Shock and Vibration Absorbing Pallets and Panels
20180282019 ยท 2018-10-04
Inventors
Cpc classification
F16F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D2519/00333
PERFORMING OPERATIONS; TRANSPORTING
B65D2519/00293
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/242
PERFORMING OPERATIONS; TRANSPORTING
B65D2519/00273
PERFORMING OPERATIONS; TRANSPORTING
B32B3/08
PERFORMING OPERATIONS; TRANSPORTING
F16F15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D2519/00562
PERFORMING OPERATIONS; TRANSPORTING
B65D81/02
PERFORMING OPERATIONS; TRANSPORTING
F16F1/3732
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D19/0063
PERFORMING OPERATIONS; TRANSPORTING
B32B3/20
PERFORMING OPERATIONS; TRANSPORTING
B32B7/05
PERFORMING OPERATIONS; TRANSPORTING
F16F2224/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D19/0055
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/40
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D19/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A shock and vibration isolation assembly for absorbing the energies generated from movement of a product carried thereon includes a pallet or a lower panel having an upper surface, an upper panel above the upper surface, the upper panel configured to support the product or a pallet thereon. The assembly further includes a plurality of flexible visco-elastic rings affixed to at least one of said upper surface of said pallet or lower panel and a facing surface of the upper panel. A frame member disposed between and affixed to the upper surface of the pallet or lower panel and the upper panel to seal the space therebetween. The frame member encircles the plurality of flexible rings and is formed of a resilient substantially liquid-impermeable material.
Claims
1. A shock and vibration isolation pallet assembly for absorbing the energies generated from movement of a product carried thereon, comprising: a pallet having an upper surface; an upper panel above said upper surface, the upper panel configured to support the product thereon, wherein the upper panel and said pallet have a configuration and area that are substantially co-extensive; a plurality of flexible rings affixed to at least one of said upper surface of said pallet and a surface of said upper panel facing said upper surface, said flexible rings formed of a visco-elastic material; and a frame member disposed between and affixed to the upper surface of said pallet and said upper panel to seal the space therebetween, said frame member configured to encircle the plurality of flexible rings and formed of a resilient substantially liquid-impermeable material.
2. The pallet assembly of claim 1, wherein each of said plurality of flexible rings is formed of a material having a durometer greater than or equal to the resilient material of said frame member.
3. The pallet assembly of claim 2, wherein the material of said plurality of flexible rings has a durometer of Shore 20-40 A.
4. The pallet assembly of claim 3, wherein the resilient material of said frame member has a durometer of Shore 10-20 A.
5. The pallet assembly of claim 1, wherein said frame member has a configuration that is substantially co-extensive with a perimeter portion of the pallet.
6. The pallet assembly of claim 1, wherein said plurality of rings are chemically bonded to at least one of said upper surface of said pallet and said surface of said upper panel facing said upper surface.
7. The pallet assembly of claim 1, wherein said frame member is chemically bonded to both said upper surface of said pallet and said upper panel.
8. The pallet assembly of claim 1, wherein said upper panel is formed of a substantially rigid material relative to said plurality of flexible rings.
9. The pallet assembly of claim 8, wherein said upper panel is formed of a high-density polyethylene (HDPE).
10. The pallet assembly of claim 1, wherein said plurality of flexible rings are circular and have an outer diameter of 5-6, an inner diameter of 3-4, a wall width of 1-2 and a thickness of about 1.5.
11. The pallet assembly of claim 1, wherein the plurality of flexible rings includes 9-16 rings evenly distributed across the width and length of said pallet.
12. The pallet assembly of claim 1, wherein said frame member has a thickness between said upper panel and said pallet that is greater than the thickness of each of said plurality of rings between said upper panel and said pallet.
13. An integral panel assembly for use with a pallet for absorbing the energies generated from movement of a product carried thereon, the panel assembly comprising: an upper panel configured to support the pallet or the product thereon; a lower panel, wherein the upper panel and the lower panel have a configuration and area that are substantially co-extensive; a plurality of flexible rings affixed to at least one of a surface of said upper panel facing said lower panel and a surface of said lower panel facing said upper panel, said flexible rings formed of a visco-elastic material; and a frame member disposed between and affixed to the upper panel and said lower panel to seal the space therebetween, said frame member configured to encircle the plurality of flexible rings and formed of a resilient substantially liquid-impermeable material.
14. The integral panel assembly of claim 13, wherein each of said plurality of flexible rings is formed of a material having a durometer greater than or equal to the resilient material of said frame member.
15. The integral panel assembly of claim 14, wherein: the material of said plurality of flexible rings has a durometer of Shore 20-40 A; and the resilient material of said frame member has a durometer of Shore 10-20 A.
16. The integral panel assembly of claim 13, wherein said upper panel and said lower panel are formed of a substantially rigid material relative to said plurality of flexible rings.
17. The integral panel assembly of claim 16, wherein said upper panel and said lower panel are formed of a high-density polyethylene (HDPE).
18. The integral panel assembly of claim 13, wherein said plurality of flexible rings are circular and have an outer diameter of 5-6, an inner diameter of 3-4, a wall width of 1-2 and a thickness of about 1.5.
19. The integral panel assembly of claim 13, wherein the plurality of flexible rings includes 9-16 rings evenly distributed across the width and length of said lower panel.
20. The integral panel assembly of claim 13, wherein said frame member has a thickness between said upper panel and said lower panel that is greater than the thickness of each of said plurality of rings between said upper panel and said lower panel.
Description
DESCRIPTION OF DRAWINGS
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014] For the purposes of promoting an understanding of the principles of the disclosure, reference will now be made to the embodiments illustrated in the drawings and described in the following written specification. It is understood that no limitation to the scope of the disclosure is thereby intended. It is further understood that the present disclosure includes any alterations and modifications to the illustrated embodiments and includes further applications of the principles disclosed herein as would normally occur to one skilled in the art to which this disclosure pertains.
[0015] A pallet assembly 10 according to the present disclosure is shown in
[0016] In one aspect of the present disclosure, a plurality of vibration isolation rings 16 is affixed to the upper surface 14 of the base pallet 12. In one embodiment, the rings are circular rings molded from Sorbothane visco-elastic polymer, produced by Sorbothane, Inc. of Kent, Ohio. The Sorbothane can have a Shore 20-40 A durometer. The rings 16 are permanently chemically bonded to the upper surface 14 by a suitable adhesive, such as a cyanoacrylate polyurethane or neoprene-based adhesive. The rings 16 have an outer diameter of 5-6, an inner diameter of 3-4, a wall width of 1-2 and a thickness of about 1.5. The pallet assembly 10 can include 9-16 rings 16 evenly distributed across the width and length of the base pallet 12. The rings 16 are preferably circular so that the vibration isolation rings can absorb lateral vibration energy or vibration transverse to a vertical axis through the base pallet.
[0017] An upper panel 19 can be permanently bonded to the plurality of rings 16, preferably by the same adhesive used to bond the rings to the pallet surface. The panel is substantially rigid to resist deformation when a load is positioned on the panel. In one embodiment, the upper panel can be a sheet of HDPE with a thickness of 0.25-0.75. The upper panel 19 has an area and configuration that is substantially co-extensive with the area and configuration of the base pallet 12. Thus, for the standard North American pallet described above, the upper panel can be rectangular with a dimension of 4048.
[0018] The space between the upper panel 19 and the upper surface 14 of the base pallet 12 is sealed with a frame member 18 extending around the entire perimeter of the upper panel and upper surface. The frame member is thus substantially co-extensive with the perimeter portion of the pallet. Again, for a standard North American pallet, the frame member 19 can have an outer dimension of 4048. The frame forms a hollow interior to receive the plurality of rings 16. Thus, in one embodiment, the frame member can have a wall thickness of 1-2.
[0019] The frame member 18 is formed of a compressible material, which can have a durometer equal to or less than the rings 16. In one embodiment the frame member can be formed of the same material as the rings, such as Sorbothane. In a preferred embodiment, the frame member is formed of a material having a durometer less than the rings, such as Shore 10-20 A. In this embodiment, the frame member 18 has the dual role of participating in the vibration damping function of pallet assembly as well as sealing the space occupied by the vibration rings 16. Thus, the frame member is formed of a material that is substantially impermeable to liquids. The frame member 18 is bonded to both the upper panel 19 and the upper surface 14 of the base pallet. In one embodiment, the frame member 18 has a thickness equal to the thickness of the vibration isolation rings 16, such as 1.5 in the embodiment of the rings described above. In another embodiment, the frame member 18 has a thickness greater than the thickness of the rings, such as 2.0 for the embodiment of the rings described above. In this embodiment, the isolation rings bonded to the surface 14 of the pallet 12 are initially offset from the upper panel 19 due to the thickness of the frame member 18. When a load is supported on the upper panel 19, the frame member 18 is compressed until the upper panel contacts and slightly compresses the rings 16. It can be appreciated that the plurality of rings 16 may alternatively be bonded to the underside of the upper panel 19.
[0020] In an alternative embodiment shown in
[0021] The independent panel assembly 20 further includes a frame member 27 that is identical to the frame member 18. As discussed above, the frame member 27 is formed of a compressible and liquid-impermeable material, which can have a durometer equal to or less than the rings 25, such as Shore 10-20 A. The frame member 27 is substantially co-extensive with the perimeter portion of the two panels 22, 23. Like the frame member 18, the frame member 27 has the dual role of participating in the vibration damping function of pallet assembly as well as sealing the space occupied by the vibration rings 25. The frame member 27 can thus be bonded to both the upper panel 22 and the upper surface 24 of the lower panel 23. As discussed above, the frame member 27 can have a thickness equal to the thickness of the vibration isolation rings 25 or a thickness greater than the thickness of the rings. In the latter case, the isolation rings bonded to the lower panel 23 are offset from the upper panel 22 due to the thickness of the frame member. When a load is supported on the upper panel 22, the frame member 27 is compressed until the upper panel 22 contacts and slightly compresses the rings 25.
[0022] As shown in
[0023] When pharmaceutical glass containers are shipped as a palletized load 30, they are typically placed in enclosed trays, such as the trays 32 shown in
[0024] With the present invention, the trays 32 can be stacked in a conventional manner on the pallet assembly 10 or panel assembly 20. One or more layers of plastic wrap are secured over the palletized load and the load is further unitized by the use of banding straps. The loaded pallet is then ready for transport.
[0025] The pallet assembly 10 and panel assembly 20 disclosed herein are capable of withstanding the level of sanitization required for use in clean room environments. The frames 18, 27 seal the respective vibration isolation rings 16, 25 so that the rings are not exposed to sterilization chemicals that might compromise the physical properties of the rings. The pallet assembly 10 and panel assembly 20 can thus be washed and sterilized as frequently as necessary.
[0026] The present disclosure should be considered as illustrative and not restrictive in character. It is understood that only certain embodiments have been presented and that all changes, modifications and further applications that come within the spirit of the disclosure are desired to be protected.