Load-bearing top frame assembly of container and container
By designing a container load-bearing top frame assembly, including top longitudinal beams, outer top frame, and inner top frame, the problem of corrugated plate tops being unable to bear weight was solved. This enabled the installation and load-bearing of external cooling radiators and internal and external pipelines, reduced the impact of temperature, and made it suitable for hydrogen production power integration.
Patent Information
- Application Number
- CN202423305182.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2034-12-31
AI Technical Summary
The existing corrugated roof panels cannot meet the installation and load-bearing requirements of hydrogen production power containers, especially the load on the external cooling radiator and internal and external pipelines.
A container load-bearing top frame assembly was designed, including a top longitudinal beam, an outer top frame, an inner top frame, and pipe installation components. The outer top frame is connected to the top longitudinal beam through a support beam to support the radiator. The inner top frame and the outer top frame are spaced apart and have insulation layers. The inner and outer pipes are fixed by the pipe installation components. The inner top frame is provided with a connecting groove and insulation material to reduce the impact of temperature.
It achieves effective installation and load-bearing of external cooling radiators and internal and external pipelines, reduces the impact of external temperature on the interior of the tank, and meets the requirements for hydrogen production power supply integration and installation.
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Figure CN223884532U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of containers, more particularly to a load-bearing roof frame assembly of a container and a container. BACKGROUND
[0002] The market scale of the energy storage industry is continuously expanding. With the continuous development and cost reduction of hydrogen energy technology, hydrogen energy power supply boxes will play an increasingly important role in future energy systems. The top of a hydrogen production power supply container needs to bear the load of several groups of external cooling radiators and internal and external pipelines, and ordinary corrugated board top plates cannot meet the installation and load-bearing requirements. SUMMARY
[0003] A series of simplified concepts are introduced in the summary part of the utility model, which will be described in further detail in the specific embodiment part. The summary part of the utility model does not mean to attempt to limit the key features and necessary technical features of the claimed technical solution, nor does it mean to attempt to determine the protection scope of the claimed technical solution.
[0004] To at least partially solve the above problems, the utility model provides a load-bearing roof frame assembly of a container in the first aspect, which comprises:
[0005] a top longitudinal beam;
[0006] an outer roof frame, which is at least partially arranged between two adjacent top longitudinal beams, and comprises a support beam connected to the top longitudinal beam, the support beam being used for supporting a radiator;
[0007] a pipeline mounting member arranged on the outer roof frame and / or the top longitudinal beam;
[0008] an inner roof frame arranged between two adjacent top longitudinal beams and spaced apart from the outer roof frame in the height direction of the container.
[0009] The load-bearing roof frame assembly of the container according to the first aspect of the utility model has an outer roof frame comprising a support beam, and the support beam is connected to the top longitudinal beam, so that the outer cooling radiator can be supported and installed, and the pipeline mounting member can be arranged to install and support the internal and external pipelines, thereby being suitable for the integration and installation of hydrogen production power supplies; in addition, the inner roof frame can be arranged to arrange a thermal insulation layer, thereby reducing the influence of external temperature on the inside of the container.
[0010] Optionally, the outer roof frame further comprises a top panel connected to the support beam in the length direction of the container, and the support beam is arranged between the top panels in the length direction.
[0011] Optionally, the top panel comprises corrugated board and flat board, and the flat board is provided with a first opening slot for communicating with the container.
[0012] Optionally, the inner top frame is further provided with a second opening slot and a communicating pipe, the upper end of the communicating pipe is connected to the first opening slot, and the lower end of the communicating pipe is connected to the second opening slot.
[0013] Optionally, the communicating pipe is configured as thermal insulation material, and the load-bearing top frame assembly further comprises a thermal insulation layer, which is arranged between the outer top frame and the inner top frame.
[0014] Optionally, the inner top frame comprises:
[0015] a first inner lining plate;
[0016] a reinforcing rib arranged on the first inner lining plate;
[0017] a thermal insulation beam arranged on the first inner lining plate and spaced along the length direction of the container;
[0018] a second inner lining plate arranged corresponding to the support beam along the length direction of the container.
[0019] Optionally, the support beam is provided with a radiator mounting plate and a grounding bolt, and the radiator mounting plate is provided with a mounting hole for matching the installation of the radiator support.
[0020] Optionally, the pipeline mounting member comprises an external cable fixing plate, an external pipeline support seat and a hose support seat, the external cable fixing plate is arranged on the top longitudinal beam, the external pipeline support seat is arranged on the support beam, and the hose support seat is arranged on the top panel.
[0021] Optionally, the load-bearing top frame assembly further comprises a lap beam arranged on the inner side of the top longitudinal beam, and the inner top frame is lapped above the lap beam.
[0022] The second aspect of the utility model provides a container comprising the load-bearing top frame assembly of the container according to the above.
[0023] The container according to the second aspect of the utility model is suitable for the integration and installation of hydrogen production power supply. BRIEF DESCRIPTION OF DRAWINGS
[0024] The following drawings of the utility model embodiment are used herein as a part of the utility model for understanding the utility model. The drawings of the utility model embodiment and its description are used to explain the principle of the utility model. In the drawings,
[0025] Figure 1An exploded view of the load-bearing top frame assembly of the container according to an embodiment of the present application;
[0026] Figure 2 A bottom view of the load-bearing top frame assembly of the container according to an embodiment of the present application; and
[0027] Figure 3 A perspective view of the support beam.
[0028] Reference numerals
[0029] 100: top longitudinal beam 101: overlapping beam
[0030] 120: outer top frame 121: support beam
[0031] 122: top panel 123: corrugated board
[0032] 124: flat panel 125: heat sink mounting plate
[0033] 126: grounding bolt 127: mounting hole
[0034] 128: first open slot 130: inner top frame
[0035] 131: communication pipe 132: first inner lining plate
[0036] 133: reinforcing rib 134: heat preservation beam
[0037] 135: second inner lining plate 136: second open slot
[0038] 141: external cable fixing plate 142: external pipeline support seat
[0039] 143: hose support seat D1: height direction
[0040] D2: length direction D3: width direction DETAILED DESCRIPTION
[0041] In the following description, numerous specific details are given to provide a thorough understanding of the application. However, it will be apparent that the application can be practiced without one or more of the specific details. In other instances, well-known techniques are not described in detail in order to avoid obscuring the application.
[0042] In this document, ordinal numbers such as "first" and "second" cited in the present utility model are merely identifiers and do not have any other implications, such as a specific order, etc. Moreover, for example, the term "first component" does not imply, by itself, the existence of a "second component", and the term "second component" does not imply, by itself, the existence of a "first component".
[0043] In this document, "upper", "lower", "front", "rear", "left", "right", etc. are merely used to indicate the relative positional relationship between the relevant parts, and not to limit the absolute position of the relevant parts.
[0044] In this document, "equal", "same", etc. are not strictly limited in the mathematical and / or geometric sense, but also include errors allowed by manufacturing or use that can be understood by those skilled in the art.
[0045] Unless otherwise stated, the numerical ranges in this document include not only the entire range between the two endpoints, but also several sub-ranges contained therein.
[0046] Figures 1 to 3 A load-bearing roof frame assembly of a container according to the present utility model is shown, which comprises a top longitudinal beam 100, an outer roof frame 120, a pipeline mounting member, and an inner roof frame 130. The outer roof frame 120 is at least partially arranged between two adjacent top longitudinal beams 100, and the outer roof frame 120 comprises a support beam 121 connected to the top longitudinal beam 100, which is used to support a radiator. The pipeline mounting member is arranged on the outer roof frame 120 and / or the top longitudinal beam 100. The inner roof frame 130 is arranged between two adjacent top longitudinal beams 100 and is spaced apart from the outer roof frame 120 in the height direction D1 of the container.
[0047] The load-bearing roof frame assembly of the container according to the present utility model has an outer roof frame 120 comprising a support beam 121, and the support beam 121 is connected to the top longitudinal beam 100, so that the outer roof frame 120 can bear and mount an outer cooling radiator, and the arrangement of the pipeline mounting member can mount and bear the inner and outer pipelines, thereby being suitable for the integration and mounting of a hydrogen production power supply. In addition, the arrangement of the inner roof frame 130 can arrange a thermal insulation layer, thereby reducing the influence of the external temperature on the inside of the container.
[0048] The load-bearing roof frame assembly of a container according to the present utility model serves as a top structure of the container, and with reference to Figure 1 , the top longitudinal beam 100 extends in the length direction D2 of the container and is spaced apart in the width direction D3 of the container.
[0049] Optionally, with reference to Figure 1The outer roof frame 120 further comprises top panels 122 connected to the top longitudinal beams 100 along the width direction D3. The top panels 122 are connected to support beams 121 along the length direction D2 of the container, and the support beams 121 are arranged between the top panels 122 along the length direction D2, so that the top of the container is closed.
[0050] Referring to Figure 1 The top panels 122 comprise corrugated panels 123 and flat panels 124. The top of the corrugated panels 123 has a bending protrusion, which can enhance the structural strength of the corrugated panels 123. The flat panels 124 are provided with first opening grooves 128 for communication into the container, so as to facilitate the extension of the cables in the container to the outside of the container and connection to the corresponding components (such as the external cooling radiator).
[0051] Referring to Figure 1 The pipeline mounting member comprises external cable fixing plates 141, external pipeline support seats 142, and hose support seats 143. The external cable fixing plates 141 are arranged on the top longitudinal beams 100 and are arranged at intervals along the length direction D2, and are used for mounting external cables. The external pipeline support seats 142 are arranged on the support beams 121, and are mainly used for fixing and mounting the pipelines of the external cooling radiator and other equipment. The hose support seats 143 are arranged on the top panels 122, specifically, the hose support seats 143 are arranged on the corrugated panels 123, and are used for mounting hoses, and the structural strength of the corrugated panels 123 is higher, and can bear the load of the hoses. The arrangement of the pipeline mounting member is beneficial to arranging and mounting the pipelines of the hydrogen production power supply and the external cooling radiator on the top of the container.
[0052] Optionally, referring to Figure 1 The load-bearing roof frame assembly further comprises a lap beam 101 arranged on the inner side of the top longitudinal beam 100, and the inner roof frame 130 is lapped above the lap beam 101, so that the inner roof frame 130 can be spaced apart from the outer roof frame 120 along the height direction D1 of the container, and the arrangement of the thermal insulation layer between the inner roof frame 130 and the outer roof frame 120 is facilitated. The thermal insulation layer can be selected from rock wool, polyurethane material, etc., so as to meet the thermal insulation function requirement of the container.
[0053] Optionally, referring to Figure 1 and Figure 2 The inner roof frame 130 is further provided with a second opening groove 136 and a communication pipe 131. The upper end of the communication pipe 131 is connected to the first opening groove 128, and the lower end of the communication pipe 131 is connected to the second opening groove 136, so that the cables in the container can extend to the outside of the container through the second opening groove 136 and the communication pipe 131 and be connected to the corresponding components (such as the external cooling radiator). Further, the communication pipe 131 is constructed of thermal insulation material, which can be selected from rock wool, polyurethane material, etc., so as to prevent the arrangement of the cables extending out of the container from affecting the thermal insulation function of the container.
[0054] Referring to Figure 1 and Figure 2 The inner top frame 130 comprises a first inner lining plate 132, a reinforcing rib 133, a thermal insulation beam 134 and a second inner lining plate 135. The reinforcing rib 133 is arranged on the first inner lining plate 132 and extends along the length direction D2. The first inner lining plate 132 is bent along two side edges in the width direction D3 and is fixedly connected with the end of the reinforcing rib 133. Therefore, the arrangement of the reinforcing rib 133 strengthens the structural strength of the first inner lining plate 132. The thermal insulation beam 134 is arranged on the first inner lining plate 132 and is arranged at intervals along the length direction D2 of the container. The thermal insulation beam 134 can not only strengthen the structure of the first inner lining plate 132, but also separate the thermal insulation layer, which is beneficial to the installation of the thermal insulation layer between the inner top frame 130 and the outer top frame 120. Along the length direction D2 of the container, the second inner lining plate 135 is arranged corresponding to the support beam 121. The second inner lining plate 135 has a small size along the length direction D2 of the container and has high structural strength, which is beneficial to supporting the thermal insulation layer between the second inner lining plate 135 and the support beam 121 and preventing the second inner lining plate 135 from being deformed due to the extrusion of the thermal insulation layer when the support beam 121 is deformed under load.
[0055] Optionally, referring to Figure 3 The support beam 121 is provided with a heat sink mounting plate 125 and a grounding bolt 126. The heat sink mounting plate 125 is provided with a mounting hole 127 for matching the installation of a heat sink support, so that the heat sink can be installed through the corresponding fastener. The grounding bolt 126 is arranged so that the load-bearing top frame assembly meets the safety grounding requirement and avoids opening holes on the load-bearing top frame assembly.
[0056] The utility model also provides a container comprising the load-bearing top frame assembly of the container according to the above. The container according to the utility model is suitable for the integration and installation of a hydrogen production power supply.
[0057] Unless otherwise defined, technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this utility model belongs. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of this utility model. As used herein, the term "arranged" can mean that a component is directly attached to another component or that a component is attached to another component via an intermediate component. The features described in one embodiment herein can be applied to another embodiment, alone or in combination with other features, unless the features are not applicable to the other embodiment or are otherwise stated.
[0058] The utility model discloses has been through the above -mentioned implementation mode has been explained, but should understand, the above -mentioned implementation mode is only for the example and the purpose of illustration, and is not intended to limit the utility model to the implementation range described. The person skilled in the art can understand according to the teaching of the utility model that more kinds of variations and modifications can also be made, and these variations and modifications all fall within the scope of the utility model claimed.
Claims
1. A load bearing roof frame assembly for a container, characterized by The load-bearing roof frame assembly comprises: a roof longitudinal beam; an outer roof frame arranged at least partially between two adjacent roof longitudinal beams, the outer roof frame comprising a support beam connected to the roof longitudinal beam, the support beam being used for supporting a radiator; a pipeline mounting member arranged on the outer roof frame and / or the roof longitudinal beam; an inner roof frame arranged between two adjacent roof longitudinal beams and spaced apart from the outer roof frame along the height direction of the container.
2. A load bearing roof frame assembly for a container as claimed in claim 1 wherein, The outer roof frame further comprises a roof panel connected to the support beam along the length direction of the container, the support beam being arranged between the roof panels along the length direction.
3. A load bearing roof frame assembly for a container as claimed in claim 2 wherein, The roof panel comprises corrugated panels and flat panels, the flat panels being provided with a first opening slot for communicating into the container.
4. A load bearing roof frame assembly for a container as claimed in claim 3 wherein, The inner roof frame is further provided with a second opening slot and a communication pipe, the upper end of the communication pipe being connected to the first opening slot, and the lower end of the communication pipe being connected to the second opening slot.
5. A load bearing roof frame assembly for a container as claimed in claim 4 wherein, The communication pipe is configured as a thermal insulation material, and the load-bearing roof frame assembly further comprises a thermal insulation layer arranged between the outer roof frame and the inner roof frame.
6. The load bearing roof frame assembly of claim 1, wherein, The inner roof frame comprises: a first inner lining plate; a reinforcing rib arranged on the first inner lining plate; a thermal insulation beam arranged on the first inner lining plate along the length direction of the container; a second inner lining plate corresponding to the support beam along the length direction of the container.
7. The load bearing roof frame assembly of claim 1, wherein, The support beam is provided with a radiator mounting plate and a grounding bolt, the radiator mounting plate being provided with a mounting hole for matching mounting of the radiator support.
8. The load bearing roof frame assembly of claim 2, wherein, The pipeline mounting member comprises an external cable fixing plate, an external pipeline support seat and a hose support seat, the external cable fixing plate being arranged on the roof longitudinal beam, the external pipeline support seat being arranged on the support beam, and the hose support seat being arranged on the roof panel.
9. The load bearing roof frame assembly of a shipping container of claim 1 wherein, The load-bearing roof frame assembly further comprises a lap beam arranged on the inner side of the roof longitudinal beam, and the inner roof frame is lapped onto the upper side of the lap beam.
10. A container characterized by A load-bearing roof frame assembly comprising a container according to any one of claims 1 to 9.