Package and buffer tool
11447323 · 2022-09-20
Assignee
Inventors
Cpc classification
B65D2581/053
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D81/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A package includes a storage portion that stores an object to be stored, and a buffer portion that reduces a gap generated between the object to be stored and the storage portion. The storage portion includes a bottom and a lid facing the bottom, and the buffer portion includes a base facing the object to be stored in a stacking direction from the bottom toward the lid, a first fold, and a space adjusting portion connected to the base at the first fold. The space adjusting portion includes an adjusting region extending in the stacking direction, a plurality of second folds distributed in a first direction intersecting the first fold, and a contact region connected to the adjusting region at one of the plurality of second folds.
Claims
1. A package comprising: a storage portion configured to store an object; and a buffer portion configured to (1) be received in the storage portion and (2) reduce a gap between the object and an internal surface of the storage portion in a stacking direction of the buffer portion and the object when the buffer portion and the object are in the storage portion and the storage portion is in a closed state; wherein the storage portion includes a bottom and a lid facing the bottom, the buffer portion includes a base configured to face the object in the storage portion, a first fold adjacent an edge of the base, and a space adjusting portion connected to the base by the first fold, the first fold is configured such that the buffer portion is bendable between the base and the space adjusting portion at the first fold, the space adjusting portion includes a plurality of second folds distributed in a first direction intersecting the first fold, the plurality of second folds being spaced in the first direction between the first fold and a free end edge of the space adjusting portion opposite the first fold, the plurality of second folds are configured such that the space adjusting portion can be variably divided into an adjusting region, to adjust a height of the buffer portion in the stacking direction, and a contact region by bending the space adjusting portion at each of the plurality of second folds, the each of the plurality of second folds defining a boundary between the contact region and the adjusting region, the adjusting region has a first edge at the first fold and a variable second edge at the each of the plurality of second folds, the contact region includes the free end edge of the space adjusting portion, the storage portion and the buffer portion are configured such that a lowermost surface of the buffer portion in the stacking direction and the bottom define a space to store the object when the buffer portion and the object are in the storage portion and the storage portion is in the closed state, and the buffer portion is configured such that, when (1) the object and the buffer portion are stacked on the bottom to be stored in the storage portion, (2) the buffer portion is bent between the base and the space adjusting portion at the first fold, and (3) the each of the plurality of second folds defines the boundary between the contact region and the adjusting region, a sum of a height of the adjusting region and a height of the object in the stacking direction is approximately equal to a height from the bottom to the lid in the stacking direction.
2. The package according to claim 1, wherein the buffer portion is configured such that the base includes a lower surface facing the object when the buffer portion and the object are stored in the storage portion, the buffer portion includes a first surface including the lower surface, and the first fold is on the first surface.
3. The package according to claim 2, wherein the plurality of second folds are on the first surface.
4. The package according to claim 2, wherein the base further includes an upper surface opposite to the lower surface and a through-hole penetrating through the base from the upper surface to the lower surface.
5. The package according to claim 1, wherein the space adjusting portion includes an end portion defining an end of the buffer portion in the first direction, the buffer portion includes a first interval between the first fold and a second fold of the plurality of second folds adjacent to the first fold in the first direction, a second interval between the plurality of second folds adjacent to each other in the first direction, and a third interval between a second fold of the plurality of second folds that is farthest away from the first fold among the plurality of second folds and the free end edge of the space adjusting portion in the first direction, and a minimum value of the third interval is larger than a maximum value of either of the first interval and the second interval.
6. The package according to claim 1, wherein the buffer portion is made of a corrugated cardboard, and at least one of the first fold and the plurality of second folds intersects a grain direction of the corrugated cardboard.
7. The package according to claim 1, wherein the buffer portion is configured such that the space adjusting portion is to be bent at only one of the plurality of second folds when the buffer portion and the object are stored in the storage portion.
8. The package according to claim 1, wherein the contact region is not directly coupled to the base.
9. The package according to claim 1, wherein the buffer portion is configured such that lengths of the adjusting region and the contact region in the first direction are variable depending at which one of the plurality of second folds the space adjusting portion is bent.
10. A package comprising: a storage portion configured to store an object; and a buffer portion configured to (1) be received in the storage portion and (2) reduce a gap between the object and an internal surface of the storage portion in a stacking direction of the buffer portion and the object when the buffer portion and the object are in the storage portion and the storage portion is in a closed state; wherein the storage portion includes a bottom and a lid facing the bottom, the buffer portion includes a base configured to face the object in the storage portion, a first fold adjacent an edge of the base, and a space adjusting portion connected to the base by the first fold, the first fold is configured such that the buffer portion is bendable between the base and the space adjusting portion at the first fold, the space adjusting portion includes a plurality of second folds distributed in a first direction intersecting the first fold, the plurality of second folds being spaced in the first direction between the first fold and a free end edge of the space adjusting portion opposite the first fold, the plurality of second folds are configured such that the space adjusting portion can be variably divided into an adjusting region, to adjust a height of the buffer portion in the stacking direction, and a contact region by bending the space adjusting portion at each of the plurality of second folds, the each of the plurality of second folds defining a boundary between the contact region and the adjusting region, the adjusting region has a first edge at the first fold and a variable second edge at the each of the plurality of second folds, the contact region includes the free end edge of the space adjusting portion, the storage portion and the buffer portion are configured such that a lowermost surface of the buffer portion in the stacking direction and the bottom define a space to store the object when the buffer portion and the object are in the storage portion and the storage portion is in the closed state, the buffer portion is configured such that the lowermost surface faces the object when the buffer portion and the object are stored in the storage portion, the buffer portion includes a first surface including the lowermost surface, and the first fold is on the first surface, and the base includes an upper surface opposite to the lowermost surface and a through-hole penetrating through the base from the upper surface to the lowermost surface.
11. The package according to claim 10, wherein the plurality of second folds are on the first surface.
12. The package according to claim 10, wherein the space adjusting portion includes an end portion defining an end of the buffer portion in the first direction, the buffer portion includes a first interval between the first fold and a second fold of the plurality of second folds adjacent to the first fold in the first direction, a second interval between the plurality of second folds adjacent to each other in the first direction, and a third interval between a second fold of the plurality of second folds that is farthest away from the first fold among the plurality of second folds and the free end edge of the space adjusting portion in the first direction, and a minimum value of the third interval is larger than a maximum value of either of the first interval and the second interval.
13. The package according to claim 10, wherein the buffer portion is made of a corrugated cardboard, and at least one of the first fold and the plurality of second folds intersects a grain direction of the corrugated cardboard.
14. The package according to claim 10, wherein the buffer portion is configured such that the space adjusting portion is to be bent at only one of the plurality of second folds when the buffer portion and the object are stored in the storage portion.
15. The package according to claim 10, wherein the contact region is not directly coupled to the base.
16. The package according to claim 10, wherein the buffer portion is configured such that lengths of the adjusting region and the contact region in the first direction are variable depending at which one of the plurality of second folds the space adjusting portion is bent.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF EMBODIMENTS
(6) Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the following description, the same elements or elements having the same functions are denoted with the same reference numerals and overlapped explanation is omitted.
(7) A configuration of a package 1 according to an embodiment will be described with reference to
(8) As illustrated in
(9) The storage tool 10 includes a bottom 11, a side 12, a flap 13, and the lid 14. The storage tool 10 has, for example, a quadrilateral shape as viewed from a stacking direction Lx1 from the bottom 11 toward the lid 14. The bottom 11 is connected to the side 12. The side 12 includes, for example, four boards. In the present embodiment, the side 12 includes a first side board 12a, a second side board 12b, a third side board 12c, and a fourth side board 12d. The first side board 12a faces, for example, the third side board 12c. The second side board 12b faces, for example, the fourth side board 12d. A lower end of the first side board 12a, a lower end of the second side board 12b, a lower end of the third side board 12c, and a lower end of the fourth side board 12d are connected to the bottom 11. The first side board 12a is approximately orthogonal to, for example, the second side board 12b and the fourth side board 12d. The third side board 12c is approximately orthogonal to, for example, the second side board 12b and the fourth side board 12d.
(10) The flap 13 includes, for example, a first flap 13a and a second flap 13b. The first flap 13a and the second flap 13b are connected to, for example, an upper end of the second side board 12b and an upper end of the fourth side board 12d, respectively.
(11) The storage tool 10 includes an opening AP1 at an upper end of the side 12. The opening AP1 has, for example, a quadrilateral shape as viewed from the stacking direction Lx1. In the storage tool 10, the lid 14 includes, for example, a top board 14a and an insert 14b. The top board 14a is provided to face the bottom 11. The top board 14a is connected to, for example, an upper end of the third side board 12c. The insert 14b is connected to, for example, the top board 14a on an opposite side of the upper end of the third side board 12c. For example, when the top board 14a comes into contact with an upper end of the side 12 and the insert 14b comes into contact with an inner surface of the first side board 12a, the lid 14 reliably closes the opening AN. The storage tool 10 is made of, for example, a paper or plastic corrugated cardboard (material having a thickness structurally) or a paper or plastic board.
(12) As illustrated in
(13)
(14) As illustrated in
(15) In a state where the buffer tool 20 is stored with the object 30, in the storage tool 10, the base 21 faces the upper surface 30a of the object 30 (refer to
(16) The space adjusting portion 22 includes an end portion 22e opposite to the base 21. The space adjusting portion 22 includes an adjusting region 23, a plurality of second folds F2, and a contact region 24. The adjusting region 23 extends in the stacking direction Lx1 in the storage tool 10. The plurality of second folds F2 are distributed in the first direction Ax1 intersecting the first fold F1. The contact region 24 is connected to the adjusting region 23. One of the plurality of second folds F2 defines a boundary between the contact region 24 and the adjusting region 23. One of the plurality of second folds F2 is provided to bend the space adjusting portion 22 between the contact region 24 and the adjusting region 23. The base 21, the adjusting region 23, and the contact region 24 are aligned in order in the first direction Ax1.
(17)
(18)
(19) The contact region 24 includes, for example, a contact surface 24a that comes into contact with the object 30. The contact surface 24a is positioned in the second surface 20b of the buffer tool 20. The contact surface 24a comes into contact with the upper surface 30a of the object 30 (refer to
(20) As illustrated in
(21) The buffer tool 20 includes, for example, four folds as the plurality of second folds F2. In the present embodiment, the buffer tool 20 includes a second fold F2a, the second fold F2b, a second fold F2c, and a second fold F2d in order. For example, the second fold F2a is closest to the first fold F1 as compared with the other second folds. The second fold F2d is farthest from the first fold F1 as compared with the other second folds. The second fold F2d is provided in a closest position to the end portion 22e of the space adjusting portion 22.
(22) In the present embodiment, three second intervals W2 are included in the four second folds F2. The three second intervals W2 consists of a second interval W2a, a second interval W2b, and a second interval W2c. The plurality of second folds are distributed at approximately equal intervals on the first surface 20a. For example, the second interval W2a is approximately equal to the second interval W2b and the second interval W2c. At least one of the second interval W2a, the second interval W2b, and the second interval W2c is approximately equal to the first interval W1. The first fold F1 and the folds of the plurality of second folds F2 may be distributed at approximately equal intervals. The second interval W2a, the second interval W2b, and the second interval W2c may differ from each other. All of the second interval W2a, the second interval W2b, and the second interval W2c may differ from the first interval W1.
(23) The buffer tool 20 has a third interval W3 between the second fold F2d that is farthest away from the first fold F1 among the plurality of second folds F2 and the end portion 22e of the space adjusting portion 22 in the first direction Ax1. The minimum value of the third interval W3 is larger than, for example, the maximum value of either of the first interval W1 and the second interval W2.
(24)
(25) The buffer tool 20 is made of, for example, a paper or plastic corrugated cardboard (material having a thickness structurally) or a paper or plastic board. When the buffer tool 20 is made of a corrugated cardboard, the first fold F1 and the second fold F2 intersect a grain direction Bx1 of the corrugated cardboard. In the present embodiment, the grain direction Bx1 coincides with the first direction Ax1.
(26) As described above, the buffer tool 20 is provided to reduce the gap SP1 generated between the object 30 and the storage tool 10 in the stacking direction Lx1. That is, the buffer tool 20 is arranged to reduce a gap SP1 generated between the object 30 and the storage tool 10. The buffer tool 20 includes the base 21, the first fold F1, and the space adjusting portion 22. The base 21 of the buffer tool 20 faces the object 30 in the stacking direction Lx1 from the bottom 11 toward the lid 14. That is, the base 21 is arranged to face the object 30. The first fold F1 of the buffer tool 20 is provided to bend the buffer tool 20 between the space adjusting portion 22 and the base 21. The space adjusting portion 22 of the buffer tool 20 is connected to the base at the first fold F1.
(27) The space adjusting portion 22 includes the adjusting region 23, the plurality of second folds F2, and the contact region 24 that is connected to the adjusting region 23 at one of the plurality of second folds F2 of the buffer tool 20. The adjusting region 23 of the buffer tool 20 extends in the stacking direction Lx1 in the storage tool 10. That is, the adjusting region 23 is arranged to extend in the stacking direction Lx1. The plurality of second folds F2 of the buffer tool 20 are distributed in the first direction Ax1. The plurality of second folds F2 are provided to bend the space adjusting portion 22 at each of the plurality of second folds F2, one of the plurality of second folds F2 defining a boundary between the contact region 24 and the adjusting region 23. The base 21, the adjusting region 23, and the contact region 24 are aligned in order.
(28) The object 30 includes a plurality of components 32. As illustrated in
(29) The object 30 forms an aggregate of a plurality of components 32. The object 30 as an aggregate is formed of, for example, three components 32. The object 30 may form an aggregate of two or four components 32.
(30) The plurality of components 32 have, for example, heights H32 that are approximately equal to each other. When each of the components 32 has the height H32, all of the first interval W1, the second interval W2a, the second interval W2b, and the second interval W2c formed by the folds are approximately equal to the height H32 of each of the components 32. When the storage tool 10 has a height H10 from the bottom 11 to the lid 14 in the stacking direction Lx1, the maximum number of the components 32 storable in the storage tool 10 is a value obtained by dividing the height H10 of the storage tool 10 by the height H32 of the component 32. The stacking direction Lx1 is defined by, for example, a direction where the one or more components 32 are stacked on the bottom 11. The stacking direction Lx1 coincides with, for example, the direction where the one or more components 32 are stacked on the bottom 11. In the following description, the maximum number of the components 32 storable in the storage tool 10 is assumed to be “n.”
(31) When the number of the components 32 stored in the storage tool 10 is “n,” in the storage tool 10, the gap SP1 to be filled is not generated between the object 30 and the storage tool 10. When the number of the components 32 stored in the storage tool 10 is “n−1,” the gap SP1 corresponding to the height H32 of one component 32 is generated between the upper surface 30a of the object 30 and the lid 14 in the stacking direction Lx1 in the storage tool 10. When the number of the components 32 stored in the storage tool 10 is “n−1,” the gap SP1 corresponding to the height H32 of one component 32 is filled with the buffer tool 20.
(32) When the number of the components 32 stored in the storage tool 10 is “n-2,” the gap SP1 corresponding to a height of two components 32, namely, a value that is two times the height H32 is generated between the upper surface 30a of the object 30 and the lid 14 in the stacking direction Lx1 in the storage tool 10. When the number of the components 32 stored in the storage tool 10 is “n-2,” the buffer tool 20 fills the gap SP1 corresponding to the height of two components 32, namely, the value that is two times the height H32. Hereinafter, the gap SP1 to be filled with the buffer tool 20 will be described in specific examples.
(33)
(34) Next, an example where the number of the components 32 stored is four in the storage tool 10 capable of storing up to five components 32 will be described. In this example, the buffer tool 20 fills the gap SP1 corresponding to the height H32 of one component 32. In the buffer tool 20, the space adjusting portion 22 is bent between the contact region 24 and the adjusting region 23 at the second fold F2a of the four second folds F2. The second fold F2a defines the boundary between the contact region 24 and the adjusting region 23. A space between the first fold F1 and the second fold F2a corresponds to the height of one component 32. The contact region 24 includes three second folds F2 that are included only in the contact region 24. The three second folds F2 consist of the second fold F2b, the second fold F2c, and the second fold F2d.
(35) Next, an example where the number of the components 32 stored is two in the storage tool 10 capable of storing up to five components 32 will be described. In this example, the buffer tool 20 fills the gap SP1 of a size corresponding to a height of three components 32, namely, a value that is three times the height H32. In the buffer tool 20, the space adjusting portion 22 is bent between the contact region 24 and the adjusting region 23 at the second fold F2c of the four second folds F2. The second fold F2c defines the boundary between the contact region 24 and the adjusting region 23. A space between the first fold F1 and the second fold F2c corresponds to the height of three components 32. The contact region 24 includes one second fold F2 that is included only in the contact region 24. The one second fold F2 is the second fold F2d.
(36) Next, an example where the number of the components 32 stored is one in the storage tool 10 capable of storing up to five components 32 will be described. In this example, the buffer tool 20 fills the gap SP1 of a size corresponding to a height of four components 32, namely, a value that is four times the height H32. In the buffer tool 20, the space adjusting portion 22 is bent between the contact region 24 and the adjusting region 23 at the second fold F2d of the four second folds F2. The second fold F2d defines the boundary between the contact region 24 and the adjusting region 23. A space between the first fold F1 and the second fold F2d corresponds to the height of four components 32. The contact region 24 does not include the second fold F2 that is included only in the contact region 24.
(37) As apparent from the description using the example where the maximum number of the components 32 storable in the storage tool 10 is five, when the number of the plurality of second folds F2 is four, the buffer tool 20 fills the gap SP1 generated between the object 30 and the storage tool 10 in all the cases where the number of the components 32 stored in the storage tool 10 is one to four. When the maximum number of the components 32 storable in the storage tool 10 is “n,” the buffer tool 20, which includes the second folds F2 having “n−1” folds, fills the gap SP1 generated between the object 30 and the storage tool 10 in all the cases where the number of the components 32 stored in the storage tool 10 is one to “n−1.”
(38) In the example where the number of the components 32 stored is five in the storage tool 10 capable of storing up to five components 32, the buffer tool 20 is only bent between the base 21 and the space adjusting portion 22 at the first fold F1. In the space adjusting portion 22, the boundary between the contact region 24 and the adjusting region 23 is not required to be defined. The contact region 24 includes all the four second folds F2 that are included in the space adjusting portion 22. The buffer tool 20 having the four second folds may be stored in the storage tool 10.
(39) In the present embodiment, for example, the object 30 and the buffer tool 20 are stored in order in the storage tool 10, and then the first flap 13a and the second flap 13b are closed and the lid 14 is further closed to complete the package 1 that stores the object 30 and the buffer tool 20. When the object 30 and the buffer tool 20 are stored in the storage tool 10, first, the object 30 may be stored on the bottom 11 of the storage tool 10 and thereafter, the buffer tool 20 may be stacked thereon. First, the buffer tool 20 may be stored on the bottom 11 of the storage tool 10 and thereafter, the object 30 may be stacked thereon. That is, the one or more components 32 are, for example, stacked on the buffer tool 20. When the buffer tool 20 is first stored on the bottom 11 of the storage tool 10, the through-hole TH1 provided in the buffer tool 20 is in contact with the bottom 11 of the storage tool 10. The stacking direction Lx1 is defined by, for example, a direction where the one or more components 32 are stacked on the buffer tool 20.
(40) In an example of a cross-sectional configuration of the package illustrated in
(41) As illustrated in
(42) The object 30 includes the component 32 stored in the packaging bag 31 made of an aluminum foil, and gas exists in the packaging bag 31. In the example of
(43) In an example of a cross-sectional configuration of the package illustrated in
(44) Effects obtained by the above-described embodiment will be described. In the present embodiment, in the package 1, the buffer tool 20 includes the base 21 and the space adjusting portion 22. When the space adjusting portion 22 includes the plurality of second folds F2, one second fold F2 that defines the boundary between the contact region 24 and the adjusting region 23 is selected from the plurality of second folds F2. When the object 30 and the buffer tool 20 are stored in the storage tool 10 in the stacking direction Lx1, the width of the adjusting region 23 of the buffer tool 20 is adjustable to be changed due to the size of the gap SP1 generated between the object 30 and the storage tool 10 in the stacking direction Lx1. The adjusting region 23 extends in the stacking direction Lx1 to reduce the gap SP1 generated between the object 30 and the storage tool 10 in the stacking direction Lx1. The contact region 24 comes into contact with the object 30 to reduce a movement of the object 30 in the storage tool 10, with the adjusting region 23. There is provided the package 1 in which the buffer tool 20 is adjustable to sufficiently reduce the gap SP1 generated between the object 30 and the storage tool 10.
(45) In the present embodiment, the sum of the first height H1 and the second height H2 is approximately equal to the height from the bottom 11 to the lid 14 in the stacking direction Lx1, namely, the height H10 of the storage tool 10. In this case, the gap SP1 generated between the object 30 and the storage tool 10 is more sufficiently reduced. The first fold F1 is provided on, for example, the first surface 20a. In this case, the buffer tool 20 is easily bent inward of the first surface 20a between the base 21 and the space adjusting portion 22 at the first fold F1. The plurality of second folds F2 is provided on the first surface 20a. In this case, the space adjusting portion 22 is easily bent inward of the first surface 20a between the contact region 24 and the adjusting region 23 at one of the second folds F2.
(46) In the present embodiment, the base 21 facing the object 30 includes the through-hole TH1. In this case, the object 30 stored can be seen through the through-hole TH1 when the object 30 and the buffer tool 20 are stored in order in the storage tool 10. The contact region 24 comes into contact with the object 30 at the contact surface 24a of the contact region 24. A movement of the object 30 in the storage tool 10 may occur during transport of the package 1. When the contact region 24 includes a contact surface 24a, the buffer tool 20 reduces the movement of the object 30.
(47) In the present embodiment, the minimum value of the third interval W3 of the contact region 24 is larger than the maximum value of either of the first interval W1 and the second interval W2. In this case, the contact region 24 having a wide width comes into contact with the object 30 when the object 30 and the buffer tool 20 are stored in order in the storage tool 10. The buffer tool 20 further reduces the movement of the object 30, which may occur during transport of the package 1.
(48) In the present embodiment, the buffer tool 20 is made of a corrugated cardboard. In this case, the buffer tool 20 is lightweight and is easy to produce. At least one of the first fold and the second fold intersects the grain direction Bx1 of the corrugated cardboard. In this case, the buffer tool 20 has high mechanical strength in a state where the buffer tool 20 is bent at the fold.
(49) In the present embodiment, the shape of the buffer tool 20 is changed due to the size of the gap SP1 generated between the object 30 and the storage tool 10 in the stacking direction Lx1. When a package 1 containing a packaging bag 31 in which gas exists is transported by airplane, and the volume of the packaging bag 31 increases due to a decrease in atmospheric pressure and the shape of the package bag 31 changes, the buffer tool 20 absorbs the change in the shape of the packaging bag 31. For example, even when the shape of the packaging bag 31 is changed so as to expand from the end portion toward the center portion, the contact region 24 continues to contact the upper surface 30a of the object 30 since the angle formed by the contact region 24 and the adjusting region 23 is decreased in the space adjusting portion 22. The buffer tool 20 absorbs a change in shape of the object 30, or an increase in volume of the object 30.
(50) In the present embodiment, the object 30 is an aggregate of “n” components 32 having heights approximately equal to each other. In this case, the buffer tool 20 having “n−1” second folds F2 distributed at approximately equal intervals is prepared when the object 30 is an aggregate of “n” components having heights approximately equal to each other. In the buffer tool 20, one second fold F2 that defines the boundary between the contact region 24 and the adjusting region 23 is easily selected by counting the number of components 32. The object 30 is an aggregate of reels RE around each of which a tape that stores electronic components EC is wound. In this case, the buffer tool 20 sufficiently reduces the gap SP1 generated between the object 30 and the storage tool 10.
(51) In another aspect of the present embodiment, the buffer tool 20 includes the base 21 and the space adjusting portion 22, of which the space adjusting portion 22 includes a plurality of the second folds F2. One second fold F2 that defines the boundary between the contact region 24 and the adjusting region 23 is selected from the plurality of second folds F2. When the object 30 and the buffer tool 20 are stored in the storage tool 10 in the stacking direction Lx1, the width of the adjusting region 23 of the buffer tool 20 is changeable due to the size of the gap SP1 generated between the object 30 and the storage tool 10 in the stacking direction Lx1. The adjusting region 23 extends in the stacking direction Lx1 to reduce the gap SP1 generated between the object 30 and the storage tool 10 in the stacking direction Lx1. The contact region 24 comes into contact with the object 30 to reduce a movement of the object 30 in the storage tool 10, with the adjusting region 23. There is provided the buffer tool 20 that is adjustable to sufficiently reduce the gap SP1 generated between the object 30 and the storage tool 10.
(52) Although the embodiment of the present invention has been described above, the present invention is not necessarily limited to the embodiment, and the embodiment can be variously changed without departing from the scope of the invention.