This patent application is based on and claims priority pursuant to 35 U.S.C. §119(a) to Japanese Patent Application Nos. 2022-121647 and 2023-010856, filed on Jul. 29, 2022, and Jan. 27, 2023, respectively, in the Japan Patent Office, the entire disclosures of which are hereby incorporated by reference herein.
Embodiments of the present disclosure relate to a shock absorber and a packaging system.
The structure or shape of shock absorbers that are used as a packaging material is determined based on the shape or strength of the object to be packaged, and the object to be packaged wears such shock absorbers. Moreover, such shock absorbers are packed in an outer packaging box, and serve as part of packaged baggage. As known in the art, a desired function of shock absorbers is to lessen the impact of the shock on the object to be packaged when the packaged baggage drops or falls off during cargo handling.
As illustrated in
The shock absorber according to the related art is classified into three types including an inner rib (see, for example,
The inner rib has a configuration in which the object to be packaged contacts the shock-absorbing rib 12, and implements a shock-absorbing design or technique to adjust the acceleration of impact. Due to such a configuration, the acceleration of the impact that is applied to the object to be packaged can easily be adjusted.
Embodiments of the present disclosure described herein provide a shock absorber and two kinds of packaging system. The shock absorber is to be attached to an object to be packaged, and the shock absorber includes a first shock absorber including a first base structure having a frame shape and at least one first shock-absorbing rib disposed inside the first base structure, and a second shock absorber having a second base structure in a shape of a plate and at least one second shock-absorbing rib disposed on a plane of the second base structure. In the shock absorber, the first shock absorber and the second shock absorber are coupled to each other. One of the two packaging systems includes a plurality of shock absorbers including the shock absorber, and two of the shock absorbers are used for each object to be packaged. The other one of the two packaging systems includes a plurality of shock absorbers including the shock absorber, and four of the shock absorbers are used for each object to be packaged.
A more complete appreciation of embodiments and the many attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings.
FIG, 5B is an A-A sectional view of a shock-absorbing rib and illustrates the deformation on the shock-absorbing rib, according to the related art.
FIG, 7B is a perspective view of a shock absorber plate that makes up the shock absorber of
The accompanying drawings are intended to depict embodiments of the present disclosure and should not be interpreted to limit the scope thereof. The accompanying drawings are not to be considered as drawn to scale unless explicitly noted.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the present disclosure. As used herein, the singular forms “a”, “an”, and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “includes” and/or “including”, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
In describing example embodiments illustrated in the drawings, specific terminology is employed for the sake of clarity. However, the present disclosure is not intended to be limited to the specific terminology so selected and it is to be understood that each specific element includes all technical equivalents that have the same structure, operate in a similar manner, and achieve a similar result.
As known in the art, shock absorbers are manufactured using a die or mold for mass production such as an injection molding machine and a vacuum molding machine. As illustrated in
When the shock-absorbing rib 12 is deformed to lessen the acceleration of the impact that is applied to the to-be-packaged object 14 at the time of falling or drop, the shock-absorbing rib 12 is connected to or integrated with a frame portion of the base structure 10 or a plate-like bottom side of the base structure 10. In view of the above circumstances, even if the shock-absorbing rib 12 is deformed at the time of falling or dropped, a portion 12b close to a bottom side of the base structure 10 and a boundary portion 12a of the base structure 10 are pulled toward the base structure 10. Accordingly, the shock-absorbing rib 12 may not deform evenly with respect to the tangent plane that the to-be-packaged object 14 contacts in a vertical direction. In other words, a portion 12b with a relatively small deformation and a portion 12c with a relatively great deformation are mixed.
As the height h of the shock-absorbing rib 12 and the shaded area S in which the to-be-packaged object 14 contacts the shock-absorbing rib 12 is adjusted or adjustment with other shock-absorbing ribs is performed, the acceleration of the impact that is applied to the to-be-packaged object 14 at the time of falling or drop may not be lessened to a target level. Due to such a configuration, there is some concern that the to-be-packaged object 14 may be damaged.
In the embodiments of the present disclosure described below, a shock absorber with an inner rib is described in which unwanted integration of the shock-absorbing rib 12 with the base structure 10 can be partially resolved to increase the level of shock-absorbing effects.
The shock absorber 50 according to the present embodiment includes a shock absorber frame 20 that serves as the first shock absorber and a shock absorber plate 30 that is coupled to the shock absorber frame 20 and serves as the second shock absorber, and has holding space 22 that accommodates at least some of the to-be-packaged object 14.
As illustrated in
In order to combine the shock absorber frame 20 and the shock absorber plate a pair of protrusions 28 that are flush with portions of the outer frame of the first base structure 24 are formed on the first base structure 24 of the shock absorber frame
In parallel with that, a pair of notch-like recessed portions 36 are formed on the second base structure 32 of the shock absorber plate 30. The pair of protrusions 28 of the shock absorber frame 20 can be attached to and detached from the pair of recessed portions 36 of the shock absorber plate 30. The pair of protrusions 28 are lightly press-fitted into the pair of recessed portions 36. Due to such a configuration, the shock absorber frame 20 and the shock absorber plate 30 are combined together as desired. When one of the shock absorber frame 20 and the shock absorber plate 30 is held in the air, the other one does not fall off.
As illustrated in
The front ends of the pair of protrusions 28 that are flush with a face of the outer frame of the first base structure 24 are flush with the outer circumferential surface of the plate-like second base structure 32 of the shock absorber plate 30. Due to such a configuration as described above, for example, the pair of protrusions 28 of the combined shock absorber can be prevented from being caught when the combined shock absorber is packed in an outer packaging box, and the shock absorber material can be prevented from being separated from each other. When the pair of protrusions 28 are lightly press-fitted into the pair of recessed portions 36 to combine the shock absorber frame 20 and the shock absorber plate 30, the contact surface of one of or both the protrusion 28 and the recessed portion 36 may elastically deform.
In the shock absorber 50 according to the present embodiment, the multiple first shock-absorbing ribs 26 of the shock absorber frame 20 are members separate from the plate-like second base structure 32 of the shock absorber plate 30. Due to such a configuration or structure, when one of the rib and the base structure deforms evenly, the other one does not deform as much as the one of the rib and the base structure that deforms evenly.
In the shock absorber 50 according to the present embodiment, the multiple first shock-absorbing ribs 26 of the shock absorber frame 20 are deformed when the shock absorber 50 lessens the impact of shock on the to-be-packaged object 14 in response to the acceleration of the impact that is applied to the to-be-packaged object 14 at the time of falling or drop, but the multiple first shock-absorbing ribs 26 are not affected by the second base structure 32 of the shock absorber plate 30, which is separate from the shock absorber frame 20. For example, the multiple first shock-absorbing ribs 26 are not pulled by the second base structure 32. Due to such a. configuration, the multiple first shock-absorbing ribs 26 can deform evenly in the vertical direction that the to-be-packaged object 14 drops, against the abutment plane with the to-be-packaged object 14, and the multiple first shock-absorbing ribs 26 are free from the influence of the plate-like second base structure 32 in the vertical direction. Accordingly, shock-absorbing effects can be achieved.
In the present embodiment, the first base structure 24 of the shock absorber frame 20 contacts the second base structure 32 of the shock absorber plate 30. However, it is desired that the multiple first shock-absorbing ribs 26 of the shock absorber frame 20 be apart from the second base structure 32 of the shock absorber plate 30 as indicated by a reference sign D as illustrated in
Shock absorbers are known in the art that form a block of shock absorber using a combination of the rectangular-shaped hollow first shock absorber and the U-shaped second shock absorber arranged inside the first shock absorber.
However, the second shock absorber contacts the object to be packaged, and the first shock absorber does not contact the object to be packaged in the block of shock absorber known in the art. Moreover, the outer regions of the first shock absorber contact the outer packaging box in the block of shock absorber known in the art, and the second shock absorber does not evenly deform to lessen the impact in response to the acceleration of the impact that is applied to the to-be-packaged object 14 at the time of falling or drop. Due to such uneven deformation of the second shock absorber, the first shock absorber tends to be deformed unintentionally. For the above reasons, mechanisms to enhance shock-absorbing function as in the embodiments of the present disclosure, which is implemented by separate members with an inner rib, cannot be achieved.
A configuration or structure of a shock absorber according to embodiments of the present disclosure is described below.
Materials of Shock Absorber
It is desired that the shock absorber frame 20 and the shock absorber plate 30 be formed using a packaging material made of form resin. Due to such a configuration, a shock absorber with good shock-absorbing properties and characteristics can be provided at low cost. Alternatively, a shock absorber with good shock-absorbing properties and characteristics may be formed and provided using a packaging material made of pulp molding or a vacuum-formed packaging material made of plastic sheet.
Number of Shock-Absorbing Ribs
In the shock absorber frame 20 according to the present embodiment, two or more first shock-absorbing ribs 26 may be arranged on different inner walls of the first base structure 24 or on the same wall of the first base structure 24. As described above with reference to
As illustrated in
Further, two or more second shock-absorbing ribs 34 may be arranged on a plane of the second base structure 32. As illustrated in
A method of combining the shock absorber frame and the shock absorber plate according to some modifications of the above embodiments of the present disclosure is described below.
First Modification
As illustrated in
The term “snap fit” indicates an assembling method in which, for example, protrusions arranged on a part such as the pair of claw-shaped protrusions 28a are inserted into concave or recessed portions of a receiver such as the pair of concave portions 36a, using the elasticity of a material, to achieve mechanical fixation by hooking. Snap fit is an easy and low-cost coupling or bonding method that does not require extra materials, and can combine and bond the shock absorber frame 20 and the shock absorber plate 30 with a sufficient degree of fixing force.
Second Modification
As illustrated in
As illustrated in
As illustrated in
Third Modification
As illustrated in
At least one of the multiple bosses 28c or multiple holes 36c may be chamfered to have a round shape.
This configuration or structure also provide an easy and low-cost coupling or bonding method that does not require extra materials, and the shock absorber frame 20 and the shock absorber plate 30 can be prevented from being separated from each other.
In the above three coupling or combining methods, a plurality of claw-shaped protrusions 28a, a plurality of rectangular protrusions 28b, or a plurality of bosses 28c may be formed on the first base structure 24 of the shock absorber frame 20, and a plurality of concave portions 36a, a plurality of recessed portions 36b, and a plurality of holes 36c may be formed on the second base structure 32 of the shock absorber plate 30.
The shock absorber 50 according to the above embodiments and their modifications of the present disclosure is used for a packaging system upon being attached to an image forming apparatus such as a copier and a printer that serves as the to-be-packaged object 14 or an apparatus such as a personal computer (PC) and a household electrical appliance that has a plane and upon being packed into an outer packaging box such as a cardboard box. A packaged baggage that is prepared using such a packaging system is delivered and handled as a cargo.
In the packaging system according to the present embodiment, a pair of shock absorbers 50 according to the above embodiments of the present disclosure may be used for each object to be packaged. Such a packaging system may be referred to as a two-pad packaging system. In response to the shock in six directions caused by, for example, drop of a packaged baggage, desired shock-absorbing effects can be achieved with a few number of components or elements.
Alternatively, in the packaging system according to the present embodiment, four shock absorber 50 according to the above embodiments of the present disclosure may be used for each object to be packaged. Such a packaging system may be referred to as a four-pad packaging system in the following description. In response to the shock in six directions caused by, for example, drop of a packaged baggage, further shock-absorbing effects can be achieved. Regarding the two shock absorbers among the four shock absorbers, the object to be packaged and the shock absorber can separately be stored in an outer packaging box. In view of the above circumstances, the four-pad packaging system is suitable for processability of packaging and automation of packaging processes.
Note that numerous additional modifications and variations are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims, the embodiments of the present disclosure may be practiced otherwise than as specifically described herein. For example, elements and/or features of different illustrative embodiments may be combined with each other and/or substituted for each other within the scope of this disclosure and appended claims.
Any one of the above-described operations may be performed in various other ways, for example, in an order different from the one described above. Each of the functions of the described embodiments may be implemented by one or more processing circuits or circuitry. Processing circuitry includes a programmed processor, as a processor includes circuitry. A processing circuit also includes devices such as an application-specific integrated circuit (ASIC), digital signal processor (DSP), field-programmable gate array (FPGA), and conventional circuit components arranged to perform the recited functions.
Aspects of the present disclosure are given below
First Aspect
A shock absorber to be attached to an object to be packaged, the shock absorber comprising:
Second Aspect
In the shock absorber according to the first aspect, the first shock-absorbing rib of the first shock absorber is separate from the second base structure of the second shock absorber.
Third Aspect
In the shock absorber according to the first aspect or the second aspect, the first shock absorber and the second shock absorber are coupled to each other as a claw-shaped protrusion formed on the first base structure of the first shock absorber is snap-fitted into a concave portion formed on the second base structure of the second shock absorber.
Fourth Aspect
The shock absorber according to the third aspect, further comprising:
Fifth Aspect
In the shock absorber according to the first aspect or the second aspect, the first shock absorber and the second shock absorber are coupled to each other as a rectangular protrusion formed on the first base structure of the first shock absorber is lightly press-fitted into a recessed portion formed on the second base structure of the second shock absorber.
Sixth Aspect
In the shock absorber according to the fifth aspect, the rectangular protrusion or the recessed portion is chamfered to have a rounded face.
Seventh Aspect
The shock absorber according to the fifth aspect or the sixth aspect, further comprising:
Eighth Aspect
In the shock absorber according to the first aspect or the second aspect, the first shock absorber and the second shock absorber are coupled to each other as a boss formed on the first base structure of the first shock absorber is lightly press-fitted into a. hole formed on the second base structure of the second shock absorber.
Ninth Aspect
The shock absorber according to the eighth aspect, further comprising:
Tenth Aspect
The shock absorber according to any one of the first to ninth aspects, further comprising
Eleventh Aspect
The shock absorber according to any one of the first to tenth aspects, further comprising
Twelfth Aspect
The shock absorber according to any one of the first to eleventh aspects, further comprising
Thirteenth Aspect
In the shock absorber according to any one of the first to twelfth aspects, the first shock absorber and the second shock absorber are formed using a packaging material made of form resin.
Fourteenth Aspect
In the shock absorber according to any one of the first to twelfth aspects, the first shock absorber and the second shock absorber are formed using a packaging material made of pulp molding.
Fifteenth Aspect
In the shock absorber according to any one of the first to ninth aspects, the first shock absorber and the second shock absorber are formed using a vacuum-formed packaging material made of plastic sheet.
Sixteenth Aspect
A packaging system comprising a plurality of shock absorbers including the shock absorber according to any one of the first to fifteenth aspects, two of the plurality of shock absorbers used for each object to be packaged.
Seventeenth Aspect
A packaging system comprising a plurality of shock absorbers including the shock absorber according to any one of the first to fifteenth aspects, four of the plurality of shock absorbers used for each object to be packaged.
Number | Date | Country | Kind |
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2022-121647 | Jul 2022 | JP | national |
2023-010856 | Jan 2023 | JP | national |