations such as when the lifting shell assembly is separated into a refill unit form before being coupled to the container assembly.

[0086] The cap assembly of the stick container 2000 covers the exposed portion of the lifting shell assembly and allows the sticks 10 to be stored in a sealed space. The cap assembly may mainly include an inner cap 910 and an overcap 920.

[0087] The inner cap 910 can be coupled to an upper portion within the overcap 920, and can seal the open upper portion of the shell body 610 when the cap assembly is coupled to the container assembly. A sealing rim 912 extending downward along the edge of the inner cap 910 can be formed at the lower portion of the inner cap 910, and a sealing protrusion 914 protruding outward can be formed at the lower portion of the sealing rim 912. The sealing rim 912 and the sealing protrusion 914 can contact the inner surface of the shell body 610 to airtightly seal the shell space.

[0088] The overcap 920 may be embodied in the form of a cap that opens downward and is configured to surround the container assembly. An engagement groove may be formed on the inner circumferential surface of the overcap 920. When the cap assembly is coupled to the container assembly, a portion of the inner cap 910 may be inserted inside the shell body 610, and the lower end of the overcap 920 may be seated on the upper end of the container body 1100. The engagement protrusion of the connector 400 may be inserted into the engagement groove of the overcap 920, thereby detachably fixing the cap assembly to the container assembly.

[0089] When the stick material 10 is used up in the stick container 2000 of one embodiment of the present invention and the lifting shell assembly of the refill unit 1050 is coupled to the container assembly, the user can separate the cap assembly, separate the lifting shell assembly whose contents have been used up, and then couple a new lifting shell assembly of the refill unit to the existing container assembly.

[0090] To do this, the user can move the holder 700 to the lowest position to position the shaft engagement portion 350 below the lower surface 620 of the shell body 610, and then pull the lifting shell 600 and the holder 700 back to separate them.

[0091] The user then moves the lifting shell assembly of the new refill unit forward so that the shell step jaw 670 engages with the connector step jaw 450, the shell engagement portion 650 is coupled to the connector engagement portion 440, the holder step jaw 760 engages with the shaft step jaw 390, and the holder engagement portion 740 is coupled to the shaft engagement portion 350. While the refill unit is moving forward, the locking protrusion (not shown) may become caught in the locking groove (not shown) of the connector step jaw 450. If the user applies more force, the locking protrusion (not shown) and the connector step jaw 450 will undergo some elastic deformation, allowing the locking protrusion (not shown) to pass through and be inserted into the locking groove (not shown) formed in the connector step jaw 450, overcoming the caught portion. When the refill unit reaches its home position, the stopper surface 690 of the stopper block 680 can come into close contact with the contact surface 460 of the front block 480.

[0092] As described above, the stick container 2000 and refill unit according to one embodiment of the present invention enable the refilling of stick materials 10 having a large horizontal length, such as sunscreen or deodorant. Although the stick container 2000 according to one embodiment of the present invention requires a relatively complex structure, it is composed of parts that are easy to assemble, allowing the product to be assembled with very simple movements and maintaining high joint strength after assembly. The easy refilling allows parts of the stick container with complex structures to be reused, thereby reducing costs for consumers and manufacturers, significantly reducing resource waste, and reducing environmental pollution.

[0093] Although the above has been described with reference to one embodiment of the present invention, it will be understood by those skilled in the art that the present invention can be modified and changed in various ways without departing from the spirit and scope of the present invention as set forth in the claims below.

Claims

1. a refill unit configured to move forward to couple with the container assembly, a lifting shell that extends a predetermined length in the left-right direction and a predetermined length in the up-down direction and defines an upwardly open shell space therein; a holder disposed inside the shell space so as to be movable along the up-down direction, The lifting shell is a shell body that defines the shell space therein and has an insertion hole formed on the lower surface; a shell engaging portion extending downward from the lower surface of the shell body and having a shell step jaw protruding laterally at its lower portion; The holder is a holder body disposed inside the shell space; a holder engaging portion extending downward from the lower surface of the holder body at a position corresponding to the center of the insertion hole and having a holder step jaw protruding laterally at its lower portion, When the holder is at the lowest position in the shell space, the holder engagement portion is exposed below the lower surface of the shell body through the insertion hole, When the refill unit moves forward toward the container assembly with the holder at its lowest position within the shell space, the shell engagement portion engages with the connector of the container assembly and the holder engagement portion engages with the shaft of the container assembly.

2. 2. The refill unit according to claim 1, wherein a first alignment protrusion extending downward is formed on the underside of the holder body, the first alignment protrusion having the holder engagement portion positioned therein at a position corresponding to the edge of the insertion hole, and the first alignment protrusion is inserted into the insertion hole when the holder is at its lowest position within the shell space.

3. An alignment hole is formed in the lower surface of the shell body, and the shell engaging portion is formed in a shape surrounding the alignment hole, 2. The refill unit of claim 1, wherein a second alignment protrusion extending downward is formed on the lower surface of the holder body, and when the holder is at its lowest position within the shell space, the second alignment protrusion is inserted into the alignment hole.

4. The lifting shell is 2. The refill unit according to claim 1, further comprising a stopper block extending downward from a lower rear side of the shell body to conceal the rear side of the shell engaging portion, the stopper block having a stopper surface facing forward on a side thereof.

5. 2. The refill unit according to claim 1, wherein the shell step jaw protrudes outward from a lower portion of the shell engaging portion, and at least one of a locking projection and a locking groove is formed on the outer peripheral surface of the shell engaging portion.

6. The shell engaging portion extends downward to form a shell engaging space inside the shell engaging portion, and the shell step jaw protrudes outward from a lower portion of the shell engaging portion, The refill unit according to claim 3 , wherein an upper portion of the shell engagement space is open to form the alignment hole, and a front side of the shell engagement space is open.

7. 7. The refill unit according to claim 6, wherein at least one of a locking projection and a locking groove is formed on an inner peripheral surface of said shell engaging portion.

8. A refillable stick container configured to have a forward moving refill unit coupled to its top, a connector having a connector engaging portion configured to couple to the lifting shell of the refill unit, the connector having a through hole formed in an upper surface thereof; a screw guide configured to be rotatable relative to the connector and including a socket cylinder, the socket cylinder forming a socket space therein and having a socket screw formed on an inner circumferential surface thereof; a shaft including a shaft engaging portion positioned above the through hole and an extension body positioned at least partially within the socket space, the shaft engaging portion configured to couple to a holder of the refill unit, and a shaft having a shaft screw formed on a surface of the extension body configured to mate with the socket screw; The connector engaging portion extends upward from the upper surface of the connector and has a connector step jaw protruding laterally at its upper portion, and the shaft engaging portion extends upward from the upper portion of the extension body and has a shaft step jaw protruding laterally at its upper portion, When the refill unit moves forward toward the connector, the connector engaging portion is coupled to the lifting shell and the shaft engaging portion is coupled to the holder.

9. a container body coupled to the connector and the screw guide; 9. The refillable stick container of claim 8, wherein the container body is fixed relative to the connector, and the screw guide is coupled to the container body for rotation relative to the container body.

10. The shaft engaging portion extends upward to form a shaft engaging space inside the shaft engaging portion, and the shaft step jaw protrudes inward from an upper portion of the shaft engaging portion, 9. The refillable stick container according to claim 8, wherein the shaft engagement portion is open at the rear side, and the shaft engagement space is open at the top and rear sides.

11. The connector comprises:

11. The refillable stick container of claim 8, further comprising a front block extending upward from a top of the front side of the connector to conceal the front sides of the connector engaging portion and the shaft engaging portion.

12. The front block has a contact surface formed on its side facing rearward, the refill unit includes a stopper block having a stopper surface facing forward; 12. A refillable stick container according to claim 11, wherein the stopper surface is in intimate contact with the contact surface when the refill unit is coupled.

13. A refillable stick container, a lifting shell that extends a predetermined length in the left-right direction and a predetermined length in the up-down direction and defines an upwardly open shell space therein; a holder arranged in the shell space so as to be movable in the vertical direction; a connector having a connector engaging portion configured to couple with the lifting shell, the connector having a through hole formed on an upper surface thereof; a screw guide configured to be rotatable relative to the connector and including a socket cylinder, the socket cylinder forming a socket space therein and having a socket screw formed on an inner circumferential surface thereof; a shaft including a shaft engaging portion positioned above the through hole and an extension body at least a portion of which is positioned within the socket space, the shaft engaging portion being configured to be coupled to the holder, and a shaft having a shaft screw formed on a surface of the extension body configured to mesh with the socket screw; The lifting shell is a shell body that defines the shell space therein and has an insertion hole formed on the lower surface; a shell engaging portion extending downward from the lower surface of the shell body and having a shell step jaw protruding laterally at its lower portion; The holder is a holder body disposed inside the shell space; a holder engaging portion extending downward from the lower surface of the holder body at a position corresponding to the center of the insertion hole and having a holder step jaw protruding laterally at its lower portion, The connector engaging portion extends upward from the upper surface of the connector and has a connector step jaw protruding laterally at its upper portion, and the shaft engaging portion extends upward from the upper portion of the extension body and has a shaft step jaw protruding laterally at its upper portion, When the holder is at the lowest position in the shell space, the holder engagement portion is exposed below the lower surface of the shell body through the insertion hole, When the holder is at its lowest position within the shell space and the lifting shell moves forward toward the connector, the shell step jaw engages with the connector step jaw, the shell engagement portion is connected to the connector engagement portion, the holder step jaw engages with the shaft step jaw, and the holder engagement portion is connected to the shaft engagement portion. A refillable stick container.

Citation Information

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