EP1630492A2 - Temperature controlling unit and container using the same - Google Patents
Temperature controlling unit and container using the same Download PDFInfo
- Publication number
- EP1630492A2 EP1630492A2 EP05015587A EP05015587A EP1630492A2 EP 1630492 A2 EP1630492 A2 EP 1630492A2 EP 05015587 A EP05015587 A EP 05015587A EP 05015587 A EP05015587 A EP 05015587A EP 1630492 A2 EP1630492 A2 EP 1630492A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- temperature controlling
- lid
- container
- insulating container
- controlling unit
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
- 230000000694 effects Effects 0.000 claims abstract description 12
- 239000006260 foam Substances 0.000 claims description 38
- 229920003002 synthetic resin Polymers 0.000 claims description 38
- 239000000057 synthetic resin Substances 0.000 claims description 38
- 239000004020 conductor Substances 0.000 claims description 4
- 239000000463 material Substances 0.000 claims description 3
- CURLTUGMZLYLDI-UHFFFAOYSA-N Carbon dioxide Chemical compound O=C=O CURLTUGMZLYLDI-UHFFFAOYSA-N 0.000 abstract description 24
- 229910002092 carbon dioxide Inorganic materials 0.000 abstract description 12
- 239000001569 carbon dioxide Substances 0.000 abstract description 12
- 238000001816 cooling Methods 0.000 abstract description 11
- 239000007787 solid Substances 0.000 abstract description 10
- 239000003795 chemical substances by application Substances 0.000 abstract description 6
- 238000007789 sealing Methods 0.000 description 12
- 238000004519 manufacturing process Methods 0.000 description 5
- 238000010438 heat treatment Methods 0.000 description 4
- 239000011810 insulating material Substances 0.000 description 3
- 238000009413 insulation Methods 0.000 description 3
- 238000009429 electrical wiring Methods 0.000 description 2
- 230000007613 environmental effect Effects 0.000 description 2
- 229920001821 foam rubber Polymers 0.000 description 2
- 230000005679 Peltier effect Effects 0.000 description 1
- 239000004793 Polystyrene Substances 0.000 description 1
- -1 and desirably Polymers 0.000 description 1
- 229920006351 engineering plastic Polymers 0.000 description 1
- 239000000155 melt Substances 0.000 description 1
- 229920002223 polystyrene Polymers 0.000 description 1
- 229920002635 polyurethane Polymers 0.000 description 1
- 239000004814 polyurethane Substances 0.000 description 1
- 230000003252 repetitive effect Effects 0.000 description 1
- 238000000859 sublimation Methods 0.000 description 1
- 230000008022 sublimation Effects 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D19/00—Arrangement or mounting of refrigeration units with respect to devices or objects to be refrigerated, e.g. infrared detectors
- F25D19/003—Arrangement or mounting of refrigeration units with respect to devices or objects to be refrigerated, e.g. infrared detectors with respect to movable containers
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B9/00—Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point
- F25B9/14—Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point characterised by the cycle used, e.g. Stirling cycle
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D11/00—Self-contained movable devices, e.g. domestic refrigerators
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D19/00—Arrangement or mounting of refrigeration units with respect to devices or objects to be refrigerated, e.g. infrared detectors
- F25D19/02—Arrangement or mounting of refrigeration units with respect to devices or objects to be refrigerated, e.g. infrared detectors plug-in type
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D2323/00—General constructional features not provided for in other groups of this subclass
- F25D2323/06—Details of walls not otherwise covered
- F25D2323/061—Collapsible walls
Definitions
- the present invention relates to a temperature controlling unit and a container using the same, and more particularly, to a container for transportation.
- a conventional container for transportation comprises an insulating container and a cover, both made of foam synthetic resins, and holds solid carbon dioxide, a cold reserving agent or the like inside, thereby cooling the interior of the container.
- Japanese Unexamined Patent Publication No. 2000-304402 discloses an electronic cooling or heating container comprising an insulating container with an openable and closable lid, in which the insulating container has a built-in cooling or heating unit (corresponding to a temperature controlling unit of the present invention).
- 2553022 discloses a cooling or heating container with a lid which openably and closably covers the opening of an insulating box (corresponding to an insulating container of the present invention), and has a built-in cooling or heating apparatus (corresponding to the temperature controlling unit of the present invention).
- Japanese Unexamined Patent Publication No. 2001-311576 discloses a cooling box with a lid which openably and closably covers the opening of a box (corresponding to the insulating container of the present invention), and has a built-in a cooling apparatus (corresponding to the temperature controlling unit of the present invention).
- the container which cools the interior by solid carbon dioxide, a cold reserving agent or the like has a problem such that as solid carbon dioxide sublimes or the cold reserving agent melts down due to heat from stored items or heat from the exterior of the container, it takes a lot of trouble for refilling solid carbon dioxide or replacing the cold reserving agent to keep the stored items in the container for a long time.
- solid carbon dioxide its repetitive use over a long period of time increases not only the amount of the solid carbon dioxide, which eventually increases the running cost, but also the density of carbon dioxide in the atmosphere as the solid carbon dioxide gasifies due to the sublimation.
- the present invention has been made to solve the aforementioned problems, and it is an object of the present invention to provide a container which enables storage of items for a long period at low running cost and allows its volume to be set relatively freely, and a temperature controlling unit which constitutes the container.
- Another object of the present invention is to provide a relatively lightweight and inexpensive container as well as a temperature controlling unit which constitutes the container.
- a temperature controlling unit is a temperature controlling unit which comprises: an insulative lid; and a temperature controlling subunit which includes a temperature controlling device provided on the lid, and includes a temperature control effect member which is thermally exposed at one surface side of the lid.
- the temperature controlling subunit may further include an attachment member for attaching the temperature controlling subunit to the lid.
- the temperature controlling device may include a Stirling refrigerator.
- a container according to a second aspect of the present invention is a container which comprises: an insulating container which has an opening; and the aforementioned temperature controlling unit which is independent of the insulating container, wherein the temperature controlling unit is detachably attached to the opening of the insulating container in such a manner as to close and seal the opening.
- the lid and the insulating container may be made of foam synthetic resins.
- the opening of the insulating container may be openable and closable selectively by the temperature controlling unit or an insulative second lid.
- the temperature control effect member may be thermally exposed at the interior of the insulating container.
- the temperature controlling device may include a Stirling refrigerator.
- a temperature controlling unit is a temperature controlling unit which comprises: an insulative main lid; an insulative sub-lid; and a temperature controlling subunit which includes a temperature controlling device provided on the sub-lid, wherein the temperature controlling subunit includes a temperature control effect member which is thermally exposed at one surface side of the sub-lid.
- the temperature controlling subunit may further include an attachment member for attaching the temperature controlling subunit to the sub-lid.
- the temperature controlling device may include a Stirling refrigerator.
- a container according to a fourth aspect of the present invention is a container which comprises: an insulating container which has an opening; and the temperature controlling unit which is independent of the insulating container, wherein the sub-lid of the temperature controlling unit is detachably attached to the opening of the insulating container in such a manner as to close and seal a portion of the opening, and the main lid of the temperature controlling unit is attached to the opening of the insulating container in such a manner as to close and seal an other portion of the opening.
- the main lid, the sub-lid and the insulating container may be made of foam synthetic resins.
- the temperature controlling device may include a Stirling refrigerator.
- a temperature controlling unit is a temperature controlling unit which comprises: a frame which has an opening; an insulative main lid so attached to the frame as to freely open and close a portion of the opening of the frame; an insulative sub-lid so attached to the frame as to cover the other portion of the opening of the frame; and a temperature controlling subunit which is attached to said sub-lid, and includes a Stirling refrigerator, wherein the temperature controlling subunit includes a temperature control effect member thermally exposed at one surface side of the sub-lid.
- the temperature controlling subunit may further include an attachment member for attaching the temperature controlling subunit to the sub-lid.
- a container according to the sixth aspect of the present invention is a container which comprises: an insulating container which has an opening: and the temperature controlling unit which is independent of the insulating container, and is detachably attached to the opening of the insulating container in such a manner as to close and seal the opening.
- the main lid, the sub-lid and the insulating container may be made of insulative materials in tabular shapes.
- the frame may be made of a low heat-conductive material.
- the insulating container may have a foldable structure.
- the main lid and the sub-lid may be covered by an infrared reflection film.
- Reference number 1 denotes a container, and the container 1 comprises a temperature controlling unit 2 and an insulating container 3.
- the temperature controlling unit 2 comprises a lid 4 formed with a through-hole 4A in a substantial center thereof, and a temperature controlling subunit 5.
- the lid 4 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer.
- a step member 4B is formed on the through-hole 4A, and a later described base 8 of the temperature controlling subunit 5 is placed on the step member 4B.
- the temperature controlling subunit 5 comprises a Stirling refrigerator 6 as a temperature controlling device, a casing 7 for containing the Stirling refrigerator 6, and the base 8 for supporting the Stirling refrigerator 6 and the casing 7.
- the Stirling refrigerator 6 is set up side down.
- a heat absorbing sink 9 is attached to a heat absorbing portion 6B, formed on a leading end of a cylindrical portion 6A of the Stirling refrigerator 6, in a heat-conductive manner, and a heat exhausting sink 10 is attached to a heat exhausting portion 6C formed on a base end of the cylindrical portion 6A in a heat-conductive manner.
- the heat absorbing sink 9 is attached to a lower surface side of the base 8 in an exposed manner, and the heat exhausting sink 10 is arranged in the interior of the casing 7.
- a lower portion of the casing 7 is formed with an opening 7A for air intake and an attachment member 7B for fixing the temperature controlling subunit 5.
- An upper portion thereof is formed with an opening 7C for air exhaust, and a fan 11 is attached to the opening 7C.
- a sealing member 12 is provided in between the outer circumference of the heat exhausting sink 10 and the inner wall of the casing 7, so that the space can be sealed.
- a substantial center of the base 8 is formed with a through-hole 8A, and the outer circumference of the base 8 is formed with a step member 8B in association with the step member 4B, so that the base 8 can fit into the through-hole 4A.
- the inner diameter of the through-hole 8A is larger than the outer diameter of the cylindrical portion 6A of the Stirling refrigerator 6, and space between the cylindrical portion 6A and the through-hole 8A is sealed by a sealing member 13 which is made of an insulative foam rubber or the like.
- the heat absorbing sink 9 is so formed as to have a size not to protrude from the outer circumference of a lower portion of the base 8.
- a fan 14 is so provided adjacent to the heat absorbing sink 9 as to allow airflow to pass through the heat absorbing sink 9.
- a temperature control effect member A is structured by the heat absorbing portion 6B of the Stirling refrigerator 6, the heat absorbing sink 9 and the fan 14.
- An operating member 15 is provided on a front side of the casing 7, and a non-illustrated controlling circuit is accommodated in the operating member 15.
- the insulating container 3 is so structured as to include a right wall 3A, a left wall 3B, a front wall 3C, a rear wall 3D, a bottom wall 3E and a lid 16 for the insulating container 3 as a second lid.
- Each of the walls 3A, 3B, 3C, 3D, 3E, and lid 16 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and each of the entire surfaces is covered with an infrared reflection film as an infrared reflection layer.
- the surfaces of the walls 3A, 3B, 3C, 3D and 3E to be the outside surface of the container are covered with a cover 17 made of an infrared reflection film.
- the edge of the lid 16 is attached to an upper end of the cover 17. According to the aforementioned structure, it is possible to easily and inexpensively manufacture the insulating container 3 of an arbitrary size.
- the temperature controlling subunit 5 is assembled.
- the heat exhausting sink 10 is attached to the heat exhausting portion 6C of the Stirling refrigerator 6, and the sealing member 13 is attached to the outer circumference between the heat absorbing portion 6B and the heat exhausting portion 6C in the cylindrical portion 6A.
- the sealing member 12 is attached to the circumference of the heat exhausting sink 10, the Stirling refrigerator 6 is accommodated in the casing 7 with the Stirling refrigerator 6 being in a handstand condition.
- the fan 11 is attached to the exhausting opening 7C of the casing 7.
- the casing 7 accommodating the Stirling refrigerator 6 is attached to the base 8 by the attachment member 7B, and the cylindrical portion 6A of the Stirling refrigerator 6 is fit through the through-hole 8A of the base 8. At this time, the space between the through-hole 8A and the cylindrical portion 6A is sealed by the sealing member 13.
- the heat absorbing sink 9 is attached to the heat absorbing portion 6B formed on the leading end of a cylindrical portion 6A of the Stirling refrigerator 6, and the fan 14 is attached to adjacent to the heat absorbing sink 9. Electrical wirings of the Stirling refrigerator 6, the fans 11 and 14 are connected to the non-illustrated controlling circuit, and the controlling circuit is accommodated in the operating member 15.
- the temperature controlling subunit 5 is assembled thus way.
- the assembled temperature controlling subunit 5 is attached to the through-hole 4A of the lid 4.
- the base 8 is fitted in and engaged with the through-hole 4A in such a manner as to allow the step member 8B formed on the base 8 of the temperature controlling subunit 5 to mount the step 4B of the through-hole 4A, whereby the temperature controlling subunit 5 is attached to the lid 4.
- the heat absorbing sink 9 since the heat absorbing sink 9 is formed to have the size not to protrude from the outer circumference of the lower portion of the base 8, the heat absorbing sink 9 does not interfere with the through-hole 4A when the temperature controlling subunit 5 is attached to the lid 4.
- the temperature controlling unit 2 is structured by attaching the temperature controlling subunit 5 to the lid 4 thus way, it is possible to obtain the temperature controlling units 2 of various sizes, that is, the temperature controlling units 2 that can match the insulating containers 3 of various sizes, by using the common temperature controlling subunit 5 and changing the lid 4 only.
- the lid 4 is covered with an infrared reflection film, but basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus the lids 4 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture the temperature controlling unit 2 inexpensively.
- the heat absorbing portion 6B brought into the low temperature state absorbs heat from the heat absorbing sink 9 thermally contacting the heat absorbing portion 6B and the air inside the insulating container 3 where the heat absorbing sink 9 is exposed, and conducts this absorbed heat to the heat exhausting portion 6C.
- the heat conducted to the heat exhausting portion 6C is exhausted from the heat exhausting sink 10. As the air inside the insulating container 3 is allowed to flow the heat absorbing sink 9 by the fan 14, it is evenly and efficiently cooled by the Stirling refrigerator 6.
- the insulating container 3 itself is made of a light foam synthetic resin in a tabular shape and an infrared reflection film, it has an extremely light-weight structure, and the temperature controlling unit 2 also has a relatively light-weight structure as including the lid 4 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and the temperature controlling subunit 5 using the relatively light Stirling refrigerator 6. Accordingly, the container 1 using the temperature controlling unit 2 as a whole can have a relatively light-weight structure.
- the interior of the container 1 can be not only efficiently cooled, but also cooled to a very low temperature.
- the temperature controlling unit 2 may be detached and the opening 3F of the insulating container 3 may be closed and sealed by the lid 16 of the insulating container 3, when the cooling of the temperature controlling unit 2 is not required.
- the temperature controlling subunit 5, using the Stirling refrigerator 6 as the temperature controlling device is attached to the insulative lid 4, and the heat absorbing sink 9, forming the temperature control effect member A of the temperature control subunit 5, is thermally exposed at one side of the lid 4 as to work as the temperature controlling unit 2, whereby the interior of the insulating container 3 of an arbitrary size, with the opening 3F closed and sealed by the temperature controlling unit 2, can be cooled, and thus items to be stored can be continuously stored for a longer time compared with solid carbon dioxide and a cold reserving agent conventionally used.
- the first embodiment of the present invention not only enables the lid 4 and further the entire temperature controlling unit 2 to be light and inexpensive, but also allows the lid 4 to be easily structured in an arbitrary size.
- the Stirling refrigerator 6 is attached to the lid 4 together with the temperature controlling subunit 5 by the attachment member 7B, whereby the temperature controlling units 2 of various sizes can be easily assembled by attaching the common temperature controlling subunit 5 to the lids 4 of various sizes.
- the running cost can be reduced, and environmental burden can be suppressed as gasified carbon dioxide is not generated.
- Making the insulating container 3 of foam synthetic resin can make the insulating container 3 light and inexpensive. Accordingly, not only the whole container 1 can be made light and inexpensive, but also the insulating container 3 can be easily structured in an arbitrary size.
- the temperature controlling unit 2 in transporting the container 1 whose interior is cooled by the temperature controlling unit 2, by manpower, the temperature controlling unit 2 may be detached and the opening 3F of the insulating container 3 may be closed and sealed by the lid 16 of the insulating container 3, when the cooling of the temperature controlling unit 2 is not required, whereby the container 1 as a whole when transported by manpower can be made lighter.
- the temperature controlling device is the Stirling refrigerator 6 which is small in size and light, and able to cool the interior of the container 1 to a very low temperature at low power, the interior of the container 1 can be cooled to a very low temperature at a low running cost, and the container 1 as a whole can have a light-weight structure.
- a temperature controlling unit 21 of a container 20 comprises a lid 22 formed with a through-hole 22A on a substantial center thereof, and a temperature controlling subunit 23.
- the lid 22 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer.
- a step member 22B is formed on the through-hole 22A, and a later described base 25 of the temperature controlling subunit 23 is placed on the step member 22B.
- the temperature controlling subunit 23 is so comprised as to include the Stirling refrigerator 6 as the temperature controlling device, a casing 24 for containing the Stirling refrigerator 6, and the base 25 for supporting the Stirling refrigerator 6 and the casing 24.
- the Stirling refrigerator 6 is laterally supported, a heat absorbing sink 27 is attached to the heat absorbing portion 6B, formed on the leading end of the cylindrical portion 6A of the Stirling refrigerator 6, in a heat-conductive manner via a heat conductive block 26, and the heat exhausting sink 10 is attached to the heat exhausting portion 6C formed on the base end of the cylindrical portion 6A in a heat-conductive manner.
- the heat absorbing sink 27 is attached to a lower surface side of the base 25 in an exposed manner, and the heat exhausting sink 10 is arranged inside the casing 24.
- the heat absorbing portion 6B and the heat conductive block 26 are covered with an insulating material 28 inside the casing 24.
- the casing 24 is formed with an opening 24A for air intake on a cylindrical portion 6A side of the Stirling refrigerator 6.
- a lower portion of the casing 24 is formed with an attachment member 24B for fixing the temperature controlling subunit 23.
- a body portion 6D side of the Stirling refrigerator 6 of the casing 24 is formed with opening 24C for air exhaust, and the fan 11 is attached to the opening 24C.
- a through-hole 24D for allowing the heat conductive block 26 to pass through is formed on a lower portion of the casing 24 adjacent to the cylindrical portion 6A of the Stirling refrigerator 6.
- the sealing member 12 is provided in between the outer circumference of the heat exhausting sink 10 and the inner wall of the casing 24, so that the space can be sealed.
- the base 25 is formed with a through-hole 25A in association with the heat conductive block 26, and the outer circumference of the base 25 is formed with a step member 25B in association with the step member 22B, so that the base 25 can fit into the through-hole 22A.
- the inner size of the through-hole 25A is larger than the outer size of the heat conductive block 26, and space between the heat conductive block 26 and the through-hole 25A is sealed by a sealing member 29 which is made of an insulative foam rubber or the like.
- the heat absorbing sink 27 is so formed as to have a size not to protrude from the outer circumference of a lower portion of the base 25.
- the fan 14 is so provided adjacent to the heat absorbing sink 27 as to allow airflow to pass through the heat absorbing sink 27.
- a temperature control effect member B is structured by the heat absorbing portion 6B of the Stirling refrigerator 6, the heat conductive block 26, the heat absorbing sink 27 and the fan 14.
- a non-illustrated operating member is provided on a front side of the casing 24, and a non-illustrated controlling circuit is accommodated in the operating member.
- the temperature controlling subunit 23 is assembled.
- the heat exhausting sink 10 is attached to the heat exhausting portion 6C of the Stirling refrigerator 6,
- the heat conductive block 26 is attached to the heat absorbing portion 6B of the cylindrical portion 6A, and the outer circumferences of the heat absorbing portion 6B and the heat conductive block 26 are covered with the insulating material 28 and the sealing member 29.
- the sealing member 12 is attached to the circumference of the heat exhausting sink 10, the Stirling refrigerator 6 is laterally accommodated in the casing 24.
- the heat conductive block 26 is allowed to pass through the through-hole 24D.
- the fan 11 is attached to the exhausting opening 24C of the casing 24.
- the casing 24 accommodating the Stirling refrigerator 6 is attached to the base 25 by the attachment member 24B, and the heat conductive block 26 is fit through the through-hole 25A of the base 25. At this time, the space between the through-hole 25A and the heat conductive block 26 is sealed by the sealing member 29.
- the heat absorbing sink 27 is attached to a lower end of the heat conductive block 26, and the fan 14 is attached to adjacent to the heat absorbing sink 27.
- the electrical wirings of the Stirling refrigerator 6, the fans 11 and 14 are connected to the non-illustrated controlling circuit, and the controlling circuit is accommodated in the non-illustrated operating member.
- the temperature controlling subunit 23 is assembled thus way. The assembled temperature controlling subunit 23 is attached to the through-hole 22A of the lid 22.
- the base 25 is fitted in and engaged with the through-hole 22A in such a manner as to allow the step member 25B formed on the base 25 of the temperature controlling subunit 23 to mount the step 22B of the through-hole 22A, whereby the temperature controlling subunit 23 is attached to the lid 22.
- the heat absorbing sink 27 is formed to have the size not to protrude from the outer circumference of the lower portion of the base 25, the heat absorbing sink 27 does not interfere with the through-hole 22A when the temperature controlling subunit 23 is attached to the lid 22.
- the temperature controlling unit 21 is structured by attaching the temperature controlling subunit 23 to the lid 22 thus way, it is possible to obtain the temperature controlling units 21 of various sizes, that is, the temperature controlling units 21 that can match the insulating containers 3 of various sizes, by using the common temperature controlling subunit 23 and changing the lid 22 only.
- the lid 22 is covered with an infrared reflection film, but basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus the lids 22 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture the temperature controlling unit 21 inexpensively.
- the operation of the second embodiment will now be explained.
- items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating container 3, and the temperature controlling unit 21 is attached to the opening 3F of the insulating container 3.
- the temperature controlling unit 21 is so attached as to allow the heat absorbing sink 27 and the fan 14 to be in the interior of the insulating container 3.
- the non-illustrated operating member is operated, thereby operating the Stirling refrigerator 6 and the fans 11, 14.
- the heat absorbing portion 6B is brought into a low temperature state
- the heat exhausting portion 6C is brought into a high temperature state.
- the heat absorbing portion 6B brought into the low temperature state absorbs heat from the heat conductive block 26 and the heat absorbing sink 27 both thermally contacting the heat absorbing portion 6B and the air inside the insulating container 3 where the heat absorbing sink 27 is exposed, and conducts this absorbed heat to the heat exhausting portion 6C.
- the heat conducted to the heat exhausting portion 6C is exhausted from the heat exhausting sink 10. As the air inside the insulating container 3 is allowed to flow the heat absorbing sink 27 by the fan 14, it is evenly and efficiently cooled by the Stirling refrigerator 6.
- the insulating container 3 itself is made of a light foam synthetic resin in a tabular shape and an infrared reflection film, it has an extremely light-weight structure, and the temperature controlling unit 21 also has a relatively light-weight structure as including the lid 22 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and the temperature controlling subunit 23 using the relatively light Stirling refrigerator 6. Accordingly, the container 20 using the temperature controlling unit 21 as a whole can have a relatively light-weight structure.
- the interior of the container 20 can be not only efficiently cooled, but also cooled to a very low temperature.
- Reference number 30 denotes a container, and the container 30 comprises a temperature controlling unit 31 and a lid 32.
- the lid 32 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer.
- the lid 32 is openably and closably attached to an opening 33F of a later described insulating container 33 which constitutes the temperature controlling unit 31.
- the temperature controlling unit 31 comprises an insulating container 33 and the temperature controlling subunit 23.
- the insulating container 33 is so structured as to include a right wall 33A, a left wall 33B, a front wall (not illustrated), a rear wall 33D and a bottom wall 33E.
- Each of the walls 33A, 33B, 33D, 33E, and non-illustrated front wall is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and each of the entire surfaces is covered with an infrared reflection film as an infrared reflection layer.
- the surfaces of the walls 33A, 33B, 33D, and 33E, and the non-illustrated front wall to be the outside surface of the container are covered with a cover 34 made of an infrared reflection film.
- the right wall 33A is formed with a through-hole 33G
- the through-hole 33G is formed with a step member 33H
- the step member 25B formed on the outer circumference of the base 25 of the temperature controlling subunit 23 contact the step member 33H in association with the step member 33H, so that the base 25 can fit into the through-hole 33G.
- the Stirling refrigerator 6 inside thereof is in a standing condition, other structures thereof are the same as those of the second embodiment.
- the temperature controlling subunit 23 is assembled.
- the assembling of the temperature controlling subunit 23 is the same as that of the second embodiment.
- the assembled temperature controlling subunit 23 is attached to the through-hole 33G formed in the right wall 33A of the insulating container 33. That is, the base 25 is fitted in and engaged with the through-hole 33G in such a manner as to allow the step member 25B formed on the base 25 of the temperature controlling subunit 23 to contact the step member 33H of the through-hole 33G, whereby the temperature controlling subunit 23 is attached to the insulating container 33.
- the heat absorbing sink 27 since the heat absorbing sink 27 is formed to have the size not to protrude from the outer circumference of the lower portion of the base 25, the heat absorbing sink 27 does not interfere with the through-hole 33G when the temperature controlling subunit 23 is attached to the insulating container 33.
- the temperature controlling unit 31 is structured by attaching the temperature controlling subunit 23 to the insulating container 33 thus way, it is possible to obtain the temperature controlling units 31 of various sizes, that is, the temperature controlling units 31 that can match the lids 32 of various sizes, by using the common temperature controlling subunit 23 and changing the insulating container 33 only.
- each of the walls 33A, 33B, 33D, 33E and the non-illustrated front wall of the insulating container 33 is basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus the insulating containers 33 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture the temperature controlling unit 31 inexpensively.
- the walls 33A, 33B, 33D, 33E and the non-illustrated front wall of the insulating container 33 are individually formed, but they may be integrally formed with one another. The insulating containers 33 of various sizes can be also easily and inexpensively obtained in this case.
- the operation of the third embodiment will now be explained.
- items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating container 33 of the temperature controlling unit 31, and the lid 32 is attached to an opening 33F of the insulating container 33.
- the operation of the temperature controlling subunit 23 is the same as those of the second embodiment.
- the lid 32 itself is made of a light foam synthetic resin in a tabular shape and an infrared reflection film, it has an extremely light-weight structure
- the temperature controlling unit 31 also has a relatively light-weight structure as including the insulating container 33 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and the temperature controlling subunit 23 using the relatively light Stirling refrigerator 6.
- the container 30 using the temperature controlling unit 31 as a whole can have a relatively light-weight structure.
- the insulating container 33 is made of a foam synthetic resin
- the insulating container 33, and further the entire temperature controlling unit 31 can be light and inexpensive, but also the insulating container 33 can be structured in an arbitrary size.
- Reference number 40 denotes a container, and the container 40 comprises a temperature controlling unit 41, a main lid 42 and the insulating container 3.
- the temperature controlling unit 41 comprises a sub-lid 43 formed with a through-hole 43A on a substantial center thereof, and the temperature controlling subunit 5.
- the sub-lid 43 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer.
- the sub-lid 43 is so formed as to have a size partially closing and sealing the opening 3F of the insulating container 3.
- a step member 43B is formed on the through-hole 43A, and the step member 8B, formed on the outer circumference of the base 8 of the temperature controlling subunit 5 in association with the step member 43B, so contacts the step member 43B as to allow the base 8 to fit into the through-hole 43A, whereby the base 8 of the temperature controlling subunit 5 is placed on the sub-lid 43.
- the main lid 42 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer.
- the main lid 42 is openably and closably attached to the opening 3F in such a manner as to close and seal the remaining portion of the opening 3F not closed and sealed by the temperature controlling unit 41.
- the temperature controlling subunit 5 is assembled.
- the assembling of the temperature controlling subunit 5 is the same as that of the first embodiment.
- the assembled temperature controlling subunit 5 is attached to the through-hole 43A formed in the sub-lid 43. That is, the base 8 is fitted in and engaged with the through-hole 43A in such a manner as to allow the step member 8B formed on the base 8 of the temperature controlling subunit 5 to mount on the step 43B of the through-hole 43A, whereby the temperature controlling subunit 5 is attached to the sub-lid 43.
- the heat absorbing sink 9 since the heat absorbing sink 9 is formed to have the size not to protrude from the outer circumference of the lower portion of the base 8, the heat absorbing sink 9 does not interfere with the through-hole 43A when the temperature controlling subunit 5 is attached to the sub-lid 43.
- the temperature controlling unit 41 is structured by attaching the temperature controlling subunit 5 to the sub-lid 43 thus way, it is possible to obtain the temperature controlling units 41 of various sizes, that is, the temperature controlling units 41 that can match the insulating containers 3 and the main lids 42 of various sizes, by using the common temperature controlling subunit 5 and changing the sub-lid 43 only.
- the sub-lid 43 is covered with an infrared reflection film, but basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus the sub-lids 43 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture the temperature controlling unit 41 inexpensively.
- the temperature controlling unit 41 is so attached to the opening 3F of the insulating container 3 as to partially close and seal the opening 3F, and the main lid 42 is so attached to the remaining portion of the opening 3F which is not closed and sealed by the temperature controlling unit 41.
- the temperature controlling unit 41 is so attached as to allow the heat absorbing sink 9 and the fan 14 to be the interior of the insulating container 3.
- the operation of the temperature controlling subunit 5 is the same as those of the first embodiment, and thus explanations thereof will be omitted at here.
- the insulating container 3 and the main lid 42 are made of a light foam synthetic resin in a tabular shape and an infrared reflection film, they have extremely light-weight structure, and the temperature controlling unit 41 also has a relatively light-weight structure as including the sub-lid 43 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and the temperature controlling subunit 5 using the relatively light Stirling refrigerator 6. Accordingly, the container 40 using the temperature controlling unit 41 as a whole can have a relatively light-weight structure.
- the sub-lid 43 and the insulating container 3 are covered with infrared reflection films, it is possible to prevent infrared, that is, heat from entering into the interior of the container 40 from the outside thereof, the interior of the container 40 can be not only efficiently cooled, but also cooled to a very low temperature. Further, as the temperature controlling unit 41 and the main lid 42 are individually provided, the opening 3F of the insulating container 3 included in the container 40 can be easily opened and items to be stored can be easily put into and taken out from the container 40 with the temperature controlling unit 41 attached to the opening 3F and the light main lid 42 opened.
- the fourth embodiment is made of a foam synthetic resin in a tabular shape, in a single-piece manner, the sub-lid 43 and further the entire temperature controlling unit 41 can be light and inexpensive. Moreover, the sub-lid 43 can be easily structured in an arbitrary size.
- Reference number 50 denotes a container, and the container 50 comprises a temperature controlling unit 51 and an insulating container 3.
- the temperature controlling unit 51 comprises a frame 53 which is formed in such a shape that two quadrangles with same widths are arranged as to have respective one edges to come in contact with each other, thereby having the common edge, the main lid 42 openably and closably attached to a first opening 53A as the opening of the frame 53, the sub-lid 43 attached to a second opening 53B, as the opening of the frame 53, and formed with the through-hole 43A on the substantial center thereof, and the temperature controlling subunit 5 to be attached to the through-hole 43A.
- the frame 53 is so formed that the first opening 53A is larger than the second opening 53B.
- the frame 53 is made of a material having small heat conductivity like a synthetic resin, and desirably, engineering plastic of high-strength.
- the main lid 42 and the sub-lid 43 have the same structures as the fourth embodiment.
- foam synthetic resin of the main lid 42 and the sub-lid 43 foam polyurethane, foam polystyrene, etc. can be used.
- one edge of the main lid 42 is freely movably fixed to the frame 53, thereby openably and closably closing and sealing the first opening 53A.
- the sub-lid 43 has, as same as the fourth embodiment, the through-hole 43A formed with the step member 43B for placing the base 8 of the temperature controlling subunit 5.
- the temperature controlling subunit 5 has the same structure as the first embodiment.
- the insulating container 3 has the right wall 3A, the left wall 3B, the front wall 3C, the rear wall 3D, the bottom wall 3E and the lid 16 for the insulating container 3 as the second lid, and it has a foldable structure.
- Each of the walls 3A, 3B, 3C, 3D, and 3E, and the lid 16 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and each of the entire surfaces is covered with an infrared reflection film as an infrared reflection layer.
- the cover 17 is as same as that of the first embodiment.
- the edge of the lid 16 is freely movably attached to the upper end of the cover 17. As the insulating container 3 is foldable, it can save space by folding the walls 3A, 3B, 3C, 3D, 3E and the lid 16 when unused.
- the temperature controlling subunit 5 is assembled and attached to the sub-lid 43.
- the heat absorbing sink 9 does not interfere with the through-hole 43A when the temperature controlling subunit 5 is attached to the sub-lid 43.
- the main lid 42 and the sub-lid 43 with the temperature controlling subunit 5, attached thereto thus way, are attached to the first opening 53A and the second opening 53B, respectively.
- the sub-lid 43 is fixed to the second opening 53B of the frame 53, while the main lid 42 is so attached to the first opening 53A as to allow the one edge thereof to be freely movable for the frame 53. That is, the main lid 42 freely movably attached to the frame 53 openably and closably closes and seals the first opening 53A.
- the temperature controlling unit 51 is structured by attaching the main lid 42 and the sub-lid 43 with the temperature controlling subunit 5 attached thereto, to the frame 53, the same effectiveness as those of the aforementioned embodiments can be obtained by using the common temperature controlling subunit 5 and changing the frame 53, the main lid 42 and the sub-lid 43.
- the main lid 42 and the sub-lid 43 are also covered with an infrared reflection film in this embodiment, but each basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus they can obtain the same effectiveness as those of the aforementioned embodiments.
- the operation of the fifth embodiment will now be explained.
- items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating container 3, and the temperature controlling unit 51 is so attached to the upper end of the insulating container 3 as to close and seal the opening of the insulating container 3.
- the temperature controlling unit 51 is so attached as to allow the frame 53 to contact the upper end of the insulating container 3, that is, as to allow the heat absorbing sink 9 and the fan 14 to be the interior of the insulating container 3.
- the operation of the temperature controlling subunit 5, the main lid 42, the sub-lid 43 and the insulating container 53 are the same as the aforementioned embodiment.
- the frame 53 is made of a low heat-conductive material, it is possible to prevent infrared, that is, heat from entering into the interior of the container 50 from the outside thereof via the frame 53.
- infrared that is, heat from entering into the interior of the container 50 from the outside thereof via the frame 53.
- the container 50 is unused, it can save space by detaching the temperature controlling unit 51 and folding the insulating container 52 as explained above.
- the same effectiveness as those of the aforementioned embodiments can be obtained by the fifth embodiment.
- the frame 53 is made of a synthetic resin or the like as a low heat-conductive material, it is possible to prevent heat from entering into the interior of the container 50 from the outside thereof, and thus the temperature of the interior thereof can be efficiently controlled.
- the present invention is not limited to the aforementioned embodiments, and can be modified within the scope of the present invention.
- a thermo module utilizing the Peltier effect may be used as illustrated in FIG. 12, or a heater may be used as illustrated in FIG. 13.
- the temperature controlling subunit is exposed from the lid, the sub-lid or the insulating container, but it may be so structured as to be accommodated by the lid, the sub-lid or the insulating container.
- the second lid is attached to the insulating container, but it may be an independent lid from the insulating container.
- the main lid is freely movably attached to the frame in the fifth embodiment, but as long as it opens or closes the opening of the frame, it may be freely movably attached to, for instance, the sub-lid.
- the frame is formed with two openings in the fifth embodiment, but it may be formed with one opening and both the main lid and the sub-lid may cover this opening.
- the frame may be formed with more than or equal to three openings, the sub-lid may cover one of the openings, and the other openings may be opened or closed by several main lids.
- the main lid, the sub-lid and the insulating container are made of foam synthetic resins, but other insulating materials, for instance, a vacuum insulation panel or the like may be used.
- a vacuum insulation panel or the like may be used.
- insulation characteristics thereof are improved, thus preventing heat from entering the interior of the container from the outside thereof, whereby the interior of the container can be cooled to further cold temperature and rapidly.
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Abstract
Description
- The present invention relates to a temperature controlling unit and a container using the same, and more particularly, to a container for transportation.
- In general, a conventional container for transportation comprises an insulating container and a cover, both made of foam synthetic resins, and holds solid carbon dioxide, a cold reserving agent or the like inside, thereby cooling the interior of the container. Japanese Unexamined Patent Publication No. 2000-304402 discloses an electronic cooling or heating container comprising an insulating container with an openable and closable lid, in which the insulating container has a built-in cooling or heating unit (corresponding to a temperature controlling unit of the present invention). Japanese Registered Utility Model No. 2553022 discloses a cooling or heating container with a lid which openably and closably covers the opening of an insulating box (corresponding to an insulating container of the present invention), and has a built-in cooling or heating apparatus (corresponding to the temperature controlling unit of the present invention). Japanese Unexamined Patent Publication No. 2001-311576 discloses a cooling box with a lid which openably and closably covers the opening of a box (corresponding to the insulating container of the present invention), and has a built-in a cooling apparatus (corresponding to the temperature controlling unit of the present invention).
- The container which cools the interior by solid carbon dioxide, a cold reserving agent or the like, however, has a problem such that as solid carbon dioxide sublimes or the cold reserving agent melts down due to heat from stored items or heat from the exterior of the container, it takes a lot of trouble for refilling solid carbon dioxide or replacing the cold reserving agent to keep the stored items in the container for a long time. In the case of using solid carbon dioxide, its repetitive use over a long period of time increases not only the amount of the solid carbon dioxide, which eventually increases the running cost, but also the density of carbon dioxide in the atmosphere as the solid carbon dioxide gasifies due to the sublimation. While the containers of the above described Japanese publications neither require such a labor nor suffer such an environmental burden, they are unable to store items with larger volumes than the internal volumes of the containers due to the pre-limited inner volumes, and they are relatively heavy and expensive. Accordingly, there is a problem in using them for transportation.
- The present invention has been made to solve the aforementioned problems, and it is an object of the present invention to provide a container which enables storage of items for a long period at low running cost and allows its volume to be set relatively freely, and a temperature controlling unit which constitutes the container.
- Another object of the present invention is to provide a relatively lightweight and inexpensive container as well as a temperature controlling unit which constitutes the container.
- A temperature controlling unit according to a first aspect of the present invention is a temperature controlling unit which comprises: an insulative lid; and a temperature controlling subunit which includes a temperature controlling device provided on the lid, and includes a temperature control effect member which is thermally exposed at one surface side of the lid.
- The temperature controlling subunit may further include an attachment member for attaching the temperature controlling subunit to the lid.
- The temperature controlling device may include a Stirling refrigerator.
- A container according to a second aspect of the present invention is a container which comprises: an insulating container which has an opening; and the aforementioned temperature controlling unit which is independent of the insulating container, wherein the temperature controlling unit is detachably attached to the opening of the insulating container in such a manner as to close and seal the opening.
- The lid and the insulating container may be made of foam synthetic resins.
- The opening of the insulating container may be openable and closable selectively by the temperature controlling unit or an insulative second lid.
- The temperature control effect member may be thermally exposed at the interior of the insulating container.
- The temperature controlling device may include a Stirling refrigerator.
- A temperature controlling unit according to a third aspect of the present invention is a temperature controlling unit which comprises: an insulative main lid; an insulative sub-lid; and a temperature controlling subunit which includes a temperature controlling device provided on the sub-lid, wherein the temperature controlling subunit includes a temperature control effect member which is thermally exposed at one surface side of the sub-lid.
- The temperature controlling subunit may further include an attachment member for attaching the temperature controlling subunit to the sub-lid.
- The temperature controlling device may include a Stirling refrigerator.
- A container according to a fourth aspect of the present invention is a container which comprises: an insulating container which has an opening; and the temperature controlling unit which is independent of the insulating container, wherein the sub-lid of the temperature controlling unit is detachably attached to the opening of the insulating container in such a manner as to close and seal a portion of the opening, and the main lid of the temperature controlling unit is attached to the opening of the insulating container in such a manner as to close and seal an other portion of the opening.
- The main lid, the sub-lid and the insulating container may be made of foam synthetic resins.
- The temperature controlling device may include a Stirling refrigerator.
- A temperature controlling unit according to a fifth aspect of the present invention is a temperature controlling unit which comprises: a frame which has an opening; an insulative main lid so attached to the frame as to freely open and close a portion of the opening of the frame; an insulative sub-lid so attached to the frame as to cover the other portion of the opening of the frame; and a temperature controlling subunit which is attached to said sub-lid, and includes a Stirling refrigerator, wherein the temperature controlling subunit includes a temperature control effect member thermally exposed at one surface side of the sub-lid.
- The temperature controlling subunit may further include an attachment member for attaching the temperature controlling subunit to the sub-lid.
- A container according to the sixth aspect of the present invention is a container which comprises: an insulating container which has an opening: and the temperature controlling unit which is independent of the insulating container, and is detachably attached to the opening of the insulating container in such a manner as to close and seal the opening.
- The main lid, the sub-lid and the insulating container may be made of insulative materials in tabular shapes.
- The frame may be made of a low heat-conductive material.
- The insulating container may have a foldable structure.
- The main lid and the sub-lid may be covered by an infrared reflection film.
- These objects, other objects, and advantages of the present invention will be more apparent upon reading of the following detailed description and the accompanying drawings in which:
- FIG. 1 is a cross sectional view illustrating the first embodiment of the present invention representing a container using a temperature controlling unit;
- FIG. 2 is an enlarged cross sectional view of the essential parts of the container;
- FIG. 3 is a right side view of the container;
- FIG. 4 is a right side view of the container with the temperature controlling unit detached and a second lid attached;
- FIG. 5 is a cross sectional view illustrating a container using a temperature controlling unit according to the second embodiment of the present invention;
- FIG. 6 is a cross sectional view illustrating a container using a temperature controlling unit according to the third embodiment of the present invention;
- FIG. 7 is a cross sectional view illustrating a container using a temperature controlling unit according to the fourth embodiment of the present invention;
- FIG. 8 is a cross sectional view illustrating a container using a temperature controlling unit according to the fifth embodiment;
- FIG. 9 is an enlarged cross sectional view of the essential parts of the container using the temperature controlling unit;
- FIG. 10 is a plan view illustrating the temperature controlling unit of the container;
- FIG. 11 is a right side view of the container using the temperature controlling unit;
- FIG. 12 is a cross sectional view illustrating a container using a temperature controlling unit according to the sixth embodiment;
- FIG. 13 is a cross sectional view illustrating a container using a temperature controlling unit according to the seventh embodiment of the present invention.
- The first embodiment of the present invention will now be explained with reference to FIGS. 1 to 4.
Reference number 1 denotes a container, and thecontainer 1 comprises atemperature controlling unit 2 and aninsulating container 3. - The
temperature controlling unit 2 comprises alid 4 formed with a through-hole 4A in a substantial center thereof, and atemperature controlling subunit 5. Thelid 4 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer. Astep member 4B is formed on the through-hole 4A, and a later describedbase 8 of thetemperature controlling subunit 5 is placed on thestep member 4B. Thetemperature controlling subunit 5 comprises a Stirlingrefrigerator 6 as a temperature controlling device, acasing 7 for containing the Stirlingrefrigerator 6, and thebase 8 for supporting the Stirlingrefrigerator 6 and thecasing 7. The Stirlingrefrigerator 6 is set up side down. Aheat absorbing sink 9 is attached to aheat absorbing portion 6B, formed on a leading end of acylindrical portion 6A of the Stirlingrefrigerator 6, in a heat-conductive manner, and a heatexhausting sink 10 is attached to aheat exhausting portion 6C formed on a base end of thecylindrical portion 6A in a heat-conductive manner. Theheat absorbing sink 9 is attached to a lower surface side of thebase 8 in an exposed manner, and the heatexhausting sink 10 is arranged in the interior of thecasing 7. A lower portion of thecasing 7 is formed with an opening 7A for air intake and anattachment member 7B for fixing thetemperature controlling subunit 5. An upper portion thereof is formed with an opening 7C for air exhaust, and afan 11 is attached to the opening 7C. A sealingmember 12 is provided in between the outer circumference of theheat exhausting sink 10 and the inner wall of thecasing 7, so that the space can be sealed. A substantial center of thebase 8 is formed with a through-hole 8A, and the outer circumference of thebase 8 is formed with astep member 8B in association with thestep member 4B, so that thebase 8 can fit into the through-hole 4A. The inner diameter of the through-hole 8A is larger than the outer diameter of thecylindrical portion 6A of the Stirlingrefrigerator 6, and space between thecylindrical portion 6A and the through-hole 8A is sealed by a sealingmember 13 which is made of an insulative foam rubber or the like. Theheat absorbing sink 9 is so formed as to have a size not to protrude from the outer circumference of a lower portion of thebase 8. Afan 14 is so provided adjacent to theheat absorbing sink 9 as to allow airflow to pass through theheat absorbing sink 9. A temperature control effect member A is structured by theheat absorbing portion 6B of theStirling refrigerator 6, theheat absorbing sink 9 and thefan 14. An operatingmember 15 is provided on a front side of thecasing 7, and a non-illustrated controlling circuit is accommodated in the operatingmember 15. - The insulating
container 3 is so structured as to include aright wall 3A, aleft wall 3B, afront wall 3C, arear wall 3D, abottom wall 3E and alid 16 for the insulatingcontainer 3 as a second lid. Each of thewalls lid 16 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and each of the entire surfaces is covered with an infrared reflection film as an infrared reflection layer. When assembled as the insulatingcontainer 3, the surfaces of thewalls cover 17 made of an infrared reflection film. The edge of thelid 16 is attached to an upper end of thecover 17. According to the aforementioned structure, it is possible to easily and inexpensively manufacture the insulatingcontainer 3 of an arbitrary size. - Next, how to assemble the
temperature controlling unit 2 of the first embodiment will now be explained. First, thetemperature controlling subunit 5 is assembled. To be more precise, theheat exhausting sink 10 is attached to theheat exhausting portion 6C of theStirling refrigerator 6, and the sealingmember 13 is attached to the outer circumference between theheat absorbing portion 6B and theheat exhausting portion 6C in thecylindrical portion 6A. The sealingmember 12 is attached to the circumference of theheat exhausting sink 10, theStirling refrigerator 6 is accommodated in thecasing 7 with theStirling refrigerator 6 being in a handstand condition. Thefan 11 is attached to theexhausting opening 7C of thecasing 7. Thecasing 7 accommodating theStirling refrigerator 6 is attached to thebase 8 by theattachment member 7B, and thecylindrical portion 6A of theStirling refrigerator 6 is fit through the through-hole 8A of thebase 8. At this time, the space between the through-hole 8A and thecylindrical portion 6A is sealed by the sealingmember 13. Theheat absorbing sink 9 is attached to theheat absorbing portion 6B formed on the leading end of acylindrical portion 6A of theStirling refrigerator 6, and thefan 14 is attached to adjacent to theheat absorbing sink 9. Electrical wirings of theStirling refrigerator 6, thefans member 15. Thetemperature controlling subunit 5 is assembled thus way. The assembledtemperature controlling subunit 5 is attached to the through-hole 4A of thelid 4. That is, thebase 8 is fitted in and engaged with the through-hole 4A in such a manner as to allow thestep member 8B formed on thebase 8 of thetemperature controlling subunit 5 to mount thestep 4B of the through-hole 4A, whereby thetemperature controlling subunit 5 is attached to thelid 4. At this time, as explained above, since theheat absorbing sink 9 is formed to have the size not to protrude from the outer circumference of the lower portion of thebase 8, theheat absorbing sink 9 does not interfere with the through-hole 4A when thetemperature controlling subunit 5 is attached to thelid 4. As thetemperature controlling unit 2 is structured by attaching thetemperature controlling subunit 5 to thelid 4 thus way, it is possible to obtain thetemperature controlling units 2 of various sizes, that is, thetemperature controlling units 2 that can match the insulatingcontainers 3 of various sizes, by using the commontemperature controlling subunit 5 and changing thelid 4 only. Although thelid 4 is covered with an infrared reflection film, but basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus thelids 4 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture thetemperature controlling unit 2 inexpensively. - Next, the operation of the first embodiment will now be explained. First, items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating
container 3, and thetemperature controlling unit 2 is attached to anopening 3F of the insulatingcontainer 3. At this time, thetemperature controlling unit 2 is so attached as to allow theheat absorbing sink 9 and thefan 14 to be in the interior of the insulatingcontainer 3. The operatingmember 15 is operated, thereby operating theStirling refrigerator 6 and thefans Stirling refrigerator 6 operates, theheat absorbing portion 6B is brought into a low temperature state, while theheat exhausting portion 6C is brought into a high temperature state. Theheat absorbing portion 6B brought into the low temperature state absorbs heat from theheat absorbing sink 9 thermally contacting theheat absorbing portion 6B and the air inside the insulatingcontainer 3 where theheat absorbing sink 9 is exposed, and conducts this absorbed heat to theheat exhausting portion 6C. The heat conducted to theheat exhausting portion 6C is exhausted from theheat exhausting sink 10. As the air inside the insulatingcontainer 3 is allowed to flow theheat absorbing sink 9 by thefan 14, it is evenly and efficiently cooled by theStirling refrigerator 6. As thefan 11 operates, fresh air flows in via theopening 7A for air intake of thecasing 7, passes through theheat exhausting sink 10, the surroundings of abody portion 6D of theStirling refrigerator 6 and thefan 11 via the opening 7C for air exhaust, and exhausted to the exterior of thecasing 7. At this time, theheat exhausting sink 10 and thebody portion 6D of theStirling refrigerator 6 are cooled by airflow generated by thefan 11. As the interior of the insulatingcontainer 3 is cooled thus way, the items inside the insulatingcontainer 3 are cooled. As the insulatingcontainer 3 itself is made of a light foam synthetic resin in a tabular shape and an infrared reflection film, it has an extremely light-weight structure, and thetemperature controlling unit 2 also has a relatively light-weight structure as including thelid 4 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and thetemperature controlling subunit 5 using the relativelylight Stirling refrigerator 6. Accordingly, thecontainer 1 using thetemperature controlling unit 2 as a whole can have a relatively light-weight structure. As the surroundings of a foam synthetic resin in a tabular shape forming thelid 4 and the insulatingcontainer 3 are covered with infrared reflection films, it is possible to prevent infrared, that is, heat from entering into the interior of thecontainer 1 from the outside thereof, the interior of thecontainer 1 can be not only efficiently cooled, but also cooled to a very low temperature. In transporting thecontainer 1 that the temperature of the interior thereof is already controlled by thetemperature controlling unit 2, by manpower, as illustrated in FIG. 4, thetemperature controlling unit 2 may be detached and theopening 3F of the insulatingcontainer 3 may be closed and sealed by thelid 16 of the insulatingcontainer 3, when the cooling of thetemperature controlling unit 2 is not required. - As explained above, according to the first embodiment of the present invention, the
temperature controlling subunit 5, using theStirling refrigerator 6 as the temperature controlling device, is attached to theinsulative lid 4, and theheat absorbing sink 9, forming the temperature control effect member A of thetemperature control subunit 5, is thermally exposed at one side of thelid 4 as to work as thetemperature controlling unit 2, whereby the interior of the insulatingcontainer 3 of an arbitrary size, with theopening 3F closed and sealed by thetemperature controlling unit 2, can be cooled, and thus items to be stored can be continuously stored for a longer time compared with solid carbon dioxide and a cold reserving agent conventionally used. As thelid 4 is made of a foam synthetic resin in a tabular shape in a single-piece manner, the first embodiment of the present invention not only enables thelid 4 and further the entiretemperature controlling unit 2 to be light and inexpensive, but also allows thelid 4 to be easily structured in an arbitrary size. Moreover, according to the first embodiment, by attaching thetemperature controlling subunit 5 to thelid 4 by theattachment member 7B, theStirling refrigerator 6 is attached to thelid 4 together with thetemperature controlling subunit 5 by theattachment member 7B, whereby thetemperature controlling units 2 of various sizes can be easily assembled by attaching the commontemperature controlling subunit 5 to thelids 4 of various sizes. As solid carbon dioxide, etc. is not used for the cooling the interior of thecontainer 1, the running cost can be reduced, and environmental burden can be suppressed as gasified carbon dioxide is not generated. Making the insulatingcontainer 3 of foam synthetic resin can make the insulatingcontainer 3 light and inexpensive. Accordingly, not only thewhole container 1 can be made light and inexpensive, but also the insulatingcontainer 3 can be easily structured in an arbitrary size. According to the first embodiment, in transporting thecontainer 1 whose interior is cooled by thetemperature controlling unit 2, by manpower, thetemperature controlling unit 2 may be detached and theopening 3F of the insulatingcontainer 3 may be closed and sealed by thelid 16 of the insulatingcontainer 3, when the cooling of thetemperature controlling unit 2 is not required, whereby thecontainer 1 as a whole when transported by manpower can be made lighter. Further, according to the first embodiment, as the temperature controlling device is theStirling refrigerator 6 which is small in size and light, and able to cool the interior of thecontainer 1 to a very low temperature at low power, the interior of thecontainer 1 can be cooled to a very low temperature at a low running cost, and thecontainer 1 as a whole can have a light-weight structure. - Next, the second embodiment of the present invention will now be explained with reference to FIG. 5. The same structure portions as those of the first embodiment are denoted by the same reference numbers, and explanations thereof will be omitted. A
temperature controlling unit 21 of acontainer 20 comprises alid 22 formed with a through-hole 22A on a substantial center thereof, and atemperature controlling subunit 23. Thelid 22 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer. Astep member 22B is formed on the through-hole 22A, and a later describedbase 25 of thetemperature controlling subunit 23 is placed on thestep member 22B. Thetemperature controlling subunit 23 is so comprised as to include theStirling refrigerator 6 as the temperature controlling device, acasing 24 for containing theStirling refrigerator 6, and thebase 25 for supporting theStirling refrigerator 6 and thecasing 24. TheStirling refrigerator 6 is laterally supported, aheat absorbing sink 27 is attached to theheat absorbing portion 6B, formed on the leading end of thecylindrical portion 6A of theStirling refrigerator 6, in a heat-conductive manner via a heatconductive block 26, and theheat exhausting sink 10 is attached to theheat exhausting portion 6C formed on the base end of thecylindrical portion 6A in a heat-conductive manner. Theheat absorbing sink 27 is attached to a lower surface side of the base 25 in an exposed manner, and theheat exhausting sink 10 is arranged inside thecasing 24. Theheat absorbing portion 6B and the heatconductive block 26 are covered with an insulatingmaterial 28 inside thecasing 24. Thecasing 24 is formed with anopening 24A for air intake on acylindrical portion 6A side of theStirling refrigerator 6. A lower portion of thecasing 24 is formed with anattachment member 24B for fixing thetemperature controlling subunit 23. Abody portion 6D side of theStirling refrigerator 6 of thecasing 24 is formed withopening 24C for air exhaust, and thefan 11 is attached to theopening 24C. A through-hole 24D for allowing the heatconductive block 26 to pass through is formed on a lower portion of thecasing 24 adjacent to thecylindrical portion 6A of theStirling refrigerator 6. The sealingmember 12 is provided in between the outer circumference of theheat exhausting sink 10 and the inner wall of thecasing 24, so that the space can be sealed. Thebase 25 is formed with a through-hole 25A in association with the heatconductive block 26, and the outer circumference of thebase 25 is formed with astep member 25B in association with thestep member 22B, so that the base 25 can fit into the through-hole 22A. The inner size of the through-hole 25A is larger than the outer size of the heatconductive block 26, and space between the heatconductive block 26 and the through-hole 25A is sealed by a sealingmember 29 which is made of an insulative foam rubber or the like. Theheat absorbing sink 27 is so formed as to have a size not to protrude from the outer circumference of a lower portion of thebase 25. Thefan 14 is so provided adjacent to theheat absorbing sink 27 as to allow airflow to pass through theheat absorbing sink 27. A temperature control effect member B is structured by theheat absorbing portion 6B of theStirling refrigerator 6, the heatconductive block 26, theheat absorbing sink 27 and thefan 14. A non-illustrated operating member is provided on a front side of thecasing 24, and a non-illustrated controlling circuit is accommodated in the operating member. - Next, how to assemble the
temperature controlling unit 21 of the second embodiment will now be explained. First, thetemperature controlling subunit 23 is assembled. To be more precise, theheat exhausting sink 10 is attached to theheat exhausting portion 6C of theStirling refrigerator 6, the heatconductive block 26 is attached to theheat absorbing portion 6B of thecylindrical portion 6A, and the outer circumferences of theheat absorbing portion 6B and the heatconductive block 26 are covered with the insulatingmaterial 28 and the sealingmember 29. The sealingmember 12 is attached to the circumference of theheat exhausting sink 10, theStirling refrigerator 6 is laterally accommodated in thecasing 24. At this time, the heatconductive block 26 is allowed to pass through the through-hole 24D. Thefan 11 is attached to theexhausting opening 24C of thecasing 24. Thecasing 24 accommodating theStirling refrigerator 6 is attached to thebase 25 by theattachment member 24B, and the heatconductive block 26 is fit through the through-hole 25A of thebase 25. At this time, the space between the through-hole 25A and the heatconductive block 26 is sealed by the sealingmember 29. Theheat absorbing sink 27 is attached to a lower end of the heatconductive block 26, and thefan 14 is attached to adjacent to theheat absorbing sink 27. The electrical wirings of theStirling refrigerator 6, thefans temperature controlling subunit 23 is assembled thus way. The assembledtemperature controlling subunit 23 is attached to the through-hole 22A of thelid 22. That is, thebase 25 is fitted in and engaged with the through-hole 22A in such a manner as to allow thestep member 25B formed on thebase 25 of thetemperature controlling subunit 23 to mount thestep 22B of the through-hole 22A, whereby thetemperature controlling subunit 23 is attached to thelid 22. At this time, as explained above, since theheat absorbing sink 27 is formed to have the size not to protrude from the outer circumference of the lower portion of thebase 25, theheat absorbing sink 27 does not interfere with the through-hole 22A when thetemperature controlling subunit 23 is attached to thelid 22. As thetemperature controlling unit 21 is structured by attaching thetemperature controlling subunit 23 to thelid 22 thus way, it is possible to obtain thetemperature controlling units 21 of various sizes, that is, thetemperature controlling units 21 that can match the insulatingcontainers 3 of various sizes, by using the commontemperature controlling subunit 23 and changing thelid 22 only. Although thelid 22 is covered with an infrared reflection film, but basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus thelids 22 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture thetemperature controlling unit 21 inexpensively. - Next, the operation of the second embodiment will now be explained. First, items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating
container 3, and thetemperature controlling unit 21 is attached to theopening 3F of the insulatingcontainer 3. At this time, thetemperature controlling unit 21 is so attached as to allow theheat absorbing sink 27 and thefan 14 to be in the interior of the insulatingcontainer 3. The non-illustrated operating member is operated, thereby operating theStirling refrigerator 6 and thefans Stirling refrigerator 6 operates, theheat absorbing portion 6B is brought into a low temperature state, while theheat exhausting portion 6C is brought into a high temperature state. Theheat absorbing portion 6B brought into the low temperature state absorbs heat from the heatconductive block 26 and theheat absorbing sink 27 both thermally contacting theheat absorbing portion 6B and the air inside the insulatingcontainer 3 where theheat absorbing sink 27 is exposed, and conducts this absorbed heat to theheat exhausting portion 6C. The heat conducted to theheat exhausting portion 6C is exhausted from theheat exhausting sink 10. As the air inside the insulatingcontainer 3 is allowed to flow theheat absorbing sink 27 by thefan 14, it is evenly and efficiently cooled by theStirling refrigerator 6. As thefan 11 operates, fresh air flows in via theopening 24A for air intake of thecasing 24, passes through theheat exhausting sink 10, the surroundings of abody portion 6D of theStirling refrigerator 6 and thefan 11 via theopening 24C for air exhaust, and exhausted to the outside of thecasing 24. At this time, theheat exhausting sink 10 and thebody portion 6D of theStirling refrigerator 6 are cooled by airflow generated by thefan 11. As the interior of the insulatingcontainer 3 is cooled thus way, the items inside the insulatingcontainer 3 are cooled. As the insulatingcontainer 3 itself is made of a light foam synthetic resin in a tabular shape and an infrared reflection film, it has an extremely light-weight structure, and thetemperature controlling unit 21 also has a relatively light-weight structure as including thelid 22 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and thetemperature controlling subunit 23 using the relativelylight Stirling refrigerator 6. Accordingly, thecontainer 20 using thetemperature controlling unit 21 as a whole can have a relatively light-weight structure. As the surroundings of a foam synthetic resin in a tabular shape forming thelid 22 and the insulatingcontainer 3 are covered with infrared reflection films, it is possible to prevent infrared, that is, heat from entering into the interior of thecontainer 20 from the outside thereof, the interior of thecontainer 20 can be not only efficiently cooled, but also cooled to a very low temperature. - The same effectiveness as that of the first embodiment can be obtained according to the second embodiment.
- Next, the third embodiment of the present invention will now be explained with reference to FIG. 6. The same structure portions as the aforementioned embodiments are denoted by the same reference numbers, and explanations thereof will be omitted. Explanations of the similar effectiveness will be also omitted here.
Reference number 30 denotes a container, and thecontainer 30 comprises atemperature controlling unit 31 and alid 32. Thelid 32 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer. Thelid 32 is openably and closably attached to anopening 33F of a later described insulatingcontainer 33 which constitutes thetemperature controlling unit 31. - The
temperature controlling unit 31 comprises an insulatingcontainer 33 and thetemperature controlling subunit 23. The insulatingcontainer 33 is so structured as to include aright wall 33A, aleft wall 33B, a front wall (not illustrated), arear wall 33D and abottom wall 33E. Each of thewalls container 33, the surfaces of thewalls cover 34 made of an infrared reflection film. Theright wall 33A is formed with a through-hole 33G, the through-hole 33G is formed with astep member 33H, and thestep member 25B formed on the outer circumference of thebase 25 of thetemperature controlling subunit 23 contact thestep member 33H in association with thestep member 33H, so that the base 25 can fit into the through-hole 33G. In thetemperature controlling subunit 23, theStirling refrigerator 6 inside thereof is in a standing condition, other structures thereof are the same as those of the second embodiment. - Next, how to assemble the
temperature controlling unit 31 of the third embodiment will now be explained. First, thetemperature controlling subunit 23 is assembled. The assembling of thetemperature controlling subunit 23 is the same as that of the second embodiment. The assembledtemperature controlling subunit 23 is attached to the through-hole 33G formed in theright wall 33A of the insulatingcontainer 33. That is, thebase 25 is fitted in and engaged with the through-hole 33G in such a manner as to allow thestep member 25B formed on thebase 25 of thetemperature controlling subunit 23 to contact thestep member 33H of the through-hole 33G, whereby thetemperature controlling subunit 23 is attached to the insulatingcontainer 33. At this time, as explained above, since theheat absorbing sink 27 is formed to have the size not to protrude from the outer circumference of the lower portion of thebase 25, theheat absorbing sink 27 does not interfere with the through-hole 33G when thetemperature controlling subunit 23 is attached to the insulatingcontainer 33. As thetemperature controlling unit 31 is structured by attaching thetemperature controlling subunit 23 to the insulatingcontainer 33 thus way, it is possible to obtain thetemperature controlling units 31 of various sizes, that is, thetemperature controlling units 31 that can match thelids 32 of various sizes, by using the commontemperature controlling subunit 23 and changing the insulatingcontainer 33 only. Although the insulatingcontainer 33 is covered with an infrared reflection film and thecover 34, but each of thewalls container 33 is basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus the insulatingcontainers 33 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture thetemperature controlling unit 31 inexpensively. In the third embodiment, although thewalls container 33 are individually formed, but they may be integrally formed with one another. The insulatingcontainers 33 of various sizes can be also easily and inexpensively obtained in this case. - Next, the operation of the third embodiment will now be explained. First, items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating
container 33 of thetemperature controlling unit 31, and thelid 32 is attached to anopening 33F of the insulatingcontainer 33. The operation of thetemperature controlling subunit 23 is the same as those of the second embodiment. As thelid 32 itself is made of a light foam synthetic resin in a tabular shape and an infrared reflection film, it has an extremely light-weight structure, and thetemperature controlling unit 31 also has a relatively light-weight structure as including the insulatingcontainer 33 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and thetemperature controlling subunit 23 using the relativelylight Stirling refrigerator 6. Accordingly, thecontainer 30 using thetemperature controlling unit 31 as a whole can have a relatively light-weight structure. As the surroundings of a foam synthetic resin in a tabular shape forming thelid 32 and the insulatingcontainer 33 are covered with infrared reflection films, it is possible to prevent infrared, that is, heat from entering into the interior of thecontainer 30 from the outside thereof, the interior of thecontainer 30 can be not only efficiently cooled, but also cooled to a very low temperature. - The same effectiveness as those of the aforementioned embodiments can be obtained by the third embodiment. In addition, according to the third embodiment, as the insulating
container 33 is made of a foam synthetic resin, the insulatingcontainer 33, and further the entiretemperature controlling unit 31 can be light and inexpensive, but also the insulatingcontainer 33 can be structured in an arbitrary size. - Next, the fourth embodiment of the present invention will now be explained with reference to FIG. 7. The same structure portions as the aforementioned embodiments are denoted by the same reference numbers, and explanations thereof and effectiveness will be omitted.
Reference number 40 denotes a container, and thecontainer 40 comprises atemperature controlling unit 41, amain lid 42 and the insulatingcontainer 3. - The
temperature controlling unit 41 comprises a sub-lid 43 formed with a through-hole 43A on a substantial center thereof, and thetemperature controlling subunit 5. The sub-lid 43 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer. The sub-lid 43 is so formed as to have a size partially closing and sealing theopening 3F of the insulatingcontainer 3. Astep member 43B is formed on the through-hole 43A, and thestep member 8B, formed on the outer circumference of thebase 8 of thetemperature controlling subunit 5 in association with thestep member 43B, so contacts thestep member 43B as to allow thebase 8 to fit into the through-hole 43A, whereby thebase 8 of thetemperature controlling subunit 5 is placed on the sub-lid 43. - The
main lid 42 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and its entire surface is covered with an infrared reflection film as an infrared reflection layer. Themain lid 42 is openably and closably attached to theopening 3F in such a manner as to close and seal the remaining portion of theopening 3F not closed and sealed by thetemperature controlling unit 41. - Next, how to assemble the
temperature controlling unit 41 of the fourth embodiment will now be explained. First, thetemperature controlling subunit 5 is assembled. The assembling of thetemperature controlling subunit 5 is the same as that of the first embodiment. The assembledtemperature controlling subunit 5 is attached to the through-hole 43A formed in the sub-lid 43. That is, thebase 8 is fitted in and engaged with the through-hole 43A in such a manner as to allow thestep member 8B formed on thebase 8 of thetemperature controlling subunit 5 to mount on thestep 43B of the through-hole 43A, whereby thetemperature controlling subunit 5 is attached to the sub-lid 43. At this time, as explained above, since theheat absorbing sink 9 is formed to have the size not to protrude from the outer circumference of the lower portion of thebase 8, theheat absorbing sink 9 does not interfere with the through-hole 43A when thetemperature controlling subunit 5 is attached to the sub-lid 43. As thetemperature controlling unit 41 is structured by attaching thetemperature controlling subunit 5 to the sub-lid 43 thus way, it is possible to obtain thetemperature controlling units 41 of various sizes, that is, thetemperature controlling units 41 that can match the insulatingcontainers 3 and themain lids 42 of various sizes, by using the commontemperature controlling subunit 5 and changing the sub-lid 43 only. Although the sub-lid 43 is covered with an infrared reflection film, but basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus thesub-lids 43 of various sizes can be easily and inexpensively obtained. Accordingly, it is possible to manufacture thetemperature controlling unit 41 inexpensively. - Next, the operation of the fourth embodiment will now be explained. First, items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating
container 3, thetemperature controlling unit 41 is so attached to theopening 3F of the insulatingcontainer 3 as to partially close and seal theopening 3F, and themain lid 42 is so attached to the remaining portion of theopening 3F which is not closed and sealed by thetemperature controlling unit 41. At this time, thetemperature controlling unit 41 is so attached as to allow theheat absorbing sink 9 and thefan 14 to be the interior of the insulatingcontainer 3. The operation of thetemperature controlling subunit 5 is the same as those of the first embodiment, and thus explanations thereof will be omitted at here. As the insulatingcontainer 3 and themain lid 42 are made of a light foam synthetic resin in a tabular shape and an infrared reflection film, they have extremely light-weight structure, and thetemperature controlling unit 41 also has a relatively light-weight structure as including the sub-lid 43 made of a foam synthetic resin in a tabular shape and an infrared reflection film, and thetemperature controlling subunit 5 using the relativelylight Stirling refrigerator 6. Accordingly, thecontainer 40 using thetemperature controlling unit 41 as a whole can have a relatively light-weight structure. As the surroundings of a foam synthetic resin in a tabular shape forming themain lid 42, the sub-lid 43 and the insulatingcontainer 3 are covered with infrared reflection films, it is possible to prevent infrared, that is, heat from entering into the interior of thecontainer 40 from the outside thereof, the interior of thecontainer 40 can be not only efficiently cooled, but also cooled to a very low temperature. Further, as thetemperature controlling unit 41 and themain lid 42 are individually provided, theopening 3F of the insulatingcontainer 3 included in thecontainer 40 can be easily opened and items to be stored can be easily put into and taken out from thecontainer 40 with thetemperature controlling unit 41 attached to theopening 3F and the lightmain lid 42 opened. - The same effectiveness as those of the aforementioned embodiments can be obtained by the fourth embodiment. In addition, according to the fourth embodiment, as the sub-lid 43 is made of a foam synthetic resin in a tabular shape, in a single-piece manner, the sub-lid 43 and further the entire
temperature controlling unit 41 can be light and inexpensive. Moreover, the sub-lid 43 can be easily structured in an arbitrary size. - Next, the fifth embodiment of the present invention will now be explained with reference to FIGS. 8 to 11. The same structure portions as the first and fourth embodiments are denoted by the same reference numbers.
Reference number 50 denotes a container, and thecontainer 50 comprises atemperature controlling unit 51 and an insulatingcontainer 3. - The
temperature controlling unit 51 comprises aframe 53 which is formed in such a shape that two quadrangles with same widths are arranged as to have respective one edges to come in contact with each other, thereby having the common edge, themain lid 42 openably and closably attached to afirst opening 53A as the opening of theframe 53, the sub-lid 43 attached to asecond opening 53B, as the opening of theframe 53, and formed with the through-hole 43A on the substantial center thereof, and thetemperature controlling subunit 5 to be attached to the through-hole 43A. - The
frame 53 is so formed that thefirst opening 53A is larger than thesecond opening 53B. Theframe 53 is made of a material having small heat conductivity like a synthetic resin, and desirably, engineering plastic of high-strength. - The
main lid 42 and the sub-lid 43 have the same structures as the fourth embodiment. As the foam synthetic resin of themain lid 42 and the sub-lid 43, foam polyurethane, foam polystyrene, etc. can be used. In the fifth embodiment, one edge of themain lid 42 is freely movably fixed to theframe 53, thereby openably and closably closing and sealing thefirst opening 53A. The sub-lid 43 has, as same as the fourth embodiment, the through-hole 43A formed with thestep member 43B for placing thebase 8 of thetemperature controlling subunit 5. Thetemperature controlling subunit 5 has the same structure as the first embodiment. - The insulating
container 3 has theright wall 3A, theleft wall 3B, thefront wall 3C, therear wall 3D, thebottom wall 3E and thelid 16 for the insulatingcontainer 3 as the second lid, and it has a foldable structure. Each of thewalls lid 16 is made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and each of the entire surfaces is covered with an infrared reflection film as an infrared reflection layer. When assembled as the insulatingcontainer 3, the surfaces of thewalls container 3 are covered with thecover 17. Thecover 17 is as same as that of the first embodiment. The edge of thelid 16 is freely movably attached to the upper end of thecover 17. As the insulatingcontainer 3 is foldable, it can save space by folding thewalls lid 16 when unused. - Next, how to assemble the
temperature controlling unit 51 of the fifth embodiment will now be explained. First, as same as the first and the fourth embodiments, thetemperature controlling subunit 5 is assembled and attached to the sub-lid 43. At this time, as same as the fourth embodiment, theheat absorbing sink 9 does not interfere with the through-hole 43A when thetemperature controlling subunit 5 is attached to the sub-lid 43. - The
main lid 42 and the sub-lid 43 with thetemperature controlling subunit 5, attached thereto thus way, are attached to thefirst opening 53A and thesecond opening 53B, respectively. To be more precise, the sub-lid 43 is fixed to thesecond opening 53B of theframe 53, while themain lid 42 is so attached to thefirst opening 53A as to allow the one edge thereof to be freely movable for theframe 53. That is, themain lid 42 freely movably attached to theframe 53 openably and closably closes and seals thefirst opening 53A. As thetemperature controlling unit 51 is structured by attaching themain lid 42 and the sub-lid 43 with thetemperature controlling subunit 5 attached thereto, to theframe 53, the same effectiveness as those of the aforementioned embodiments can be obtained by using the commontemperature controlling subunit 5 and changing theframe 53, themain lid 42 and the sub-lid 43. Although themain lid 42 and the sub-lid 43 are also covered with an infrared reflection film in this embodiment, but each basically made of an insulative foam synthetic resin in a tabular shape, in a single-piece manner, and thus they can obtain the same effectiveness as those of the aforementioned embodiments. - Next, the operation of the fifth embodiment will now be explained. First, items which were refrigerated or frozen beforehand by a refrigerator or a freezer is taken in the insulating
container 3, and thetemperature controlling unit 51 is so attached to the upper end of the insulatingcontainer 3 as to close and seal the opening of the insulatingcontainer 3. At this time, thetemperature controlling unit 51 is so attached as to allow theframe 53 to contact the upper end of the insulatingcontainer 3, that is, as to allow theheat absorbing sink 9 and thefan 14 to be the interior of the insulatingcontainer 3. The operation of thetemperature controlling subunit 5, themain lid 42, the sub-lid 43 and the insulatingcontainer 53 are the same as the aforementioned embodiment. - According to the fifth embodiment, as the
frame 53 is made of a low heat-conductive material, it is possible to prevent infrared, that is, heat from entering into the interior of thecontainer 50 from the outside thereof via theframe 53. When thecontainer 50 is unused, it can save space by detaching thetemperature controlling unit 51 and folding the insulating container 52 as explained above. - As explained above, the same effectiveness as those of the aforementioned embodiments can be obtained by the fifth embodiment. In addition, according to the fifth embodiment, as the
frame 53 is made of a synthetic resin or the like as a low heat-conductive material, it is possible to prevent heat from entering into the interior of thecontainer 50 from the outside thereof, and thus the temperature of the interior thereof can be efficiently controlled. - The present invention is not limited to the aforementioned embodiments, and can be modified within the scope of the present invention. For instance, whilst the Stirling refrigerator is used as the temperature controlling device in each of the aforementioned embodiments, other, for instance, a thermo module utilizing the Peltier effect may be used as illustrated in FIG. 12, or a heater may be used as illustrated in FIG. 13. In the aforementioned embodiments, the temperature controlling subunit is exposed from the lid, the sub-lid or the insulating container, but it may be so structured as to be accommodated by the lid, the sub-lid or the insulating container. In the above described embodiments, the second lid is attached to the insulating container, but it may be an independent lid from the insulating container.
- The main lid is freely movably attached to the frame in the fifth embodiment, but as long as it opens or closes the opening of the frame, it may be freely movably attached to, for instance, the sub-lid. The frame is formed with two openings in the fifth embodiment, but it may be formed with one opening and both the main lid and the sub-lid may cover this opening. The frame may be formed with more than or equal to three openings, the sub-lid may cover one of the openings, and the other openings may be opened or closed by several main lids.
- The main lid, the sub-lid and the insulating container are made of foam synthetic resins, but other insulating materials, for instance, a vacuum insulation panel or the like may be used. When the main lid, the sub-lid and the insulating container are made of a vacuum insulation panel, insulation characteristics thereof are improved, thus preventing heat from entering the interior of the container from the outside thereof, whereby the interior of the container can be cooled to further cold temperature and rapidly.
Claims (20)
- A temperature controlling unit comprising:an insulative lid; anda temperature controlling subunit which includes a temperature controlling device provided on said lid, and includes a temperature control effect member which is thermally exposed at one surface side of said lid.
- The temperature controlling unit according to claim 1, wherein said temperature controlling subunit further includes an attachment member for attaching said temperature controlling subunit to said lid.
- The temperature controlling unit according to claim 1, wherein said temperature controlling device includes a Stirling refrigerator.
- A container comprising:an insulating container which has an opening; andsaid temperature controlling unit of claim 1 which is independent of said insulating container,
wherein said temperature controlling unit is detachably attached to said opening of said insulating container in such a manner as to close and seal said opening. - The container according to claim 4, wherein said lid and said insulating container are made of foam synthetic resins.
- The container according to claim 4, wherein said opening of said insulating container is allowed to be closed and sealed selectively by said temperature controlling unit or an insulative second lid.
- The container according to claim 4, wherein said temperature control effect member is thermally exposed at an interior of said insulating container.
- The container according to claim 4, wherein said temperature controlling device includes a Stirling refrigerator.
- A temperature controlling unit comprising:an insulative main lid;an insulative sub-lid; anda temperature controlling subunit which includes a temperature controlling device provided on said sub-lid,
wherein said temperature controlling subunit includes a temperature control effect member which is thermally exposed at one surface side of said sub-lid. - The temperature controlling unit according to claim 9, wherein said temperature controlling subunit further includes an attachment member for attaching said temperature controlling subunit to said sub-lid.
- The temperature controlling unit according to claim 9, wherein said temperature controlling device includes a Stirling refrigerator.
- A container comprising:an insulating container which has an opening; andsaid temperature controlling unit of claim 9 which is independent of said insulating container, wherein:said sub-lid of said temperature controlling unit is detachably attached to said opening of said insulating container in such a manner as to close and seal a portion of said opening, andsaid main lid of said temperature controlling unit is attached to said opening of said insulating container in such a manner as to close and seal an other portion of said opening.
- The container according to claim 12, wherein said main lid, said sub-lid and said insulating container are made of foam synthetic resins.
- The container according to claim 12, wherein said temperature controlling device includes a Stirling refrigerator.
- A temperature controlling unit comprising:a frame which has an opening;an insulative main lid so attached to said frame as to freely open and close a portion of said opening of said frame;an insulative sub-lid so attached to said frame as to cover an other portion of said opening of said frame,
wherein said temperature controlling subunit includes a temperature controlling subunit which is attached to said sub-lid, and includes a Stirling refrigerator and a temperature control effect member thermally exposed at one surface side of said sub-lid. - The temperature controlling unit according to claim 15, wherein said temperature controlling subunit further includes an attachment member for attaching said temperature controlling subunit to said sub-lid.
- A container comprising:an insulating container which has an opening: andsaid temperature controlling unit of claim 15 which is independent of said insulating container, and is detachably attached to said opening of said insulating container in such a manner as to close and seal said opening:
- The container according to claim 17, wherein said main lid, said sub-lid and said insulating container are made of insulative materials in tabular shapes.
- The container according to claim 15, wherein said frame is made of a low heat-conductive material.
- The container according to claim 17, wherein said insulating container has a foldable structure.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2004242952A JP4235151B2 (en) | 2004-08-23 | 2004-08-23 | Storage |
JP2004278464A JP2006090665A (en) | 2004-09-24 | 2004-09-24 | Refrigeration unit and cold insulation box using the refrigeration unit |
Publications (2)
Publication Number | Publication Date |
---|---|
EP1630492A2 true EP1630492A2 (en) | 2006-03-01 |
EP1630492A3 EP1630492A3 (en) | 2008-10-29 |
Family
ID=35457463
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP05015587A Withdrawn EP1630492A3 (en) | 2004-08-23 | 2005-07-19 | Temperature controlling unit and container using the same |
Country Status (2)
Country | Link |
---|---|
US (1) | US20060037327A1 (en) |
EP (1) | EP1630492A3 (en) |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE102009023978A1 (en) | 2009-06-05 | 2010-12-09 | Danfoss Compressors Gmbh | Stirling cooler |
DE102009023970A1 (en) | 2009-06-05 | 2011-06-16 | Danfoss Flensburg Gmbh | Stirling cooler |
Families Citing this family (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP3967369B2 (en) * | 2005-08-26 | 2007-08-29 | 松下電器産業株式会社 | Reflector and apparatus provided with the reflector |
CN106880244B (en) * | 2017-03-23 | 2018-02-23 | 佳木斯大学 | A kind of medical thermos cup and application method |
CN108224834A (en) * | 2017-12-26 | 2018-06-29 | 宁波华斯特林电机制造有限公司 | A kind of refrigeration module and the refrigeration equipment using the refrigeration module |
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JPH0253022U (en) | 1988-10-11 | 1990-04-17 | ||
JP2000304402A (en) | 1999-04-23 | 2000-11-02 | Twinbird Corp | Electronic type heating and refrigerating chamber |
JP2001311576A (en) | 2000-04-27 | 2001-11-09 | Sharp Corp | Refrigerator |
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US4723418A (en) * | 1987-04-27 | 1988-02-09 | Whitmer Ii Robert L | Self-contained portable refrigeration unit |
EP0366818A1 (en) * | 1988-11-02 | 1990-05-09 | Leybold Aktiengesellschaft | Cryostatic temperature regulator with a liquid nitrogen bath |
JPH0726784B2 (en) * | 1992-09-25 | 1995-03-29 | 岩谷産業株式会社 | Simple liquid nitrogen production equipment |
JP2001082852A (en) * | 1999-09-09 | 2001-03-30 | Sharp Corp | Refrigerator with thawing chamber |
US6266963B1 (en) * | 1999-10-05 | 2001-07-31 | The Coca-Cola Company | Apparatus using stirling cooler system and methods of use |
US6698210B2 (en) * | 2000-04-27 | 2004-03-02 | Sharp Kabushiki Kaisha | Cold insulating chamber |
JP2002062033A (en) * | 2000-08-11 | 2002-02-28 | Fujitsu General Ltd | Assembled food cooling/warming cabinet |
JP2002090022A (en) * | 2000-09-14 | 2002-03-27 | Sharp Corp | Portable cool-box |
US6581389B2 (en) * | 2001-03-21 | 2003-06-24 | The Coca-Cola Company | Merchandiser using slide-out stirling refrigeration deck |
US6550255B2 (en) * | 2001-03-21 | 2003-04-22 | The Coca-Cola Company | Stirling refrigeration system with a thermosiphon heat exchanger |
JP3930312B2 (en) * | 2001-12-17 | 2007-06-13 | 松下冷機株式会社 | Thermoelectric device, storage provided with the device, and method of assembling the storage |
US6751963B2 (en) * | 2002-09-24 | 2004-06-22 | The Coleman Company, Inc. | Portable insulated container with refrigeration |
JP2004176952A (en) * | 2002-11-25 | 2004-06-24 | Twinbird Corp | Cooling shed |
JP2004225942A (en) * | 2003-01-20 | 2004-08-12 | Twinbird Corp | Low-temperature storage |
-
2005
- 2005-07-19 EP EP05015587A patent/EP1630492A3/en not_active Withdrawn
- 2005-07-20 US US11/185,050 patent/US20060037327A1/en not_active Abandoned
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
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JPH0253022U (en) | 1988-10-11 | 1990-04-17 | ||
JP2000304402A (en) | 1999-04-23 | 2000-11-02 | Twinbird Corp | Electronic type heating and refrigerating chamber |
JP2001311576A (en) | 2000-04-27 | 2001-11-09 | Sharp Corp | Refrigerator |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE102009023978A1 (en) | 2009-06-05 | 2010-12-09 | Danfoss Compressors Gmbh | Stirling cooler |
DE102009023970A1 (en) | 2009-06-05 | 2011-06-16 | Danfoss Flensburg Gmbh | Stirling cooler |
Also Published As
Publication number | Publication date |
---|---|
EP1630492A3 (en) | 2008-10-29 |
US20060037327A1 (en) | 2006-02-23 |
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