WO2002006742A1 - Chambre calorifugee - Google Patents

Chambre calorifugee Download PDF

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Publication number
WO2002006742A1
WO2002006742A1 PCT/JP2001/006314 JP0106314W WO0206742A1 WO 2002006742 A1 WO2002006742 A1 WO 2002006742A1 JP 0106314 W JP0106314 W JP 0106314W WO 0206742 A1 WO0206742 A1 WO 0206742A1
Authority
WO
WIPO (PCT)
Prior art keywords
casing
divided
split
storage
casings
Prior art date
Application number
PCT/JP2001/006314
Other languages
English (en)
Japanese (ja)
Inventor
Makoto Ikemiya
Yuji Fujimoto
Takeshi Kanazawa
Takahisa Kodama
Original Assignee
Daikin Industries, Ltd.
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Daikin Industries, Ltd. filed Critical Daikin Industries, Ltd.
Priority to AU2001272774A priority Critical patent/AU2001272774A1/en
Priority to JP2002512605A priority patent/JP4524991B2/ja
Publication of WO2002006742A1 publication Critical patent/WO2002006742A1/fr

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Classifications

    • AHUMAN NECESSITIES
    • A47FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
    • A47JKITCHEN EQUIPMENT; COFFEE MILLS; SPICE MILLS; APPARATUS FOR MAKING BEVERAGES
    • A47J39/00Heat-insulated warming chambers; Cupboards with heating arrangements for warming kitchen utensils
    • A47J39/006Heat-insulated warming chambers; Cupboards with heating arrangements for warming kitchen utensils for either storing and preparing or for preparing food on serving trays, e.g. heating, thawing, preserving
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D2331/00Details or arrangements of other cooling or freezing apparatus not provided for in other groups of this subclass
    • F25D2331/80Type of cooled receptacles
    • F25D2331/804Boxes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D2400/00General features of, or devices for refrigerators, cold rooms, ice-boxes, or for cooling or freezing apparatus not covered by any other subclass
    • F25D2400/38Refrigerating devices characterised by wheels
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D3/00Devices using other cold materials; Devices using cold-storage bodies
    • F25D3/02Devices using other cold materials; Devices using cold-storage bodies using ice, e.g. ice-boxes
    • F25D3/06Movable containers

Definitions

  • the present invention relates to an insulated warehouse which is transported by being loaded on a truck or the like.
  • the general structure of a heat insulation cabinet is composed of a rectangular parallelepiped casing body of heat insulation structure and a door of heat insulation structure provided on one side of the case body so that it can be closed or kept warm. It is configured to be able to.
  • the above-mentioned insulation box is purchased at the time of the busy season of Zhongyuan season or the year-end season, which is the customary gift season in Japan.
  • the occupancy rate of insulated warehouses decreases, and it becomes necessary to store extra insulated warehouses in separate warehouses.
  • conventional insulated shelves have a structure that cannot be changed in shape, so there has been a problem that the floor occupied area when storing in a warehouse is large. As a result, there was a problem that the storage efficiency was poor.
  • the invention of the present application has been made in view of the above points. By making it possible to change the shape of an insulated box, it is possible to reduce the floor occupied area during storage while securing the storage volume during use, The purpose is to improve efficiency. Disclosure of the invention
  • the present invention takes the following means in order to solve the above problems.
  • the first invention includes a casing body 1 having a heat insulating structure, and a door 2 having a heat insulating structure which is provided on one surface of the casing body 1 so as to be openable and closable, and is configured to be capable of keeping stored items cool or warm. It is intended for insulated sheds.
  • the casing body 1 has a pair of In addition to being composed of divided casings 1A and 1B, it is configured such that one divided casing 1A slide-contains the other divided casing 1B. Further, moving casings 3A and 3B are attached to the bottom of each of the divided casings 1A and 1B.
  • the volume in the casing main body 1 is maximized by extending the divided casings 1A and 1B during use. In other words, the storage capacity of the stored items is maximized.
  • the other divided casing 1B is slidably accommodated in one divided casing 1A to minimize the floor occupied area of the casing body 1.
  • split casing 1A it is also possible to use one split casing 1A in which the other split casing 1B is stored. If this type of usage is selected, the number of insulated sheds that are not used when the transport volume is small can be reduced as much as possible. In other words, the number of insulated warehouses to be stored can be reduced as much as possible.
  • the casing main body 1 is configured to position the other divided casing 1B with respect to the one divided casing 1A at an arbitrary slide storage position. Things.
  • the slide storage position of the other split casing 1B in one split casing .1A can be determined as necessary. As a result, the degree of freedom in the use state increases.
  • the split casings 1A and 1B and the door 2 are formed by filling a heat insulating material 11 between an inner plate 9 and an outer plate 10 made of synthetic resin. It was done.
  • the weight of the heat insulating storage can be reduced. Therefore, transport efficiency can be greatly improved.
  • the split casing 1B is drawn out of the split casing 1A between the split casings 1A and 1B.
  • the first sealing member 12 for maintaining the airtightness between the singles 1A and 1B is It is provided.
  • the fourth aspect of the present invention airtightness in the casing body 1 when the storage volume is used at the maximum can be ensured. As a result, it is possible to maintain the cooling performance or the heat retaining performance of the present level.
  • one of the divided casings 1A and 1B is provided between the divided casings 1A and 1B.
  • a second seal member 15 for maintaining airtightness between the divided casings 1A and 1B is provided.
  • the fifth aspect when the floor occupied area is minimized (minimum storage volume), airtightness in the casing body 1 can be ensured. As a result, it is possible to ensure the cooling performance or the heat retaining performance when used with the minimum storage volume.
  • the first seal member 12 protrudes from a front end of the side surface of the other split casing 1B in the storage direction. It is attached to the back side of the seal holding member 13. A rear end of the one split casing 1A in the sliding direction is provided with a seal receiving member 14 against which the first seal member 12 is pressed against when the other split casing 1B is pulled out. Is provided.
  • airtightness in the casing body 1 in a state where the other divided casing 1B is pulled out can be ensured by a simple structure.
  • the first seal member 12 and the seal holding member 13 are formed as an integrally molded product by two-color molding of a soft synthetic resin and a hard synthetic resin. It is.
  • the number of assembly steps and the manufacturing cost can be reduced by reducing the number of parts.
  • the second seal member 15 is attached to a front end of the other split casing 1B in the storage direction, and the second seal member 15 is stored when the other split casing 1B is stored. It is configured to be pressed against the inner surface of one split casing 1A.
  • the other split casing 1B is formed by a simple structure. The airtightness in the casing main body 1 in a state where the lid is stored can be ensured.
  • any one of the first to eighth inventions when the other split casing 1B slides on both sides of the split casings 1A and 1B, the other split casing is formed.
  • Sliding guide means A for guiding 1B is provided.
  • the sliding operation of the other divided casing 1B into the one divided casing 1A or the pulling-out operation of the other divided casing 1B from the one divided casing 1A is performed by a slide guide. This can be done smoothly by the guidance action of the means A.
  • the slide guide means A includes a guide rail 16 protruding from a side surface of the one divided casing 1A and a side surface of the other divided casing 1B. It is formed by a groove 17 formed and fitted with the guide rail 16.
  • the structure of the slide guide means A can be simplified.
  • the concave groove 17 is formed integrally with the seal holding member 13.
  • the number of assembly steps and the manufacturing cost can be reduced by reducing the number of parts.
  • a twelfth invention is the invention according to any one of the first to eleventh inventions, wherein the casings 3A, 3B are provided at both ends in the sliding direction of the divided casings 1A, 1B. It is.
  • the stability of the casing body 1 can be ensured both during storage and when drawing out.
  • a thirteenth invention is the invention according to any one of the first to twelfth inventions, wherein the other divided casing 1 is stored in the one divided gate sink 1A in the other divided casing 1B.
  • the cutout portion 20 for accommodating the casing 3B of B is formed at the bottom of the one divided casing 1A.
  • the other split casing 1B is drawn from one split casing 1A. In this state, a cover member 21 that covers the notch 20 is provided.
  • the degree of storage at the time of sliding storage of the other divided casing 1B can be maximized.
  • the floor occupied area can be minimized.
  • a complete bottom structure can be secured even when the other split casing 1B is pulled out.
  • the lid member 21 is rotatably attached to the front end of the bottom of the other split casing 1B in the sliding direction.
  • the fifteenth invention comprises a casing body 1 having a heat insulating structure, and a door 2 having a heat insulating structure which is provided on one surface of the casing body 1 so as to be openable and closable, so that it is possible to keep cold or warm the stored items. It is intended for the configured insulation room.
  • the casing body 1 is composed of a pair of divided casings 1A and 1B. Further, each of the divided casings 1A and 1B is configured so as to be connectable to each other and separable from each other in an assembled state for storing a storage item.
  • the two split casings 1A and 1B are configured to store the other split casing 1B in an inverted manner in one split casing 1A.
  • the volume inside the casing main body 1 is maximized by connecting the divided casings 1A and 1B to each other at the time of use.
  • the other divided casing 1B is inverted and stored in one divided casing 1A, so that the floor area occupied by the casing body 1 is minimized.
  • the split casings 1A and 1B are formed by dividing the casing body 1 into two upper and lower parts.
  • the two divided casings 1A and 1B are configured to store the other divided casing 1B upside down in one divided casing 1A.
  • the upper casing split casing 1B is inverted and inserted into the lower casing casing 1A for storage.
  • the split casings 1A and 1B are It is formed by dividing the casing body 1 into two parts at the front and back.
  • the two split casings 1A and 1B are configured to store the other split casing 1B in front and back in one split casing 1A.
  • the rear case split casing 1B is reversed and inserted into the front half split casing 1A for storage.
  • the two divided casings 1A and 1B are formed by dividing the casing body 1 into two diagonally as viewed from above.
  • the two divided casings 1A and 1B are configured to store the other divided casing 1B in the one divided casing 1A in a reversed manner.
  • the rear divided casing 1B is inverted and inserted into the front divided casing 1A for storage.
  • the nineteenth invention provides a heat insulating structure comprising: a casing body 1 having a heat insulating structure; and a door 2 having a heat insulating structure provided on one surface of the casing body 1 so as to be openable and closable, so as to be able to keep the stored items cool or warm. It is intended for warehouses.
  • the casing main body 1 is constituted by a pair of split casings 1A and 1B. Further, each of the divided casings 1A and 1B is configured so as to be connectable to each other and separable from each other in an assembled state for storing articles to be stored.
  • the side surfaces of the at least one split casing 1A, 1B are formed such that the length in the depth direction expands and contracts.
  • the volume inside the casing main body 1 is maximized by connecting the divided casings 1A and 1B having extended side surfaces to each other during use.
  • at least one of the divided casings 1B is reduced in side surface to minimize the floor area occupied by the casing body 1.
  • the side surface of the one split casing 1B is formed so as to be foldable in a plurality of steps in the depth direction in a state where the two split casings 1A and 1B are separated. It was done.
  • the side surface of one split casing 1B is folded and stored in a plurality of stages.
  • a side surface of each of the divided casings 1A and 1B has two sides in a depth direction in a state where both divided casings 1A and 1B are separated. It is formed to be foldable.
  • the side surface of one of the divided casings 1A is formed so as to be able to fold outward, and the side surface of the other divided casing 1B is formed so as to be able to be folded inside.
  • each of the split casings 1A and 1B is configured so that one split casing 1A can be inserted into the other split casing 1B in an assembled state and a separated state.
  • both split casings 1A and 1B are folded in two, and one split casing 1A is inserted into the other split casing 1B and stored.
  • FIG. 1 is a front view of the heat insulating storage according to the first embodiment of the present invention.
  • FIG. 2 is a side view of the heat insulating storage according to the first embodiment of the present invention when the slide is extended.
  • FIG. 3 is a side view of the heat insulation cabinet according to the first embodiment of the present invention when sliding is stored.
  • FIG. 4 is a vertical cross-sectional view of the heat insulating case according to the first embodiment of the present invention when the slide is extended.
  • FIG. 5 is a vertical cross-sectional view of the heat insulation cabinet according to the first embodiment of the present invention when sliding is stored.
  • FIG. 6 is a cross-sectional view taken along line VI-VI of FIG.
  • FIG. 7 is a cross-sectional view taken along line -W in FIG.
  • FIG. 8 is an enlarged cross-sectional view of a main part showing a sealed state when the slide of the heat insulating storehouse according to the first embodiment of the present invention is extended.
  • FIG. 9 is an enlarged perspective view of a main part showing a sealed state when the slide of the heat insulating storehouse according to the first embodiment of the present invention is extended.
  • FIG. 10 is an enlarged exploded perspective view showing the structure of the seal holding member in the heat insulating storage according to the first embodiment of the present invention.
  • FIG. 11 is an enlarged exploded perspective view showing another structure of the seal holding member in the heat insulating storage according to the first embodiment of the present invention.
  • FIG. 12 is a vertical cross-sectional view of the heat storage cabinet according to the second embodiment of the present invention when the slide is stored.
  • FIG. 13 is a perspective view showing an assembled state of the heat insulating storehouse according to the third embodiment of the present invention.
  • FIG. 14 is a perspective view showing a disassembled state of the heat insulating storage according to the third embodiment of the present invention.
  • FIG. 15 is a perspective view of the heat-insulated storehouse according to the third embodiment of the present invention when the storage-side divided casing is inverted.
  • FIG. 16 is a perspective view showing a housed state of the heat insulating storehouse according to the third embodiment of the present invention.
  • FIG. 17 is a perspective view showing an assembled state of the heat insulating storehouse according to the fourth embodiment of the present invention.
  • FIG. 18 is a perspective view showing a disassembled state of the heat insulating storehouse according to the fourth embodiment of the present invention.
  • FIG. 19 is a perspective view of the heat-insulating storage according to the fourth embodiment of the present invention when the storage-side divided casing is inverted.
  • FIG. 20 is a perspective view showing a housed state of the heat insulating storehouse according to the fourth embodiment of the present invention.
  • FIG. 21 is a perspective view showing an assembling state of the heat insulating storehouse according to the fifth embodiment of the present invention.
  • FIG. 22 is a perspective view showing a disassembled state of the heat insulating storehouse according to the fifth embodiment of the present invention.
  • FIG. 23 is a perspective view showing the housed state of the heat insulating storehouse according to the fifth embodiment of the present invention.
  • FIG. 24 is a perspective view showing an assembling state of the heat insulating storehouse according to the sixth embodiment of the present invention.
  • FIG. 25 is a perspective view showing the heat insulating case according to the sixth embodiment of the present invention when disassembled.
  • FIG. 26 is a perspective view showing a folded state of the side plate of the heat insulating storehouse according to the sixth embodiment of the present invention.
  • FIG. 27 is a perspective view showing the housed state of the heat insulating storehouse according to the sixth embodiment of the present invention.
  • FIG. 28 is a perspective view showing an assembling state of a side plate of a heat insulating storehouse according to a modification of the sixth embodiment of the present invention.
  • FIG. 29 is a perspective view showing a side plate of an insulated warehouse before folding according to a modification of the sixth embodiment of the present invention.
  • FIG. 30 is a perspective view showing an assembling state of the heat insulating storehouse according to the seventh embodiment of the present invention.
  • FIG. 31 is a perspective view showing a disassembled state of the heat insulating storehouse according to the seventh embodiment of the present invention.
  • FIG. 32 is a perspective view showing the housed state of the heat insulating storehouse according to the seventh embodiment of the present invention.
  • FIGS. 33 (a) and 33 (b) are a plan view and a side view showing an assembled state of the heat insulating storage according to the seventh embodiment of the present invention.
  • FIGS. 34 (a) and (b) are a plan view and a side view showing a disassembled state of the heat insulating storage according to the seventh embodiment of the present invention.
  • FIGS. 35 (a) and 35 (b) are a plan view and a side view showing a storage state of the heat insulating storage according to the seventh embodiment of the present invention.
  • FIG. 1 to 10 show a heat insulating storage according to a first embodiment of the present invention.
  • the heat insulating cabinet includes a casing body 1 having a heat insulating structure, and a door 2 having a heat insulating structure provided on one surface of the casing body 1 so as to be openable and closable.
  • the heat insulating storage is configured to store a cold storage agent or a heat storage agent in the casing 1 together with the stored items so that the stored items can be kept cold or warm. And the insulation box is loaded on a truck Transported.
  • the casing main body 1 has a vertically long rectangular parallelepiped box shape, and is constituted by a pair of divided casings 1A and 1B.
  • the pair of divided casings 1A and 1B are referred to as a storage-side divided casing 1A and a stored-side divided casing 1B.
  • the storage-side divided casing 1B is configured to be slidingly stored in the storage-side divided casing 1A.
  • Casings 3A, 3A, 3B, 3B are attached to the bottoms of the divided casings 1A, 1B, respectively.
  • the casters 3B, 3B on the storage-side split casing 1B are located inside the casters 3A, 3A on the storage-side split casing 1A (see Fig. 1).
  • an opening 4 for taking in and out of stored articles is formed on the front surface of the storage-side divided casing 1A.
  • the opening 4 is opened and closed by a door 2 pivotally supported by hinges 5 and 5.
  • Locking devices 6 for maintaining the closed state of the door 2 are provided at the upper and lower edges of the opening 4 and at the upper and lower ends of the door 2.
  • an opening 7 through which the storage-side split casing 1B is inserted and removed is formed.
  • a frame 8 for communicating the inside of the storage-side divided casing 1B with the inside of the storage-side divided casing 1A.
  • the storage side split casing 1A and the storage side split casing 1B are provided between an inner plate 9 and an outer plate 10 made of fiber reinforced plastic (hereinafter referred to as FP). It is formed in a heat insulating structure in which a heat insulating material 11 made of urethane foam or the like is filled. Although not shown, the door 2 is also formed in a similar heat insulating structure. When formed in this way, the weight of the heat insulating storage can be reduced as compared with the conventional stainless steel one. As a result, transport efficiency can be greatly improved.
  • the casters 3A, 3A, 3B, 3B are provided at both ends in the sliding direction at the bottom of the split casings 1A, 1B.
  • the key Yasu evening one 3A, 3A, 3B 5 3B is located in a rear portion of the bottom of the front and HiOsamu housed side divided casings 1 B of the bottom of the housing-side divided Ke one single 1A Is provided. like this By doing so, the stability of the casing body 1 can be ensured both during storage and when pulling out.
  • a first seal member 12 for maintaining airtightness is provided. As shown in FIGS. 8 and 9, the first seal member 12 is provided at the front end in the storage direction on the side surface of the storage-side divided casing 1B (in other words, at the outer edge of the opening 8). It is attached to the back side of a seal holding member 13 formed of a ridge having a rectangular cross section and integrally formed on the plate 10.
  • a plate-shaped seal receiving member 14 to which the seal member 12 is pressed is provided.
  • the seal holding member 13 is formed on both sides and the upper surface outside the edge of the opening 8 of the storage-side divided casing 1B.
  • the seal receiving member 14 is formed on both sides and the upper side at the edge of the opening 7 of the storage-side divided casing 1A.
  • the first seal member 12 is provided on both sides of the storage-side split casing 1A and the storage-side split casing 1B when the storage-side split casing 1B is pulled out of the storage-side split casing 1A. Seal the upper side.
  • the reason for this is that, as will be described in detail later, in a state in which the storage-side divided casing 1B is slidingly stored in the storage-side division casing 1A, the casters 3B, This is because it is desired to adopt a configuration in which 3B can be stored in the cutout portion 20 formed at the bottom of the storage side split casing 1A.
  • the airtightness inside the casing body 1 is ensured by a simple structure when the storage capacity is maximized (in other words, when the storage-side divided casing 1B is pulled out). can do. Therefore, it is possible to maintain the cooling performance or the heat retaining performance of the present level.
  • the first seal member 12 and the seal holding member 13 are formed as an integral molded product of two-color molding of a soft synthetic resin and a hard synthetic resin, the assembling due to the reduction in the number of parts is achieved. Man-hours and manufacturing costs can be reduced.
  • a second seal member 15 for holding the pressure is provided.
  • the second seal member 15 is attached to the front end (in other words, the edge of the opening 8) of the storage-side divided casing 1B in the slide storage direction.
  • the second seal member 15 is pressed against the inner surface (specifically, the rim of the opening 4 for the door 2) of the storage-side divided casing 1A when slidingly storing the storage-side divided casing 1B. It is configured as follows.
  • the second seal member 15 is formed on both sides and the upper portion at the edge of the opening 7 of the storage-side divided casing 1B.
  • the second sealing member 15 is configured such that the storage-side divided casing 1B slides into the storage-side divided casing 1A, and the storage-side divided casing 1A and the storage-side Seal both sides and top with split casing 1B.
  • the reason for this is that, as will be described in detail later, in a state where the storage-side divided casing 1B is slidably stored in the storage-side division casing 1A, the casing 1B on the storage-side divided casing 1B side is closed. , 3B can be stored in the cutout 20 formed in the bottom of the storage side split casing 1A.
  • the simple structure allows the split casing 1B to be stored in the split casing 1A on the storage side to minimize the floor occupation area (in other words, the storage capacity is minimized).
  • the airtightness inside the casing body 1 can be ensured. As a result, it is possible to ensure the cooling performance or the heat retaining performance when used with the minimum storage volume.
  • slide guide means A for guiding the split casing 1B to be stored when the split casing 1B to be stored is operated.
  • the slide guide means A includes a guide rail 16 protruding in a sliding direction on a side surface of the storage side split casing 1A, and a guide rail formed on a side surface of the storage side split casing 1B. 16 is provided with a concave groove 17 into which a loose fit is provided. In the present embodiment, the concave groove 17 is As shown in FIG. 10, a slide guide support 19 is formed by fixing a notch recess 18 formed in the seal holding member 13 with a screw 25.
  • the sliding operation of the storage-side split casing 1B into the storage-side split casing 1A or the pull-out operation of the storage-side split casing 1B from the storage-side split casing 1A can be performed by a simple slide. Due to the guide action of the guide means A, it can be performed smoothly.
  • two slide guide means A are provided on the upper and lower parts of the casing body 1 in order to stabilize the slide movement of the storage-side divided casing 1B.
  • the groove 17 can be formed integrally with the seal holding member 13. In this case, the number of assembly steps and the manufacturing cost can be reduced by reducing the number of parts.
  • the bottom of the storage-side split casing 1A is provided with the storage-side split casing 1B in a state where the storage-side split casing 1B is slidingly stored in the storage-side split casing 1A.
  • a cutout 20 for accommodating Casu Yuichi 3B, 3B is formed.
  • Member 21 is provided at the bottom of the storage-side divided casing 1B.
  • the lid member 21 is attached to the front end in the sliding direction (in other words, the lower edge of the opening 8) of the bottom of the storage-side divided casing 1 B via a hinge 22 so as to be freely rotatable in an arc. .
  • a first seal packing 23 for maintaining airtightness is adhered to the upper surface of the edge of the notch 20 in a state where the notch 20 is covered by the lid member 21. Further, a second seal packing 24 for maintaining airtightness in a state where the notch 20 is covered by the lid member 21 is attached to an end surface of the lid member 21 on the hinge mounting side.
  • the volume inside the casing body 1 is maximized by extending the divided casings 1A and 1B.
  • the storage capacity of the stored items is maximized.
  • the storage side divided casing 1B is slidably stored in the storage side divided casing 1A to minimize the floor occupied area of the casing body 1. Therefore, storage efficiency can be greatly improved in the middle season other than the busy season such as the mid-year season and the year-end season.
  • the storage-side divided casing 1B can be used in a state in which the storage-side divided casing 1B is slidingly stored in the storage-side divided casing 1A. If this type of use is selected, the number of insulated warehouses that are not used when the transport volume is small can be reduced as much as possible. In other words, the number of insulated warehouses to be stored can be reduced as much as possible.
  • FIG. 12 shows a heat insulating storehouse according to a second embodiment of the present invention.
  • the cutout portion 20 formed in the first embodiment is not formed at the bottom of the storage-side divided casing 1A. Therefore, when the skin storage side split casing 1B is slidingly stored in the storage side split casing 1A, the casing splitters 3B and 3B on the storage side split casing 1B side are stored on the storage side split casing. It will be in contact with the rim of 1A 7b.
  • the seal holding member 13, the first seal member 12, and the seal receiving member 14 are formed over the entire circumference between the divided casings 1A and 1B.
  • the degree of storage of the storage-side divided casing 1B in the storage-side divided casing 1A is reduced.
  • a complicated structure as in the first embodiment ie, formation of the notch and the lid member
  • the airtightness in the casing body 1 in a state where the storage-side divided casing 1B is pulled out from the storage-side divided casing 1A can be ensured without removing the casing.
  • the other configuration and operation and effect are the same as those of the first embodiment, and thus the description is omitted.
  • the casing body 1 is vertically divided into two to form a pair of divided casings 1A and 1B.
  • the divided casings 1A and 1B are configured so as to be connectable to each other and separable from each other in an assembled state for storing the storage items. Further, the two split casings 1A and 1B are configured to store the other split casing 1B in an inverted manner in one split casing 1A.
  • the casing body 1 is formed in a substantially 10-hedron shape in which the central portion in the up-down direction swells most forward, backward, left and right.
  • the casing body 1 is divided into two parts at the center in the vertical direction, and a storage-side divided casing 1A and a storage-side divided casing 1B are formed.
  • the storage-side divided casing 1A constitutes a lower half of the casing main body 1, and the storage-side divided casing 1B constitutes an upper half of the casing main body 1.
  • the storage-side divided casing 1A is formed in a substantially inverted truncated pyramid shape, and is formed in a shape that expands upward.
  • the storage-side divided casing 1B is formed in a substantially truncated pyramid shape, and is formed in a shape that narrows upward.
  • the storage side divided casing 1A and the storage side divided casing 1B are integrated by abutting the upper end surface of the storage side divided casing 1A and the lower end surface of the storage side divided casing 1B. Is done.
  • the storage-side divided casing 1B is configured to be stored in the storage-side divided casing 1A by being turned upside down.
  • a fixing member 30 for fixing the storage-side divided casing 1A and the storage-side divided casing 1B in an assembled state is provided on a side surface of the casing body 1.
  • a seal member at the time of assembling is provided between the lower end surface of Sing 1B and the unit, not shown.
  • Casing members 3A and 3B are provided at the bottom of the storage-side divided casing 1A.
  • Door 2 is also divided into upper and lower parts.
  • the handle 2a of the door 2 protrudes upward in the storage-side split casing 1A.
  • a recess 31 corresponding to the handle 2a is formed in the housing-side divided casing 1B.
  • the fixing member 30 is released. Thereafter, as shown in FIG. 14, the storage-side divided casing 1B is lifted and separated from the storage-side divided casing 1A. Subsequently, as shown in FIG. 15, the storage-side divided casing 1B is turned upside down. Finally, as shown in FIG. 16, the inverted storage-side divided casing 1B is inserted into the storage-side divided casing 1A to be in a storage state.
  • the casing main body 1 is divided into two parts in the front and rear directions to form a pair of divided casings 1A and 1B.
  • the split casings 1A and 1B are configured to be connectable to each other and separable from each other in an assembled state for storing the storage items. Further, the two divided casings 1A and 1B are configured to store the other divided casing 1B in the other divided casing 1A in an inverted manner.
  • the casing body 1 is formed in a substantially 10-hedron shape in which the central portion in the front-rear direction swells left and right and upwards most.
  • the casing body 1 is divided into two parts at the center in the front-rear direction, and the storage-side divided casing 1A and the storage-side divided casing are separated. 1B is formed. '
  • the storage-side divided casing 1A forms the first half of the casing body 1, and the storage-side divided casing 1B forms the second half of the casing body 1.
  • the storage-side divided casing 1A is formed substantially in the shape of an inverted quadrangular pyramid, and is formed in a shape that expands toward the rear.
  • the storage-side divided casing 1B is formed in a substantially truncated pyramid shape, and is formed in a shape narrowing toward the rear.
  • the storage-side split casing 1A and the storage-side split casing 1B abut the rear end face of the storage-side split casing 1A and the front end face of the storage-side split casing 1B in an assembled state for storing the storage object. Integrated.
  • the storage-side divided casing 1B is configured to be stored in the storage-side divided casing 1A by being turned back and forth.
  • a fixing member 30 for fixing the storage-side divided casing 1A and the storage-side divided casing 1B in an assembled state is provided on a side surface of the casing main body 1.
  • a seal member at the time of assembly is provided between the rear end face of the storage-side split casing 1A and the front end face of the storage-side split casing 1B.
  • casters 3A and 3B are provided at the bottom of the storage-side divided casing 1A and the storage-side divided casing 1B, respectively.
  • the floor plate of the storage-side divided casing 1A is formed so as to be folded in a posture along the door 2.
  • the fixing member 30 is released. Thereafter, as shown in FIG. 18, the storage-side divided casing 1B is moved rearward to be separated from the storage-side divided casing 1A. Subsequently, as shown in FIG. 19, the housing-side divided casing 1B is turned back and forth. Finally, as shown in FIG. 20, the inverted storage-side divided casing 1B is inserted into the storage-side divided casing 1A to be in a storage state.
  • the casing body 1 is divided into two diagonally as viewed from a plane to form a pair of divided casings 1A and 1B.
  • the divided casings 1A and 1B are configured so as to be connectable to each other and separable from each other in an assembled state for storing a storage object. Further, the two divided casings 1A and 1B are configured to store the other divided casing 1B in an inverted manner in one divided casing 1A.
  • the casing body 1 is formed in a vertically long rectangular body.
  • the casing body 1 is divided into two from one corner on a plane to another corner on a diagonal, and the storage-side divided casing 1A and the storage-side divided casing 1B are divided into two. Is formed.
  • the storage-side divided casing 1A constitutes a front portion of the casing body 1, and the storage-side divided casing 1B constitutes a rear portion of the casing body 1.
  • the storage-side divided casing 1A and the storage-side divided casing 1B are formed in a substantially triangular prism shape, and are formed in a shape having an open slope.
  • the storage-side split casing 1A and the storage-side split casing 1B are, in an assembled state for storing articles, an end face of a slope portion between the storage-side split casing 1A and the storage-side split casing 1B. Are integrated with each other.
  • the storage-side divided casing 1B is configured to be stored in the storage-side divided casing 1A by being turned back and forth.
  • a fixing member for fixing the storage-side divided casing 1A and the storage-side divided casing 1B in an assembled state is provided on a side surface of the casing main body 1.
  • a seal member at the time of assembly is provided between the end surface of the slope portion of the storage side split casing 1A and the end surface of the slope portion of the storage side split casing 1B.
  • three casings 3A and 3B are provided at the bottom of the storage-side split casing 1A and the storage-side split casing 1B, respectively.
  • the top plate 40 of the casing body 1 is formed so as to be diagonally folded into two in correspondence with the storage-side divided casing 1A and the storage-side divided casing 1B.
  • the ceiling portion of the storage-side divided casing 1A is formed as a fixed triangular plate-shaped fixed top plate 41.
  • a triangular plate-shaped rotating top plate 42 is movably attached to the oblique side of the fixed top plate 41 by hinges 43.
  • the rotating top plate 42 is configured to form a ceiling portion of the storage-side divided casing 1B during assembly.
  • a floor plate 44 is formed on the floor portion of the storage-side divided casing 1B so as to be folded in a posture along the inner side of the side surface.
  • the floor plate 44 is formed in a rectangular plate shape so as to form a floor between the storage side split casing 1A and the storage side split casing 1B, and can be folded inside the storage side split casing 1B. It is formed in.
  • the fixing is released in a state where the storage-side divided casing 1A and the storage-side divided casing 1B are assembled.
  • the rotating top plate 42 is rotated to overlap the fixed top plate 41 and folded.
  • the storage-side divided casing 1B is moved obliquely rearward and separated from the storage-side divided casing 1A.
  • the storage-side divided casing 1B is turned back and forth.
  • the floor plate 44 is folded inside the storage-side divided casing 1B, and the inverted storage-side divided casing 1B is inserted into the storage-side divided casing 1A to be in a storage state.
  • the casing body 1 is A pair of divided casings 1A and 1B are formed by dividing into two parts, and the side plate 50 is configured to be folded in a bellows shape.
  • the divided casings 1A and 1B are configured so as to be connectable to each other and separable from each other in an assembled state for storing a storage object. Further, the side surfaces of the at least one of the split casings 1A and 1B are formed such that the length in the depth direction expands and contracts.
  • the casing body 1 is formed in a vertically long rectangular body.
  • the casing body 1 is divided into two in the front-rear direction, and a front divided casing 1A and a rear divided casing 1B are formed.
  • the front split casing 1A constitutes the front half of the casing main body 1
  • the rear split casing 1B constitutes the rear half of the casing main body 1.
  • the front split casing 1A corresponds to the storage side split casing 1A of the first embodiment
  • the rear split casing 1B corresponds to the storage side split casing 1 of the first embodiment. B is supported.
  • the front split casing 1A does not include left and right side plates, and is open on both sides.
  • a top plate 40 is provided above the front split casing 1A.
  • the top plate 40 has a rectangular plate-shaped fixed top plate 41 fixed to the front split casing 1A, and a rectangular plate-shaped turn rotatably attached to one side of the fixed top plate 41 by a hinge 43. It comprises a moving plate 42.
  • the rotating top plate 42 is configured to form a ceiling portion of the rear split casing 1B during assembly.
  • a floor plate 44 is formed below the front split casing 1A so as to be folded in a posture along the inside of the door 2. That is, the floor plate 44 is formed in a rectangular plate shape so as to form a floor of the front divided casing 1A and the rear divided casing 1B, and is formed so as to be folded inside the front divided casing 1A. Note that two casters 3A are provided at the bottom of the front end of the front split casing 1A.o
  • the rear split casing 1B is configured such that the side plates 50 are attached to both sides of the back plate 60.
  • the side plate 50 is composed of two main side plates 51 and 52 and one sub-side plate 53 for connection.
  • the corner of the rear end surface of one main side plate 51 is connected to the back plate 60 by itself.
  • the corner of the front end surface of the one main side plate 51 and the corner of the rear end surface of the sub side plate 53 are rotatably connected.
  • the corner of the rear end surface of the other main side plate 51 and the corner of the front end surface of the sub side plate 53 are rotatably connected.
  • the main side plates 51 and 52 and the sub side plate 53 are flush with each other in the unfolded state, and are housed inside the rear split casing 1B along the back plate 60 in the folded state.
  • the top plate 40 and the floor plate 44 have connection grooves 45 into which both upper and lower ends of the side plate 50 are fitted.
  • a projection 61 is formed on the upper end surface of the rear plate 60 of the rear split casing 1B.
  • a connection hole 46 into which the protrusion 61 fits is formed on the lower surface of the rotating top plate 42.
  • the casing body 1 is provided with a fixing member for fixing the front divided casing 1A and the rear divided casing 1B in an assembled state and a stored state.
  • the fixing is released in a state where the front divided casing 1A and the rear divided casing 1B are assembled.
  • the rotating top plate 42 is rotated to overlap the fixed top plate 41 and folded.
  • the rear split casing 1B is moved rearward, the side plate 50 is extracted from the connection groove 45 of the front split casing 1A, and separated from the front split casing 1A. Subsequently, the side plate 50 is folded inside the rear split casing 1B.
  • the rear split casing 1B in which the side plate 50 is folded and the front split casing 1A in which the floor board 44 is folded inward are overlapped and fixed in the front and rear, and are stored.
  • FIG. 28 and FIG. 29 show a modification of the side plate 50.
  • FIGS. 28 and 29 illustrate one main side plate 51 and one sub side plate 53. Therefore, the other main side plate 52 and sub side plate 53 are the same.
  • the main side plate 51 and the sub side plate 53 include an FRP inner plate 71 and an outer plate 72.
  • a resin film 73 is formed on each of the opposing surfaces of the inner plate 71 and the outer plate 72, and an air layer 74 is formed between the resin films 73.
  • a connecting member 75 is provided between the main side plate 51 and the sub side plate 53.
  • the connecting member 75 includes an adhesive piece 76 attached to an end face of the main side plate 51 and an end face of the sub-side plate 53, and a connecting piece 77 connecting the two adhesive pieces 76.
  • the connecting piece 76 and the connecting piece 77 are formed of a soft resin.
  • the air layer 74 is filled with air.
  • the filling of the air separates the inner plate 71 and the outer plate 72, and the adhesive pieces 76 are flattened.
  • the end surface of the main side plate 51 and the end surface of the sub side plate 53 are adjacent to each other and continuous.
  • the air in the air layer 74 is exhausted as shown in FIG.
  • the adhesive piece 76 is deformed, and the end surface of the main side plate 51 and the end surface of the sub side plate 53 are separated.
  • the main side plate 51 and the sub side plate 53 are folded by the adhesive piece 76 and the connecting piece 77.
  • the packing may be attached to the bonding piece 76 so that the packing is located in the gap 78 between the bonding pieces 76.
  • a pair of divided casings 1A and 1B are formed by dividing into two, and the side plate 50 is configured to be able to be folded in two.
  • each of the divided casings 1A and 1B is in an assembled state for storing the stored items. They can be connected to each other and can be separated from each other. Further, the side surfaces of the at least one of the divided casings 1A and 1B are formed such that the length in the depth direction expands and contracts.
  • the casing body 1 is formed in a vertically long rectangular body.
  • the casing body 1 is divided into two in the front-rear direction, and a storage-side divided casing 1A and a storage-side divided casing 1B are formed.
  • the storage-side divided casing 1A forms the first half of the casing body 1
  • the storage-side divided casing 1B forms the latter half of the casing body 1.
  • a side plate 50 is provided on the side of the storage-side split casing 1A.
  • the side plate 50 includes a rectangular plate-shaped fixed side plate 54 fixed to the storage-side divided casing 1A, and a rectangle that is foldable outwardly and rotatably attached to one side of the fixed side plate 54 by a hinge 55. It is composed of a plate-shaped rotating side plate 56.
  • the rotating side plate 56 is configured to form a side surface portion of the storage-side divided casing 1B at the time of assembling the storage object.
  • a top plate 40 is provided above the storage-side divided casing 1A.
  • the top plate 40 has a rectangular plate-shaped fixed top plate 41 fixed to the storage-side divided casing 1A, and a rectangular plate-shaped fixed rotatably attached to one side of the fixed top plate 41 by a hinge 43. It comprises a rotating top plate 42.
  • the rotating top plate 42 is configured to form a ceiling portion of the storage-side divided casing 1B during assembly.
  • the lower part of the storage-side divided casing 1A is open, and no floor plate is provided.
  • a side plate 50 is provided on the side of the housing-side divided casing 1B.
  • the side plate 50 is fixed to the receiving side divided casing 1B in a rectangular plate shape, and is fixed to one side of the fixed side plate 54 by a hinge 55 so as to be inwardly foldable and rotatable.
  • a rotating side plate 56 having a rectangular plate shape. The rotating side plate 56 is configured to form a side surface portion of the storage side divided casing 1A at the time of assembly.
  • the fixed side plate 54 of the storage-side divided casing 1B is biased inward by the thickness of the fixed side plate 54 of the storage-side divided casing 1A. Further, the storage On the inner surface of the fixed side plate 54 in the side split casing 1A, a guide projection 57 for guiding the stored side split casing 1B during storage is formed. A guide projection 57 is fitted on the outer surface of the fixed side plate 54 of the storage-side divided casing 1B, and a guide groove 58 is formed to guide the storage-side divided casing 1B during storage. I have.
  • a floor plate 44 is formed at a lower portion of the storage-side divided casing 1B so as to be folded in a posture along the inside of the door 2.
  • the floor plate 44 is formed in a rectangular plate shape so as to form the floor of the storage-side divided casing 1A and the storage-side divided casing 1B, and is formed inside the storage-side divided casing 1B. It is formed so that it can be folded.
  • the upper part of the storage side split casing 1A is open.
  • four casings 3A and 3B are provided at the bottom of the storage side divided casing 1A and the storage side divided casing 1B.
  • the storage side split casing 1A and the storage side split casing 1B are inserted into the storage side split casing 1A with the rotating side plate 56 expanded, respectively. It is formed in an assembled state.
  • the storage-side split casing 1A and the storage-side split casing 1B are respectively housed in the storage-side split casing 1A with the rotary side plate 56 folded in the storage-side split casing 1B. Is inserted to form a storage state.
  • the casing body 1 is provided with a fixing member for fixing the housing-side divided casing 1A and the housed-side divided casing 1B in an assembled state and a housed state.
  • the fixing is released in a state where the storage side divided casing 1A and the storage side divided casing 1B are assembled. Then, the turning side plate 56 of the storage side split casing 1A is turned outward and folded so as to overlap the fixed side plate 54. Further, the rotating top plate 42 is rotated and folded on the fixed top plate 41.
  • the receiving side split casing 1B is It is moved backward, the side plate 50 is extracted from the side plate 50 of the storage side split casing 1A, and separated from the storage side split casing 1A. Then, the rotating side plate 56 of the storage-side divided casing 1 B is rotated inward and folded so as to overlap the fixed side plate 54. Further, the floor plate 44 is rotated and folded inward. Finally, as shown in FIGS. 32 and 35, the storage-side divided casing 1B in which the side plate 50 and the floor plate 44 are folded is inserted into the storage-side divided casing 1A to be in a storage state.
  • the sliding storage position of the other divided casing 1B into one divided casing 1A in the divided casings 1A and 1B is set to the maximum storage position.
  • the slide storage position of the other divided casing 1B in the divided casing 1A of the first case can be configured to be positioned at an arbitrary position. In that case, the slide storage position of the other divided casing 1B in one divided casing 1A can be determined as necessary, and the degree of freedom in the use state increases.
  • the first invention comprises a casing body 1 having a heat insulating structure, and a door 2 having a heat insulating structure which is provided on one surface of the casing body 1 so as to be openable and closable, so that a stored object can be kept cool or warm.
  • the casing main body 1 has a pair of split casings 1A, 1A, one side of which is slide-contained on the other side, and the moving casings 3A, 3B attached to the bottom of each. B.
  • the volume of the casing body 1 (storage capacity of storage items) is maximized by extending the divided casings 1A and 1B during use. be able to.
  • the other divided casing 1B is slidably accommodated in one divided casing 1A, so that the floor occupied area of the casing 1 can be minimized.
  • the middle season other than the busy season such as the mid-year season or the year-end season.
  • the second invention is configured such that the slide storage position of the other divided casing 1B in one divided casing 1A can be arbitrarily determined.
  • the slide storage position of the other divided casing 1B in one divided casing 1A can be determined as necessary. As a result, the degree of freedom in the use state increases.
  • the split casings 1A and 1B and the door 2 are configured by filling a heat insulating material 11 between an inner plate 9 and an outer plate 10 made of synthetic resin.
  • the weight of the heat insulating storage can be reduced. As a result, the transportation efficiency can be greatly improved.
  • the split casings 1A and 1B are provided between the split casings 1A and 1B in a state where the other split casing 1B is pulled out from one split casing 1A.
  • a first seal member 12 for maintaining the airtightness between them is provided.
  • the airtightness in the casing main body 1 can be ensured when the storage capacity is maximized. As a result, it is possible to maintain the current cooling performance or heat retention performance.
  • the split casings 1A, 1B are provided between the split casings 1A, 1B while the other split casing 1B is slidably accommodated in the split casing 1A.
  • a second seal member 15 for maintaining airtightness between B is provided.
  • the fifth aspect when the floor occupied area is minimized (minimum storage volume), airtightness in the casing body 1 can be ensured. As a result, it is possible to ensure the cooling performance or the heat retaining performance when used with the minimum storage volume.
  • the first sealing member 12 is provided with the other divided casing 1 B It is attached to the rear side of the seal holding member 13 protruding from the front end in the storage direction on the side surface. Further, at the rear end of the one split casing 1A in the sliding direction, a seal receiving member against which the first seal member 12 is pressed in a state where the other split casing 1B is pulled out. 14 are provided.
  • the first seal member 12 and the seal holding member 13 are formed as a two-color molded product of a soft synthetic resin and a hard synthetic resin.
  • the seventh aspect it is possible to reduce the number of assembly steps and the manufacturing cost by reducing the number of parts.
  • the second seal member 15 is attached to the front end of the other divided casing 1B in the slide storage direction, and the one divided casing 1B is stored in the slide of the other divided casing 1B. It is configured to be pressed against the inner surface of 1A
  • the eighth aspect it is possible to secure airtightness in the casing main body 1 in a state in which the other divided casing sink “1B” is housed in a sliding manner with a simple structure.
  • a ninth invention is a slide guide for guiding the other split casing 1B on both sides of the split casing 1A, 1B when the other split casing 1B is operated. Means A is provided.
  • the sliding operation of the other divided casing 1B into the one divided casing 1A or the pulling-out operation of the other divided casing 1B from the one divided casing 1A can be performed. It can be performed smoothly by the operation of the slide guide means A.
  • the slide guide means A is formed on a guide rail 16 protruding from a side surface of the one divided casing 1A and a side surface of the other divided casing 1B.
  • the guide rail 16 has a groove 17 into which the guide rail 16 is loosely fitted. ing.
  • the structure of the slide guide means A can be simplified.
  • the concave groove 17 is formed integrally with the seal holding member 13.
  • the casings 3A and 3B are provided at both ends of the divided casings 1A and 1B in the sliding direction.
  • the stability of the casing body 1 can be ensured both during storage and when being pulled out.
  • the one divided casing 1A is slidably accommodated in the other divided casing 1B at the bottom of the one divided casing 1A.
  • a cutout 20 for accommodating the casters 3B, 3B on the B side is formed, and at the bottom of the other split casing 1B, the other split casing 1B is drawn out from the other split casing 1A.
  • a cover member 21 that covers the notch 20 is provided.
  • the storage degree of the other divided casing 1B when the slide is stored can be maximized.
  • the floor occupied area can be minimized.
  • a complete bottom structure can be ensured even when the other split casing 1B is pulled out.
  • the lid member 21 is rotatably attached to the front end of the bottom of the other split casing 1B in the sliding direction.
  • the casing body 1 is constituted by a pair of divided casings 1A and 1B.
  • Each of the divided casings 1A and 1B is configured to be connectable to each other and separable from each other in an assembled state for storing a storage item. Further, the two divided casings 1A and 1B are connected to one divided casing 1A and the other divided casing 1A. Sing 1B is configured to be inverted and stored.
  • the volume of the casing body 1 (storage volume of the storage items) can be maximized by assembling the divided casings 1A and 1B during use. It can be.
  • the floor space occupied by the casing body 1 can be minimized by storing the other divided casing 1B in one divided casing 1A.
  • the casing main body 1 is constituted by a pair of divided casings 1A and 1B.
  • Each of the divided casings 1A and 1B is configured to be connectable to each other and separable from each other in an assembled state for storing a storage item. Further, the side surfaces of the at least one of the divided casings 1A and 1B are formed such that the length in the depth direction expands and contracts.
  • the capacity of the casing body 1 (storage volume of the storage object) is maximized by assembling the divided casings 1A and 1B. It can be.
  • the floor occupied area of the casing body 1 can be minimized by reducing the length of at least one of the divided casings 1B in the depth direction.
  • the insulated warehouse according to the present invention is useful as a thermally insulated warehouse that is transported by being loaded on a truck or the like, and is particularly suitable for an insulated warehouse that has a large variation in the operation rate.

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  • Engineering & Computer Science (AREA)
  • Food Science & Technology (AREA)
  • Refrigerator Housings (AREA)
  • Legs For Furniture In General (AREA)
  • Packages (AREA)

Abstract

L'invention concerne une chambre calorifugée, comprenant un corps de boîtier (1) permettant de stocker un agent de reformage thermique avec des matériaux stockés en vue d'isoler du froid les matériaux stockés, le corps de boîtier (1) comprenant, en outre, une paire de boîtiers divisés (1A, 1B) stockés de façon coulissante l'un dans l'autre et des roulettes (3A, 3B) destinées à son déplacement sont installées au niveau des parties inférieures des boîtiers et, lorsque la chambre calorifugée est utilisée, les boîtiers divisés (1A, 1B) sont étendus de façon coulissante en vue de maximiser le volume intérieur du corps de boîtier (1) (appelé volume de stockage des matériaux stockés) et, lorsque cette chambre n'est pas utilisée, un des boîtiers divisés (1B) est stocké de façon coulissante dans l'autre boîtier (1A) en vue de minimiser la zone d'occupation au sol du corps de boîtier (1).
PCT/JP2001/006314 2000-07-19 2001-07-19 Chambre calorifugee WO2002006742A1 (fr)

Priority Applications (2)

Application Number Priority Date Filing Date Title
AU2001272774A AU2001272774A1 (en) 2000-07-19 2001-07-19 Heat insulated chamber
JP2002512605A JP4524991B2 (ja) 2000-07-19 2001-07-19 断熱庫

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2000218493 2000-07-19
JP2000-218493 2000-07-19

Publications (1)

Publication Number Publication Date
WO2002006742A1 true WO2002006742A1 (fr) 2002-01-24

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PCT/JP2001/006314 WO2002006742A1 (fr) 2000-07-19 2001-07-19 Chambre calorifugee

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JP (1) JP4524991B2 (fr)
AU (1) AU2001272774A1 (fr)
TW (1) TW500905B (fr)
WO (1) WO2002006742A1 (fr)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2008122413A1 (fr) * 2007-04-04 2008-10-16 Kiersch Composite Gmbh Chariot transporteur pour plats préparés
US9878579B2 (en) 2014-04-01 2018-01-30 Musthane Traction mat

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JPS59188890U (ja) * 1983-06-02 1984-12-14 日本軽金属株式会社 保冷運搬車
JP2001133134A (ja) * 1999-11-04 2001-05-18 Sanyo Electric Co Ltd コールドロールボックス

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JP2627627B2 (ja) * 1987-11-09 1997-07-09 昭和飛行機工業株式会社 保冷コンテナ
JPH087779Y2 (ja) * 1989-08-03 1996-03-04 新日鐵化学株式会社 建物耐火スラブの貫通部防火構造
JPH03199880A (ja) * 1989-12-27 1991-08-30 Sanyo Electric Co Ltd 催事用の冷却ショーケース
JPH0613949B2 (ja) * 1990-04-27 1994-02-23 神鋼ノース株式会社 折り畳み式コールドボックスの製造方法
JP2744146B2 (ja) * 1991-04-26 1998-04-28 株式会社東芝 セパレート形冷蔵庫
JPH0525278U (ja) * 1991-07-17 1993-04-02 カルソニツク株式会社 保冷装置
JP2000130924A (ja) * 1998-10-23 2000-05-12 Chiyoda Integre Co Ltd 折り畳み式保冷箱

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Publication number Priority date Publication date Assignee Title
JPS59188890U (ja) * 1983-06-02 1984-12-14 日本軽金属株式会社 保冷運搬車
JP2001133134A (ja) * 1999-11-04 2001-05-18 Sanyo Electric Co Ltd コールドロールボックス

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2008122413A1 (fr) * 2007-04-04 2008-10-16 Kiersch Composite Gmbh Chariot transporteur pour plats préparés
US9878579B2 (en) 2014-04-01 2018-01-30 Musthane Traction mat

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AU2001272774A1 (en) 2002-01-30
JP4524991B2 (ja) 2010-08-18

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