Thermally insulated transport box and an arrangement in a thermally insulated transport box
11072482 · 2021-07-27
Assignee
Inventors
- Mikko Aminoff (Iisalmi, FI)
- Janne Naukkarinen (Iisalmi, FI)
- Erkki Lindeberg (Iisalmi, FI)
- Jukka Puustinen (Iisalmi, FI)
Cpc classification
F25D3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2303/0845
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2303/08221
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2303/0844
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61J1/165
HUMAN NECESSITIES
F25D23/069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2303/0843
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D81/3813
PERFORMING OPERATIONS; TRANSPORTING
F25D2303/08222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B65D81/18
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a thermally insulated transport box and an arrangement in a thermally insulated transport box, wherein the box comprises a cover and a box body. The box body side walls, end walls, an opening and a bottom wall. The inner surfaces of the side walls comprise half columns projecting from the side wall, wherein the inner surfaces of the end walls further comprise half columns projecting from the end wall, and the half columns run vertically along the side walls and along the end walls. The box further comprises at least one partition wall comprising notches in its opposing edges, and as the partition wall is positioned to cover at least part of the opening the partition wall is supported by the half columns.
Claims
1. A thermally insulated transport box, the thermally insulated transport box comprising a cover and a box body, the box body further comprising side walls, end walls, an opening and a bottom wall, wherein inner surfaces of the side walls comprise half columns projecting from the side wall, inner surfaces of the end walls comprise half columns projecting from the end wall, and the half columns run vertically along the side walls and along the end walls, the thermally insulated transport box further comprises at least one partition wall in the form of a cold or heat accumulator comprising notches in its opposing edges and protrusions and nests on a front face and on a back face of the cold or heat accumulator, said protrusions being arranged to be coupled with corresponding nests of an another accumulator, and said nests being arranged to be coupled with corresponding protrusions of said another accumulator so as to form a use-mode where a face of the accumulator is arranged to be against the face of said another accumulator, the at least one partition wall in the form of the cold or heat accumulator is positionable to an upper part of the box body to cover at least part of the opening, the same partition wall is positionable between adjacent half columns to form a separating wall for creating two horizontally adjacent spaces and the same partition wall is positionable to a lower part of the box body on the bottom wall, the partition wall positionable to the upper part of the box body is supported by the half columns and at least part of the notches of the partition wall align with gaps between the half columns projecting from the side wall to form an air flow path, and the cold or heat accumulator comprising a container for phase-change material.
2. The thermally insulated transport box according to claim 1, wherein both on the front face and on the back face of the cold or heat accumulator, the protrusions and nests are arranged in groups in such way that first group, which is at the first surface area of the respective face of the container, comprises at least three members including at least two protrusions and at least one nest, and the second group, which is at the second surface area of the respective face of the container, comprises at least three members including at least two nests and at least one protrusion, so that when the accumulator is arranged to be in a turned position compared to said another accumulator, the protrusions of the accumulator are arranged against the protrusions of said second accumulator, so as to form an air gap mode, where the face of the accumulator is arranged to be remote from the face of said another accumulator and thereby providing an air gap (G1) between the face of the accumulator and the face of said another accumulator.
3. The thermally insulated transport box according to claim 1, wherein the thermally insulated transport box further comprises at least one separating partition comprising notches in opposing edges of the separating partition, and as the separating partition is positioned to cover at least part of the opening the separating partition is supported by the half columns and at least part of the notches align with gaps between the half columns projecting from the side wall to form an air flow path, and the same separating partition is positionable between adjacent half columns to form a separating wall for creating two horizontally adjacent spaces.
4. The thermally insulated transport box according to claim 3, wherein the same separating partition is positionable to form a supporting surface for one or more cold or heat accumulators, and to form a supporting surface for the transported goods in the lower part of the box body.
5. The thermally insulated transport box according to claim 3, wherein the separating partition comprises lip parts projecting from the edges, and as the separating partition is positioned to the lower part of the box body the lip parts touch the bottom wall and support the separating partition providing an air flow path between the bottom wall and the separating partition.
6. The thermally insulated transport box according to claim 1, wherein the bottom wall comprises a plurality of substantially hemispherically shaped protrusions.
7. The thermally insulated transport box according to claim 6, wherein at least part of the plurality of substantially hemispherically shaped protrusions are aligned in rows in a crosswise direction (w) of the bottom wall, and a gap between two adjacent rows and a gap between two adjacent half columns projecting from the side wall are located substantially at the same location in the lengthwise direction (L) of the box body.
8. The thermally insulated transport box according to claim 6, wherein the box body, the half columns and the plurality of substantially hemispherically shaped protrusions comprise same material and form a unitary piece.
9. The thermally insulated transport box according to claim 1, wherein at least part of the half columns projecting from the side walls extend from the bottom wall to the upper part of the box body.
10. The thermally insulated transport box according to claim 1, wherein the half columns projecting from the side wall project from the side wall by less than half diameter of the half columns.
11. The thermally insulated transport box according to claim 1, wherein as the partition wall is positioned to the lower part of the box body the notches align with the half columns to surround the half column.
12. The thermally insulated transport box according to claim 1, wherein the same partition wall is configured to be rotated between at least a first rotational orientation, in which the partition wall is positioned on the lower part of the box body on the bottom wall, and a second rotational orientation in which the partition wall is positioned on the upper part of the box body and is supported by the half columns, wherein the same partition wall is not positionable on the lower part of the box body when in the second rotational orientation and is not positionable on the upper part of the box body when in the first rotational orientation.
13. An arrangement in a thermally insulated transport box, the arrangement comprising a thermally insulated transport box, the thermally insulated transport box comprising a cover and a box body, the box body comprising side walls, end walls, an opening and a bottom wall, wherein inner surfaces of the side walls comprise half columns projecting from the side wall, inner surfaces of the end walls comprise half columns projecting from the end wall, and the half columns run vertically along the side walls and along the end walls, the thermally insulated transport box comprises two partition walls, the partition wall in a form of a cold or heat accumulator comprising notches in opposing edges of the partition wall and protrusions and nests on a front face and on a back face of the partition wall, said protrusions being arranged to be coupled with corresponding nests of an another accumulator, and said nests being arranged to be coupled with corresponding protrusions of said another accumulator so as to form a use-mode where a face of the accumulator is arranged to be against the face of said another accumulator, the partition wall in the form of the cold or heat accumulator is positionable to an upper part of the box body to cover at least part of the opening, the same partitional wall is positionable between adjacent half columns to form a separating wall for creating two horizontally adjacent spaces and the same partition wall is positionable to a lower part of the box body on the bottom wall, the same partition wall positionable to the upper part of the box body is supported by the half columns and at least part of the notches of the partition wall align with gaps between the half columns projecting from the side wall to form an air flow path, the cold or heat accumulator comprising a container for phase-change material.
14. The arrangement in a thermally insulated transport box according to claim 13, wherein the arrangement comprises two cold or heat accumulators forming two partition walls, and the accumulators are positioned side-by-side to cover the opening, and the accumulators are supported by the half columns.
15. The arrangement in a thermally insulated transport box according to claim 13, wherein in the arrangement the phase-change material in the container of the first accumulator has a different melting/solidifying temperature than the phase-change material in the container of the second accumulator.
16. The arrangement in a thermally insulated transport box according to claim 13, wherein the arrangement further comprises two partition walls positioned side-by-side on the bottom wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following the invention will be described in detail by means of preferred embodiments with reference to the attached drawings, in which
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DETAILED DESCRIPTION OF THE INVENTION
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(26) The inner surfaces of the side walls of the box body 3 comprise half columns 9a projecting from the side wall 4. The inner surfaces of the end walls 5 comprise half columns 9b projecting from the end wall 5. The half columns 9a-b run vertically along the side walls 4 and along the end walls 5 and project inwards. Between two adjacent half columns 9a-b is a gap 10, which comprises a substantially flat wall part.
(27) The box 1 comprises at least one separating partition 11 comprising notches 12 in its opposing edges 13. A separating partition 11 comprises a rectangular shape. As the separating partition 11 is positioned to cover at least part of the opening 6 the separating partition 11 is supported by the half columns 9a-b. The separating partition 11 rests on the ends of the half columns 14. At least part of the notches 12 align with gaps 10a between the half columns 9a projecting from the side wall 4 to form an air flow path.
(28) The heat transfer by conduction occurs via physical contact between the box body 3 and the transported goods 15. The outward curved surface of the half column 9a-b provides a small contact area between the box body 3 and the transported goods 15 inside the box body 3. Thus, the unwanted heat transfer by conduction between the box body 3 and the transported temperature sensitive goods 15 is reduced.
(29) For the sake of clarity, the ambient temperature can be lower than the required temperature inside the thermally insulated transport box 1 whereby the unwanted heat transfer is outwards. Thus, the box 1 can prevent the chilled transported goods 15 from freezing due to ambient cold temperature. The ambient temperature can be higher than the required temperature inside the thermally insulated transport box 1 whereby the unwanted heat transfer is inwards.
(30) Cold accumulators 16 are preferably positioned on the separating partitions 11 supported by the half columns 9a-b to the upper part of the box body 3. As the air cools around the cold accumulators 16 it flows downwards along the formed flow path through the opening provided by the notch 12 and a gap 10 between two adjacent half columns and further down along the gap between two adjacent half columns 10. The half columns 9a act as air flow guides. The formed flow path enhances the convective air flow in the thermally insulated transport box 1. It is also advantageous that a cooled air flows between the transported goods 15 and the side wall 4 of the box body 3.
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(33) In the embodiment the plurality of hemispherically shaped protrusions 18 are aligned in rows in a crosswise direction w of the bottom wall 7. A gap between two adjacent rows 19 and a gap between two adjacent half columns 10a projecting from the side wall 4 are located substantially at the same location in the lengthwise direction L of the box body 3. As the gaps 10a,19a coincide at the junction of a side wall 4 and a bottom wall 7 the flow path for air from the upper part of the box body 3 continues along the bottom wall 7. Additionally, a crosswise w inserted separating partition 11 or a partition wall 22 can then reach the bottom wall 7.
(34) In
(35) In the Figures the box body 3, the half columns 9a-b and the plurality of substantially hemispherically shaped protrusions 18 comprise same material and form a unitary piece. The half columns 9a-b and the plurality of substantially hemispherically shaped protrusions 18 can also comprise separate elements. The half columns 9a-b can be formed with a plate comprising a plurality of half columns and the plate is attached to the box body 3. The half columns 9a-b can also comprise separate single pieces attached to the box body 3 individually. The hemispherically shaped protrusions 18 can be formed with a plate comprising a plurality of hemispherically shaped protrusions 18 and the plate is attached to the box body 3. The hemispherically shaped protrusions 18 can also comprise separate single pieces attached to the box body 3 individually.
(36) In an embodiment, the half column 9a projecting from the side wall 4 projects from the side wall 4 by less than half its diameter.
(37) In an embodiment at least part of the half columns 9a projecting from the side walls 4 extend from the bottom wall 7 to the upper part of the box body 3.
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(39) By the term of substantially similar separating partitions is meant separating partitions having similar outer dimensions, similar notching necessary to form the flow paths and necessary to surround the outer surface of the half column when the separating partition is installed above the bottom wall to the lower part of the box body 3.
(40) In the embodiments, the separating partition 11 comprises lip parts 21 projecting from the edges 13. As the separating partition 11 is positioned to a lower part of the box body 3 the lip parts 21 touch the bottom wall 7 and support the separating partition 11 providing a flow path between the bottom wall 7 and the separating partition 11 as shown in
(41) In the embodiments the separating partition comprises 11 notches 12 in three edges 13.
(42) The notches 12 of the separating partition 11 shown in Figures comprise a curved shape to surround the outer surface of the half column 9a-b when the separating partition is installed above the bottom wall 7 to the lower part of the box body 3.
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(47) The thermally insulated transport box 1 comprises a plurality of substantially similar separating partitions 11. Two of the separating partitions 11 are assembled to the upper part of the box body 3 to form a supporting surface for one or more cold or heat accumulators 16 (not shown).
(48) Two of the separating partitions 11 are assembled on the lower part of the box body 3 and cover the bottom wall 7. The lip parts 21 of the separating partition 11 touch the bottom wall 7 and support the separating partition 11 providing a flow path between the bottom wall 7 and the separating partition 11. The separating partitions 11 form a supporting surface for the transported goods 15 (not shown). Further, if the one or more cold or heat accumulators 16 are positioned on the bottom wall 7, the separating partition 11 supported to the bottom wall 7 pros vides a separating wall preventing freezing or overheating of the transported goods 15.
(49) Two of the separating partitions 11 are assembled opposite each other to form an enclosure for one or more cold or heat accumulators 16. This enclosure comprising two separating partitions 11 forms a separating wall creating two in the lengthwise L of the box body 3 adjacent spaces 20a-b.
(50) The separating partition 11 is slidable in vertical direction between two adjacent half columns 9a projecting from a side wall 4. When assembled the separating partition 11 extends between the two opposing side walls 4 forming a separating wall whereby creating two adjacent spaces 20a-b to the box body 3. The half columns 9a projecting from the first side wall 4 support the first end of the separating partition and the half columns 9a projecting from the second side wall 4 support the second end of the separating partition 11. The half columns 9a keep the separating partition 11 in an upright position.
(51) An accumulator 16 comprising phase change material is advantageous in providing passive cooling or heating in the thermally insulated transport box 1. A phase change material with a high heat of fusion that through melting and solidifying at a certain temperature is capable of storing and releasing large amounts of energy. A cold accumulator and a heat accumulator suitable for the thermally insulated transport box 1 comprises a phase change material, which has its melting/solidifying temperature at a temperature range −50° C. . . . +85° C.
(52) During the transportation of the transported goods 15 or during a temporary storing of transported goods 15 the thermally insulated transport box 1 can comprise cold accumulators 16 comprising phase change material, which have different melting/solidifying temperatures. The thermally insulated transport box 1 can also comprise heat accumulators 16 comprising phase change material, which have different melting/solidifying temperatures. By means of the cold accumulators 16 providing cold at different temperatures the temperature distribution inside the thermally insulated transport box 1 can be created and controlled. By means of the heat accumulators 16 providing heat at different temperatures the temperature distribution inside the thermally insulated transport box 1 can be created and controlled.
(53) For instance, in
(54) The cold or heat content of a thermally insulated transport box 1 depends on the amount of filling and the thermal capacity of the filling inside the box. The shape of the interior face of the thermally insulated transport box 1 provides a substantially rectangular shaped packing space. The substantially rectangular shaped packing space allows an effective use of a packing space thus providing a high filling ratio and a large carrying capacity. It allows also an easier packing operation that saves time.
(55) The arranged cold air circulation within the thermally insulated transport box together with the reduced heat transfer by conduction between the box body 3 and the transported goods 15 results in a reduced thickness of the box body 3. This increases capacity inside the box. Therefore, the thermally insulated transport box 1 requires less space to transport a given volume of goods making more efficient use of transport volume. The reduced thickness of the box body 3 also reduces the weight of the thermally insulated transport box, which is important when the box 1 is carried by a human.
(56) Many vaccines are freeze sensitive, including cholera and inactivated polio vaccines, and the risk of freezing has to be minimized. The separating partitions 11 within the thermally insulated transport box 1 prevent a direct contact of a cold accumulator 16 and the transported goods 15 thus preventing a thermal shock. The use of an accumulator 16 comprising phase change material having an operating temperature at a range +2° C. . . . +8° C. also prevents freezing. Preferably, when the thermally insulated transport box 1 is used for transporting vaccines the phase change material has a melting temperature at a temperature range −2° C. . . . 0° C.
(57) The thermally insulated transport box may comprise one or more partition walls 22. The partition wall 22 is a separate part and its end is slidable between adjacent half columns 9a projecting from a side wall 4. When assembled the partition wall 22 extends between the two opposing side walls 4 creating two adjacent spaces. The half columns 9a projecting from the first side wall 4 support the first end of the partition wall 22 and the half columns 9a projecting from the second side wall 4 support the second end of the partition wall 22. The half columns 9a keep the partition wall in an upright position. The partition wall 22 is made of plate material, e.g. expanded polypropylene (EPP), for instance.
(58) The thermally insulated transport box 1 may comprise one or more partition walls 22,22b which is formed from a cold accumulator or a heat accumulator A1,A2. The partition walls 22,22b being a cold or heat accumulators may be used in the thermally insulated transport box 1 instead of a separating partitions 11, or together with one or more separation partitions 11. Alternative types of partition walls 22,22b are shown in
(59) Referring to
(60) The thermally insulated transport box 1 may also comprises a continuous temperature monitor to record the temperature a thermally insulated transport box. The temperature monitoring is preferably made by a real-time monitoring device 23 capable of sending data wireless to a receiver. The receiver may be a network server or a cloud, for instance. The thermally insulated transport box 1 may also comprise a releasable display on its outer surface for convenience. The temperature monitoring device 23 is preferably attached to a separating partition 11 comprising a mounting tray 24 for the temperature monitoring device 23, or to a partition wall 22 comprising a mounting tray 24 for the temperature monitoring device 23. The temperature monitoring device 23 can also be in a close vicinity of the transported goods 15 during the transportation. The effect of attaching the temperature monitoring device 23 to a separating partition 11 or to a partition wall 22 supporting a cold accumulator or a heat accumulator 16 is that it provides information on the change of the temperature inside the thermally insulated transport box 1 before the change reaches the transported goods 15.
(61) The thermally insulated transport box 1 may also comprise a separate moisture-absorbing member. The moisture-absorbing member can comprise a moisture absorbing polymer mat, for instance. The moisture-absorbing member is preferably positioned on the bottom wall 7, or it is positioned to surround the transported goods 15.
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(63) The lower part of the box body 3 comprises two separating partitions 11 positioned parallel above the bottom wall 7 and supported by the lip parts 21 touching the bottom wall 7. The separating partitions 11 support the transported goods 15 positioned in the box body 3. The separating partitions 11 form a lower surface in the box body 3.
(64) The upper part of the box body 3 comprises a separating partition 11 and a partition wall 22 formed from a cold accumulator or a heat accumulator. The separating partition 11 and the partition wall 22 are supported by the half columns of the side walls and end walls. The separating partition 11 and a partition wall 22 form an upper surface in the box body 3. The upper surface may comprise also two separating partitions 11.
(65) The space between the lower surface and the upper surface inside the box body 3 is split into two spaces 20a-b by means of a partition wall 22. The partition wall 22 comprises two partition walls 22 laid together. The partition wall 22 is formed from a cold accumulator or a heat accumulator. The spaces 20a-b are on the same horizontal level. Each space 20a-b comprises transported goods 15.
(66) The separating partition 11 comprises a mounting tray 24 for a temperature monitoring device 23.
(67) The partition walls 22 formed from cold or heat accumulators comprise phase change material. The together laid cold or heat accumulators forming the partition wall 22 in the crosswise direction w of the box body 3 have different melting/solidifying temperatures.
(68) The arrangement comprises a cold or heat accumulator laid on the separating partition 11 on the upper part of the box body 3 (not shown).
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(70) The same partition wall 22b is positionable between a gap 10a between adjacent half columns 9a to form a separating wall for creating two horizontally adjacent spaces 20c-d in the lengthwise direction L of the box body 3 as shown in
(71) As shown in Figures, the inner surface of the side wall 4 comprises half columns along the length of the side wall 4. The partition wall 22,22b and/or the separating partition 11 can then be positioned to the gap 10 between the half columns 9a to any location in the lengthwise direction L of the thermally insulated transport box 1. The length of the created spaces can then be adjusted based on the dimensions of the transported goods 15.
(72) The cold or heat accumulator A1,A2 forming a partition wall 22b comprises a container C1 for phase-change material, said container comprising a front face FF1, a back face BF1 on the rear side of the container C1 and side ends SE1-SE4 between the front face FF1 and the back face BF1. The cold or heat accumulator A1 on front face FF1 and on the back face BF1 comprises protrusions PR111-PR113, PR121-PR123 and nests N111-N113, N121-N123, said protrusions PR111-PR113 of the accumulator A1 being arranged to be coupled with corresponding nests N221-N223 of an another accumulator A2, and said nests N111-N113 of the accumulator A1 being arranged to be coupled with corresponding protrusions of said another accumulator A2 so as to form a use-mode where the face FF1 of the container C1 of the accumulator A1 is arranged to be against the face BF2 of said another accumulator A2.
(73) In
(74)
(75) The arrangement of
(76) The shown arrangement in
(77)
(78) In
(79) Referring especially to
(80) In
(81) The notches 12 of the cold or heat accumulator A1,A2 shown in
(82) The cold or heat accumulator A1,A2 is slidable in vertical direction between two adjacent half columns 9a projecting from a side wall 4. When assembled the cold or heat accumulator A1,A2 extends between the two opposing side walls 4 forming a separating wall whereby creating two adjacent spaces 20c-d to the box body 3. The half columns 9a projecting from the first side wall 4 support the first end of the cold or heat accumulator A1,A2 and the half columns 9a projecting from the second side wall 4 support the second end of the cold or heat accumulator A1,A2. The half columns 9a keep the cold or heat accumulator A1,A2 in an upright position. Preferably, a tight stack, i.e. the face of the container of the accumulator is arranged to be against the face of another accumulator, comprising two stacked cold or heat accumulators fits between two adjacent half columns.
(83) As the air cools around the cold or heat accumulator A1,A2, i.e. the partition wall 22b, it flows downwards along the formed flow path through the opening provided by the notch 12 and a gap 10 between two adjacent half columns 9a,b and further down along the gap between two adjacent half columns 10.
(84) The container C1 of the first accumulator A1 comprises a front face FF1, a back face BF1 on the rear side of the container C1 and side ends SE1-SE4 between the front face FF1 and the back face BF1.
(85) On the front face FF1 and on the back face BF1, the container C1 comprises protrusions and nests.
(86) On the front FF1 face of the container C1, there are three protrusions PR111-PR113, so that protrusions PR111, PR112 are on the first (in
(87) Referring to
(88) Regarding the second freeze accumulator A2 having a container C2, the front face FF2 of the accumulator A2 is shown in the left side of the
(89) Referring to the back face BF2 of second accumulator A2 shown in upper part of
(90) Regarding
(91) Referring to
(92) Correspondingly in
(93) The above configuration of protrusions and nests is true also for the other accumulators A2-A3.
(94) If the accumulators A1-A2 of
(95) Compared to above, regarding a different position (according to
(96) When creating the stacks with gaps G1-G2, there is also an alternative to already mentioned turning/flipping the accumulator (like A2) 180 degrees around the longitudinal axis of the accumulator, as was shown in
(97) The configuration of protrusions and nests in accumulators A2-A3 are as disclosed regarding the accumulator A1.
(98) Regarding the protrusions and nests, the interrelation between accumulators A2 and A3 is as disclosed regarding the interrelation between accumulators A1 and A2.
(99) In
(100) Referring to above, when wishing to create stack with gaps G1, G2 as shown in
(101) Longitudinal axis is running in the vertical direction in
(102) As stated above, protrusions and nests are arranged in groups in such way that first group, which is at the first surface area SA111 of the respective face FF1 of the container C1, comprises at least three members including at least two protrusions PR111, PR112 and at least one nest N113. Additionally, the second group, which is at the second surface area SA112 of the respective face FF1 of the container C1, comprises at least three members including at least two nests N111, N112 and at least one protrusion PR113. Referring to this, there are the following preferred embodiments.
(103) In an embodiment, on the face FF1 of the container C1 the first group located on said first surface area SA111 and the second group located on said second surface area SA112 are next to different side ends SE1-SE4 of the container. In a further specified embodiment as shown in figures, on the face FF1 of the container C1, the first group locating on said first surface area SA111 and second group locating on said second surface SA112 area are next to opposing side ends SE1, SE3 of the container C1. In a further embodiment, on the face FF1 of the container C1, the first group locating on said first surface area SA111 and second group locating on said second surface area SA112 are parallel with each other. In other words the line/row comprising protrusion PR111, nest N113 and protrusion PR112 is parallel with the line/row comprising nest N111, protrusion PR113 and nest N112.
(104) The same is true also at the back (rear) face BF1 shown in
(105) Referring especially to
(106) In this context it is important to understand that even though
(107) In an embodiment, one or more protrusion, such as PR111, PR113 comprise a support structure SS111, SS113 for positioning the protrusion of the accumulator A1 against the protrusion of another accumulator A2, so as the create support against transversal movement of the accumulators A1, A2. In a further embodiment, at least three protrusions (on each face), such as PR111-PR113, PR121-PR123 comprise support structure thereof.
(108) On the front face FF1, as can be seen from example from the
(109) For example, regarding
(110) Regarding
(111) If recess-wall SS111 at the end face of protrusion PR111 at front face FF1 of accumulator A1 is regarded as first type of positioning structure, then the curved shape SS112 of protrusion PR112 can be regarded as second type of support structure for positioning, because it co-operates with recess-wall SS221 of protrusion PR221 at accumulator A2.
(112) Referring to
(113) As can be seen from
(114) Since the protrusions and steps thereof extend in the vertical direction, the “higher” and “lower” are to be understood as compared to the surface of the container, not to understood as which step in higher from the ground.
(115) Referring to
(116) Yet another feature highlighting the mirror-symmetry of the configuration of protrusions and nests is as is described in an embodiment: At the same longitudinal line on which there is a protrusion in the first group at the first surface area SA111 of the respective face FF1 of the container C1, there is a nest at the second group at the second surface area of the respective face of the container. In other words, at the same longitudinal line there is protrusion PR111 and nest N111, and at the same longitudinal line there is protrusion PR112 and nest N112. Correspondingly, at the same longitudinal line on which there is a nest N113 in the first group at the first surface area SA111 of the respective face FF1 of the container C1, there is a protrusion PR113 at the second group at the second surface area.
(117) Regarding an additional role for the protrusions, in an embodiment, protrusions provide an air gap in relation to bottom wall or other wall of the box into which box the freeze accumulator is inserted.
(118) The above configuration of protrusions and nests is true also for the other similar accumulators A2-A3.
(119) Referring to
(120) The above mentioned structures are suitable for not only cold accumulators but also for heat accumulators.
(121) In the figures, SIL1 and SIL2 refer to sealed/closed input that has been used when filling the containers C1, C2 with phase-change material.
(122) The disclosed embodiments relate to accumulator where the basic shape of the accumulator and especially the setting, formed from the location of groups having protrusions/nest or nests/protrusion, is rectangular. However a square-based form is also possible, and in that case there is a group of protrusions/nest or a group of nests/protrusion that is transversely (about 90 degrees) oriented compared to other group having nests/protrusion or protrusions/nest. In that case, for an accumulator, a planar rotation of only about 90 degrees is suitable for creating the air gap-mode (for freezing or heating) where three protrusions of an accumulator meet the three protrusions of another accumulator. This kind of transversal group could be vertical i.e longitudinal in
(123) The element of the invention is that on same side (same face) of the accumulator there are two coupling element groups, next to edges SE1, SE3, at different surface areas SA111, SA112 on face FF1, those groups each having op-posed type of coupling elements (protrusion, nest) within a group and also when compared to the other group on that same face FF1. Group at area SA111 has two protrusions PR111, PR112 and a nest N113, and group at surface area SA112 has two nest N111, N112 and a protrusions PR113. Furthermore, there are corresponding groups also at the back face BF1, but the groups are next to different edges (SE3, SE1) compared where the groups are (next to edges SE1, SE3) on the front face FF1, so in other words: when at the front face FF1 on the first surface area SA111 next to edge SE1 there are in a group two protrusions PR111, PR112 and a nest N113, then at the back face BF1 on the second surface area SA122 next to edge SE3 there are in a group two protrusions PR121, PR112 and a nest N112.
(124) Correspondingly, when at the front face FF1 on the second surface area SA112 next to edge SE3 there are in a group two nests N111, N112 and a protrusion PR113, then at the back face BF1 on the first surface area SA121 next to edge SE1 there are in a group two nests N121, N122 and a protrusion PR123. The distance between groups is the same on both faces FF1, BF1.
(125) The above refers also to that at positions where on the front face FF1 of the container there are protrusions PR111-PR113, there are nests N121-N123 on the back face BF1 of container C1, and correspondingly, at positions where on the front face FF1 of the container C1 there are nests N111-N113, there are protrusions PR121-PR123 on the back face BF1 of container C1.
(126) Examples of materials suitable for manufacturing material of the thermally insulated transport box are expanded polypropylene (EPP), expanded polystyrene (EPS) or polyurethane (PUR). The outer surface of the thermally insulated transport box 1 can also be painted with a heat reflective paint in order to reduce ambient heat load. Further, a coating can be applied to the outer surface of the thermally insulated transport box 1 to prevent the box from denting and scratching. The coating can also reduce ambient heat load by reflecting. Additionally, an antimicrobial coating can be applied to the interior face or/and the outer surface of the thermally insulated transport box.
(127) National hygiene legislation in various counties often allow that perishable foodstuffs may temporarily be sold and stored in an isolated container containing a lid closing the container when the container includes a cold accumulator, or even without a cold accumulator if the storage temperature remains below a legal maximum due to the existing ambient temperature. Perishable foods are those likely to spoil, decay or become unsafe to consume if not kept at chill temperatures below a legal maximum. Examples of perishable foods are meat, poultry, fish and dairy products. Typical legal maximum temperature for perishable foods is 0-8° C. The thermally insulated transport box 1 of the can be used for temporary storing of perishable foodstuffs. Preferably the phase change material has a melting temperature at a temperature range −2° C. . . . 2° C.
(128) It will be obvious to a person skilled in the art that, as the technology advances, the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the examples described above but may vary within the scope of the claims.
(129) List of parts: 1 a thermally insulated transport box; 2 a cover; 3 a box body; 4 a side wall; 5 an end wall; 6 an opening; 7 a bottom wall; 8 a flange; 9a-b a half column; 10a-b a gap between half columns; 11 a separating partition; 12 a notch; 13 an edge; 14 an end of a half column; 15 transported goods; 16 a cold or heat accumulator; 17 a hole; 18 a protrusion in a bottom wall; 19a-b a gap between rows; 20a-d a space; 21 a lip part; 22 a partition wall; 23 a temperature monitoring device; 24 a mounting tray; 25 fixing point; 26 a carrying member. 27 a projecting part; 28 an extending portion; 29 a recess; A1,A2, A3 a cold or heat accumulator; BF1, BF2, BF3 a back face; C1,C2 a container; FF1, FF2, FF3 a front face; G1,G2 an air gap; L lengthwise direction; LS a lifting structure; N111-N113, N121-N123, N221-N223 a nest; OP a through-going opening; PR111-PR113, PR121-PR123 a protrusion; SA111,SA121 a first surface area; SA112, SA122 a second surface area; SE1-SE4 a side end; SIL1,SIL2 an input; SS111-SS113, SS121-SS123 a support structure; w crosswise direction.