Container structure comprising accommodating part capable of accommodating outdoor unit

By designing a housing and fixing mechanism within the container structure, the problems of inconvenience in disassembling the outdoor unit and damage to pipe components during container movement are solved, achieving stable fixing of the outdoor unit and protection of the air conditioning system, thus improving mobility and cooling efficiency.

CN121106936APending Publication Date: 2025-12-12河健斗
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Patent Information

Application Number
CN202410818332.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-06-11
Filing Date
2024-06-24
Publication Date
2025-12-12

AI Technical Summary

Technical Problem

During container relocation, the outdoor unit needs to be disassembled and reinstalled, causing inconvenience and making the pipe components susceptible to damage.

Method used

A container structure is designed, which forms a receiving part by surrounding the openings formed on the first and second sides of the container, and sets a first fixing means and a second fixing means inside the receiving part to prevent damage to the outdoor unit and pipe components during movement. At the same time, through holes and heat insulation components are set on the inner side to ensure air circulation and temperature isolation.

Benefits of technology

This achieves stable fixation and protection of the outdoor unit within the container, improves the ease of container movement, prevents damage to the outdoor unit and piping components, and maintains the cooling performance of the air conditioning system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a container structure including an accommodating portion capable of accommodating an outdoor unit. According to one embodiment of the present disclosure, a container structure includes: a container; the container body is defined by a first opening formed by the container body, the first surface of the container and a second opening formed by the second surface of the container, and a containing part capable of containing an outdoor unit is formed; a first fixing means provided in at least one region of the housing unit so as to fix the outdoor unit; at least one through hole is formed in at least one of a first inner side of the accommodating part with an upward first opening, a second inner side of the accommodating part with an upward second opening, and a third inner side corresponding to the upper part of the accommodating part, and a pipeline part connecting the outdoor unit and the interior of the main body can penetrate through the through hole.
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Description

TECHNICAL FIELD

[0001] The present disclosure relates to a container structure, and more particularly, to a container structure including a housing portion in which an outdoor unit is accommodated. BACKGROUND

[0002] Container structures are widely used in various fields such as cargo transportation, the construction industry, etc.

[0003] Container structures are used for various purposes such as residence, office, business, etc., and in the interior space of the container, an air conditioning device such as a refrigeration and / or heating device can be used to maintain a comfortable environment.

[0004] The outdoor unit is installed outside the container and can perform a function of releasing heat from an indoor unit of the air conditioning device. However, when the container is moved, the outdoor unit installed on the container needs to be disassembled and reassembled after the movement of the container is completed, which is inconvenient.

[0005] Therefore, there is a need to develop a technology that can effectively accommodate an outdoor unit in a container.

[0006] PRIOR ART DOCUMENT

[0007] PATENT DOCUMENT

[0008] Patent Document 1: Publication Patent Gazette No. 10-2011-0072250 SUMMARY

[0009] PROBLEMS TO BE SOLVED BY THE INVENTION

[0010] An object of the present disclosure is to solve all the problems of the conventional technology.

[0011] In addition, the present disclosure is surrounded by a container, a container main body, a first opening formed by a first face of the container, and a second opening formed by a second face of the container, and forms a housing portion in which an outdoor unit is accommodated, and a first fixing means provided in at least one area of the housing portion for fixing the outdoor unit, and one of a first inner side of the housing portion facing the first opening, a second inner side of the housing portion facing the second opening, and a third face of the housing portion corresponding to the first opening, and forms at least one housing portion in which the outdoor unit is accommodated. It is provided for other purposes.

[0012] In addition, another object of the present disclosure is to increase the convenience when the container is moved by effectively accommodating the outdoor unit in the container.

[0013] In addition, another object of the present disclosure is to fix the outdoor unit by the first fixing means when the container is moved, and to prevent the outdoor unit from being damaged.

[0014] Further, another object of the present disclosure is to prevent damage to the duct portion by preventing the second fixing means from protruding from the duct portion.

[0015] The objects of the present disclosure are not limited to the above-mentioned objects, and other objects and advantages of the present disclosure not mentioned can be understood from the following description, and can be more clearly understood from the exemplary embodiments of the present disclosure. Further, it will be readily apparent to those skilled in the art that the objects and advantages of the present disclosure can be realized by the means of the scope of the present patent application and combinations thereof.

[0016] Means for solving the problem

[0017] According to some embodiments of the present disclosure, a container structure is surrounded by a container, a main body of the container, a first opening formed by a first face of the container, and a second opening formed by a second face of the container, a receiving portion formed for fixing the outdoor unit, first fixing means provided in at least one area of the receiving portion, and a first inner side of the main body corresponding to the first opening, a second receiving portion formed in at least the area of an inner side of the second opening formed by the third face, and an inner side of the second receiving portion formed by the inner side of the second opening. The duct portion can include at least one through hole so as to pass through.

[0018] Further, the container structure can include a lower frame supporting a bottom layer of the container, which is formed at a bottom of the container. The lower frame can be configured to extend to a side from a lower portion of the first face or a lower portion of the second face.

[0019] Then, the container structure can include a support portion formed on a side adjacent to the first face and the second face. The first fixing means can be provided in the support portion to an inner side of the support portion of the main body.

[0020] Further, the at least one through hole can include a first through hole. Here, the first through hole can be formed in a third inner side corresponding to an upper portion of the receiving portion. Also, a distance between the second inner side and the second opening can be longer than a predetermined value of a side length of the outdoor unit. Further, a distance between the first inner side and the first opening can be longer than a front length of the outdoor unit.

[0021] Also, the first fixing means can be formed in a lower area of the receiving portion.

[0022] Further, the container structure can include a second fixing means to prevent the duct from protruding from the first opening or the second opening. The second fixing means can be provided in at least one of the first inner side and the second inner side.

[0023] Moreover, at least one of the first inner side and the second inner side can be provided with a heat insulating member.

[0024] Inventive Effects

[0025] The present disclosure shows that the container, the container body, the first opening formed by the first face of the container, and the second opening formed by the second face of the container enclose the stacking, form a receiving part that can accommodate the outdoor unit, and in order to fix the outdoor unit, the receiving part is provided with at least one of the first fixing means in at least one area and the first inner side of the receiving part facing the first opening, the second inner side of the receiving part facing the second opening, and the third face corresponding to the upper part, and the receiving part composed of at least one of the receiving part that can accommodate the outdoor unit. One hole can accommodate at least one container.

[0026] In addition, according to the present disclosure, by enabling the outdoor unit to be effectively accommodated in the container, the convenience of moving the container can be increased.

[0027] In addition, according to the present disclosure, the first fixing means can fix the outdoor unit when the container is moved, preventing the outdoor unit from being damaged.

[0028] In addition, according to the present disclosure, the second fixing means can prevent the pipe part from being damaged by preventing the pipe part from protruding. BRIEF DESCRIPTION OF DRAWINGS

[0029] Figure 1 is a drawing that exemplifies the structure of the container according to an embodiment of the present disclosure.

[0030] Figure 2 is an exemplary drawing of the structure of the container according to an embodiment of the present disclosure.

[0031] Figure 3 is a drawing that exemplifies the plan view of the structure of the container according to an embodiment of the present disclosure.

[0032] Figure 4 is a drawing that exemplifies the plan view of the structure of the container according to an embodiment of the present disclosure.

[0033] Figure 5 is a drawing that exemplifies the outdoor unit according to an embodiment of the present disclosure.

[0034] Figure 6 is an exemplary drawing of the plan view of the structure of the container according to an embodiment of the present disclosure.

[0035] REFERENCE NUMERALS

[0036] 10: outdoor unit

[0037] 100: container

[0038] 101: First Edition

[0039] 102: Second Edition

[0040] 110: The first opening

[0041] 120: The second opening

[0042] 200: Containment Department

[0043] 201: First inner side

[0044] 202: Second inner side

[0045] 203: Third inner side

[0046] 210: Support

[0047] 300: First fixed method

[0048] 310: First through hole

[0049] 400: Underlying Framework

[0050] 500: Second fixing method

[0051] 600: Thermal insulation

[0052] 710: First guide rail

[0053] 720: Second guide rail

[0054] 730: Third guide rail Detailed Implementation

[0055] This embodiment can be transformed in various ways and can have multiple embodiments. Specific embodiments will be illustrated in the figures and described in detail in the description. However, this is not intended to limit the scope of any particular implementation and should be understood to include various modifications, equivalents, and / or alternatives of this implementation. Similar reference numerals may be used for similar components in the illustrations in the figures.

[0056] In describing this startup, detailed descriptions of related announcement functions or configurations may be omitted if it is believed that such descriptions would unnecessarily obscure the key points of this startup.

[0057] Furthermore, the embodiments in the next phase can be converted into many different forms, and the scope of the technical concept of this launch is not limited to the embodiments in the next phase. Rather, these embodiments are provided to make this launch more comprehensive and complete, and to fully convey the technical concept of this launch to industry practitioners.

[0058] The terminology used in this guide is for illustrative purposes only and is not intended to define the scope of rights. Singular expressions include plural expressions unless there is a clear difference in meaning in the context.

[0059] At the beginning of this document, expressions such as “possess,” “may possess,” “contain,” or “may contain” refer to the existence of the feature (such as a value, function, action, or component), without excluding the existence of other features.

[0060] In this guide, expressions such as “A or B”, “at least one of A and / or B”, or “one or more of A and / or B” can include all possible combinations of items listed together. For example, “A or B”, “at least one of A and B”, or “at least one of A or B” can refer to (1) at least one A, (2) at least one B, (3) at least one A and at least one B.

[0061] The notations “first,” “second,” “first,” or “second” used in this guide can be used to modify various components, regardless of their order and / or importance, to distinguish one component from others, without limiting these components.

[0062] When it is mentioned that a component (e.g., the first component) is (functionally or communicatively) coupled with / to another component (e.g., the second component) or "connected to", it should be understood that a component can be directly connected to another component (e.g., the third component).

[0063] On the other hand, when it is said that a component (e.g., the first component) is "directly connected" to another component (e.g., the second component), it can be understood that there are no other components (e.g., a third component) between the two components.

[0064] The expression “configured to” used in this guide may be replaced with “capable of” in some cases, such as “supainted for”, “having the capacity to”, “designed to”, “adapted to”, and “capable of”. The term “configured to” may not necessarily mean that the hardware is only “specially designed to”.

[0065] In the embodiments, the "module" or "parent" performs at least one function or operation, which can be implemented by hardware or software, or by a combination of hardware and software.

[0066] On the other hand, the various elements and areas in the drawings are sketched. Therefore, the technical concept of the present invention is not limited by the relative sizes or spacing drawn on the attached drawings.

[0067] The following detailed implementation examples of this startup are illustrated with reference to the accompanying drawings, so that those skilled in the art to which this startup pertains can easily implement it.

[0068] Figure 1 This schematic diagram of a container structure is drawn using the first phase of the project as an example. Figure 2 This schematic diagram of a container structure is drawn using the first phase of the project as an example. Figure 3 This is a schematic diagram of a cross-sectional view of a container structure, taken as an example of the first phase of the project disclosed herein. Figure 4 This is a schematic diagram of a cross-sectional view of a container structure, taken as an example of the first phase of the project disclosed herein.

[0069] Reference Figures 1 to 4 According to the container structure disclosed herein, it may include a container 100, a receiving section 200, a first fixing tool 300, and at least one through hole.

[0070] Container 100 is an item used for the storage, transportation, and habitation of goods. Specifically, container 100 can be formed of materials such as metal. Furthermore, container 100 can include, but is not limited to, dry containers, reefer containers, open-top containers, flat rack containers, tank containers, high cube containers, open-side containers, double-door containers, bulk containers, ventilated containers, etc., but can be included in various types of containers.

[0071] The receiving section 200 is a space that can accommodate the outdoor unit 10. Specifically, the receiving section 200 can be formed by surrounding and stacking the main body of the container 100, the first opening 110 formed by the first side 101 of the container 100 and the second opening 120 formed by the second side 102 of the container 100, to accommodate the outdoor unit 10.

[0072] More specifically, the main body of container 100 can be an area for storing items or for people to move around in.

[0073] Additionally, the first opening 110 is an opening formed on the first side 101 of the container 100. Here, the first opening 110 can connect the exterior of the container 100 and the receiving section 200.

[0074] Furthermore, the second opening 120 is an opening formed on the second side 102 of the container 100. Here, the second opening 120 can connect the exterior of the container 100 and the receiving section 200.

[0075] Furthermore, the first face 101 and the second face 102 can be perpendicular to each other, and for this purpose, the first face 101 and the second face 102 can be adjacent to each other through edges.

[0076] In addition, Figure 1 In the figure, the first opening 110 and the second opening 120 are shown in a right-angled shape, but the shape of the first opening 110 and the second opening 120 is not limited to the figure and can be modified in various ways to achieve the purpose of this launch.

[0077] The first fixing method 300 is a fixing method for fixing the outdoor unit 10 to the container structure.

[0078] Specifically, the first fixing means 300 can be provided in at least one area of ​​the containment section 200 to fix the outdoor unit 10.

[0079] For example, the first fixing means 300 can fix the outdoor unit 10 to the housing 200 by means of screws, bolts, nuts, clamp adhesives, welding, etc.

[0080] On the other hand, if we refer to Figures 1 to 4 The container structure may include supports 210 formed on the sides adjacent to the first face 101 and the second face 102. Here, the first fixing means 300 may have an inner side extending from the support 210 to the main unit.

[0081] On the other hand, the first fixing means 300 can be formed in the lower region of the housing 200. Specifically, the first fixing means 300 formed in the lower region of the housing 200 can perform the function of fixing the outdoor unit 10.

[0082] There is at least one through hole, which is at least one hole through which the pipe section of the outdoor unit 10 can be connected.

[0083] Specifically, at least one through hole may be formed in at least one of the following: the first opening 110 facing the first inner side 201 of the receiving portion 200, the second opening 120 facing the second inner side 202 of the receiving portion 200, and the third inner side 203 corresponding to the upper part of the receiving portion 200.

[0084] For example, at least one through hole can consist of one through hole, but it can also consist of two or more through holes.

[0085] In addition, the piping section may be a piping section connecting the outdoor unit 10 and the indoor air conditioning unit inside the container 100 main unit. The piping section may include power supply components for supplying power to the outdoor unit 10, heat transfer components for heat exchange between the indoor unit and the outdoor unit 10, etc., but is not limited to these, and the piping section may include a variety of components.

[0086] For example, one side of the duct section can be connected to the outdoor unit 10, and the other side of the duct section can be connected to the indoor unit.

[0087] Figure 5 This is an example illustration of an outdoor unit 10 according to an embodiment of the present disclosure.

[0088] Reference Figure 4 and Figure 5 There is at least one through hole, which may include a first through hole 310. Here, the first through hole 310 may be formed on the third inner side 203, corresponding to the upper part of the receiving part 200.

[0089] Furthermore, the distance between the second inner side 202 and the second opening 120 may be longer than the side length 11 of the outdoor unit 10 by a predetermined value 230. Moreover, the distance between the first inner side 201 and the first opening 110 may be longer than the front length 12 of the outdoor unit 10 by a predetermined value 220.

[0090] Therefore, according to the present disclosure, the outdoor unit 10 can be placed at a certain distance from the first inner side 201 and the second inner side 202, so that the air circulation around the outdoor unit 10 is smooth.

[0091] Furthermore, according to this invention, the outdoor unit 10 can be placed at a certain distance from the first inner side 201 and the second inner side 202, so the pipe section of the outdoor unit 10 protruding into the first opening 110 or the second opening 120 may be blocked, thereby preventing damage to the pipe section.

[0092] Furthermore, according to the present disclosure, the outdoor unit 10 may be placed at a certain distance from the first inner side 201 and the second inner side 202, so the first inner side 201 and the second inner side 202 may be equipped with a second fixing means 500 (described later).

[0093] Additionally, the container structure according to this invention may include a bottom frame 400 formed at the bottom of the container 100 and supporting the container 100. The bottom frame 400 may protrude from the bottom of the first side 101 or the bottom side of the second side 102 of the container 100.

[0094] Specifically, the bottom frame 400 is a frame formed at the bottom of the container 100.

[0095] More specifically, the bottom frame 400 is formed at the bottom of the side of the container 100 and can perform a support function to keep the container 100 at a certain distance from the ground for placement.

[0096] In addition, the bottom frame 400 may protrude from the bottom of the first surface 101 or the bottom side of the second surface 102.

[0097] According to this invention, in a container structure, air flows from the first opening 110 to the outdoor unit 10, and air flows from the outdoor unit 10 to the second opening 120 (or vice versa). In this case, if there are factors obstructing airflow around the housing 200, the cooling performance of the outdoor unit 10 will be affected. Furthermore, when the container structure moves, there may be two or more containers 100 with short intervals, which may affect airflow around the housing 200. Therefore, according to this invention, the container structure may have a lower frame 400 that protrudes laterally from the lower part of the first side 101 or the lower part of the second side 102 of the container 100. Even if two or more container structures are arranged in contact due to the lower frame 400, it can prevent the two or more container structures from being closely fitted (i.e., spaced less than a certain distance), thus ensuring unobstructed airflow around the container 200.

[0098] See also Figure 4 According to one embodiment of this disclosure, the container structure may include a second securing means 500 to prevent protrusion from the pipe section, the first opening 110, or the second opening 120. Here, the second securing means 500 may be provided on at least one of the first inner side 201 and the second inner side 202.

[0099] Specifically, the second fixing means 500 is a means of fixing the pipe to prevent it from protruding from the first opening 110 and the second opening 120. For example, the second fixing means 500 can be implemented by clamps, brackets, straps, bolts and nuts, retaining rings, rubber pads, spring clips, anchor points, etc., but is not limited to the examples described. If it is a means to fix the pipe part, it should be considered that multiple fixing means can be included.

[0100] For example, the second fixing means 500 may include the second-1 fixing means provided on the first inner side 201 and the second-2 fixing means provided on the second inner side 202.

[0101] The second-first fixing means is a means of fixing the pipe portion by having a first inner side 201. Furthermore, the second-second fixing means is a means of fixing the pipe portion by having a second inner side 202. Additionally, the second fixing means 500 may have an inner side other than the first inner side 201 or the second inner side 202 (i.e., a third inner side 203, etc.), and is not limited to the examples described above.

[0102] Therefore, according to this invention, by providing the second fixing means 500 (specifically, the 2-1 fixing means and the 2-2 fixing means), it is possible to prevent the pipe from protruding from the first opening 110 or the second opening 120. Furthermore, according to this invention, the second fixing means 500 may also be equipped with a stress sensor (not shown), thereby preventing deformation of the container structure. Details regarding the stress sensor are provided below.

[0103] Figure 6 This is an example illustration of a container structural plan according to an embodiment of the present disclosure.

[0104] like Figure 6 As shown, the container structure according to this disclosure may include a first guide rail 710.

[0105] The first guide rail 710 is formed inside the support 210, guiding the first fixing tool 300 to move in a vertical direction. Here, the vertical direction may mean the direction of gravity.

[0106] For example, the first guide rail 710 may be composed of a spherical guide rail, a linear guide rail, a miniature guide rail, etc., and may guide the first fixing tool 300 to move in a vertical direction. Furthermore, the first guide rail 710 is not limited to the examples described, and various guide rails may be used to achieve this starting purpose.

[0107] In the first stationary region of the first guide rail 710, an uneven structure may be formed. The first stationary region is a defined area of ​​the first guide rail 710. Moreover, due to its uneven structure, the static friction coefficient of the first stationary region may be higher than that of other regions of the first guide rail 710 outside the first stationary region.

[0108] For example, the first guide rail 710 can park the first fixing tool 300 in the first parking area, so that the outdoor unit 10 maintains a certain distance in the lower vertical direction of the housing 200.

[0109] Therefore, according to this start-up, the first guide rail 710 can guide the first fixing tool 300 to move in a vertical direction, thereby preventing the outdoor unit 10 fixed on the first fixing tool 300 from contacting the bottom of the receiving part 200 (that is, the first fixing tool 300 can stop in the first stationary area), thereby improving the performance (heat exchange performance) of the outdoor unit 10.

[0110] like Figure 4 and Figure 6 As shown, the container structure according to this disclosure may include a second guide rail 720.

[0111] The second guide rail 720, formed in at least one of the first inner side 201 and the second inner side 202, is a tool for guiding the second fixing tool 500 to move in a vertical direction. Here, the vertical direction, as previously mentioned, may mean the direction of gravity.

[0112] The second guide rail 720 may include the 2-1 guide rail and the 2-2 guide rail.

[0113] Reference Figure 4 and Figure 6 The second-1 guide rail is formed on the first inner side 201 and is a tool for guiding the second-1 fixing tool to move vertically. The second-2 guide rail is formed on the second inner side 202 and is a means for guiding the second-2 fixing tool to move vertically.

[0114] For example, guide rail 2-1 and guide rail 2-2 can be implemented using spherical guide rails, linear guide rails, miniature guide rails, etc. Guide rail 2-1 and guide rail 2-2 are not limited to the examples described; various guide rails can be used to achieve this startup purpose.

[0115] For example, the 2-1 guide rail can guide the 2-1 fixing tool of the fixing pipe section to move vertically. Furthermore, the 2-2 guide rail can guide the 2-2 fixing tool of the fixing pipe section to move vertically.

[0116] According to this guide, the pipe section can be composed of flexible components. In this case, the pipe section may be damaged due to the stress applied to it during the process of connecting the outdoor unit 10 and the first through hole 310. The pipe section may be fixed to the 2-1 fixing means and the 2-2 fixing means respectively. However, the 2-1 fixing means and the 2-2 fixing means may move vertically toward the pipe section by the 2-1 guide rail and the 2-2 guide rail respectively. Therefore, the stress applied to the pipe section will have a dispersion effect.

[0117] A textured structure can be formed in the 2-1 stationary region of the 2-1 guide rail, and a textured structure can also be formed in the 2-2 stationary region of the 2-2 guide rail. The 2-1 and 2-2 stationary regions are defined areas of the 2-1 and 2-2 guide rails, respectively. Furthermore, due to their textured structures, the static friction coefficients of the 2-1 and 2-2 stationary regions may be higher than those of the regions outside these areas.

[0118] Specifically, in the 2-1 static region, the 2-1 fixing tool of the fixing pipe section can be stationary, and in the 2-2 static region, the 2-2 fixing tool of the fixing pipe section can be stationary.

[0119] Furthermore, the vertical height of the 2-1 stationary area can be lower than the vertical height of the 2-2 stationary area. That is, the pipe section can sequentially pass through the bottom of the outdoor unit 10 to the 2-1 and 2-2 fixed sections, connecting to the first through hole 310 formed on the third inner side 203. To effectively disperse the stress in the pipe section, the vertical height of the 2-2 stationary section is higher than that of the 2-1 stationary section. If the height of the 2-1 stationary section is higher than the positions of the 2-1 and 2-2 stationary sections, i.e., the 2-1 and 2-2 stationary sections are relatively fixed, it is also easier to fix the 2-1 stationary section (2-1 and 2-1 and 2-1 fixed sections), i.e., the 2-1 fixed section and 2-1 fixed section are relatively fixed sections. Because this can be achieved, the pipe section can effectively connect the first through hole 310 and the outdoor unit 10.

[0120] See also Figure 4 and Figure 6 The container structure according to this disclosure may include a third guide rail 730.

[0121] The third guide rail 730 is formed at the lower part of the housing 200 and is a means of guiding the outdoor unit 10 to move horizontally. Here, horizontally means horizontal to the ground and perpendicular to the direction of gravity.

[0122] For example, the third guide rail 730 may include a 3-1 guide rail extending from the first opening 110 to the first inner side 201, and a 3-2 guide rail extending from the second opening 120 to the second inner side 202. Here, the directions pointed to by the 3-1 guide rail and the 3-2 guide rail may intersect each other (e.g., be perpendicular to each other).

[0123] For example, the third stationary region of the third guide rail 730 may have an uneven structure. The third stationary region is a defined area of ​​the third guide rail 730.

[0124] Therefore, according to this invention, since the outdoor unit 10 forms a concave-convex structure in the designated area of ​​the third guide rail, it can be fixed in the receiving part 200 and can also move horizontally along the third guide rail 730, thus making it easy to disassemble and install the outdoor unit 10.

[0125] See also Figure 4 Figure 6 Figure 4 At least one of the first inner side 201 and the second inner side 202 may have a heat insulation member 600.

[0126] Specifically, the heat insulation component 600 is a component that has at least one of the first inner side 201 and the second inner side 202, for isolating the heat exchange between the interior of the container 100 body and the receiving part 200.

[0127] For example, the insulation material 600 can be composed of fiberglass insulation, styrofoam or expanded polystyrene (EPS), polyurethane foam, cellulose insulation, mineral wool, vacuum insulation (VIP), reflective insulation, etc. Furthermore, the insulation component 600 of this invention is not limited to the examples described, and various insulation components 600 can be used herein.

[0128] According to this guide, since the housing 200 can accommodate the outdoor unit 10, if the outdoor unit 10 is working, it may generate a lot of heat. The heat generated by the housing 200 may not flow into the main body of the container 100, thus preventing stress deformation of the container 100 due to temperature difference.

[0129] The electronic devices and their control methods included in the container structure specified in this disclosure will be described below.

[0130] According to this launch, the container structure may also include electronic equipment (incomplete). This electronic equipment may include memory, communication interfaces, processors, and stress sensors. Furthermore, in some cases, the electronic equipment may also include temperature sensors.

[0131] Memory temporarily or non-temporarily stores various programs or data and passes the stored information to the processor according to the processor's calls. In addition, memory can store various information required by the processor for its operations, processing, or control actions in electronic format.

[0132] The memory can be implemented using semiconductor storage media (such as ROM and / or RAM). ROM can include, for example, conventional ROM, EPROM, EEPROM, and / or MASK-ROM. RAM can include, for example, DRAM and / or SRAM. Memory can be implemented using at least one storage medium that can permanently or semi-permanently store data, such as flash memory devices, security digital cards (SD), solid-state drives (SSD), hard disk drives (HDD), magnetic drums, optical discs (CD), DVDs, or laser discs.

[0133] Communication interfaces can include wireless communication interfaces or wired communication interfaces. Wireless communication interfaces can utilize wireless communication or mobile communication technologies to communicate with various external devices. These wireless communication technologies may include: Bluetooth, Bluetooth Low Energy, CAN communication, Wi-Fi, Wi-Fi Direct, Ultra Wideband (UWB), Zigbee, Infrared Data Association (IrDA), or NFC (Near Field Communication), etc. Mobile communication technologies may include 3P, LTE-LTE (Long Term), Evolution, etc. Wireless communication interfaces can be implemented using antennas, communication chips, and substrates, and can transmit electromagnetic waves to or receive electromagnetic waves transmitted from external sources.

[0134] Wired communication interfaces enable communication with various external devices via wired communication networks. These wired communication networks can be implemented using physical cables, such as P / E, coaxial, fiber optic, or Ethernet cables.

[0135] According to the embodiments, either the wireless communication interface or the wired communication interface can be omitted. Therefore, the electronic device can only include either a wireless communication interface or a wired communication interface. Furthermore, the electronic device can also have an integrated communication interface, supporting both wireless access via the wireless communication interface and wired access via the wired communication interface.

[0136] An electronic device may contain multiple communication interfaces to perform communication connections in a variety of ways, and is not limited to containing only one communication interface to perform a single communication connection.

[0137] According to various embodiments of this disclosure, the processor can communicate with various external electronic devices or servers, either outdoors or indoors, via a communication interface.

[0138] Specifically, the processor can communicate with the indoor unit of the air conditioner, the outdoor unit of the air conditioner, stress sensors, etc. through a communication interface.

[0139] A processor controls the overall operation of an electronic device. Specifically, a processor is associated with the configuration of an electronic device containing memory, and can comprehensively control the operation of the electronic device by executing at least one instruction stored in the memory. It is worth noting that a processor can be implemented not only as a single processor, but also as multiple processors.

[0140] Processors can be implemented in various ways. For example, one or more processors may include a CPU (Central Processing Unit), a GPU (Graphics Processing Unit), an APU (Accelerated Processing Unit), a MIC (Multi-Core Integrated Processor), a DSP (Digital Signal Processor), an NPU (Neural Processing Unit), a hardware accelerator, or a machine learning accelerator. One or more processors can control one or more other components of an electronic device or any combination thereof, and perform communication operations or data processing. One or more processors can run one or more programs or instructions stored in memory. For example, one or more processors can execute the methods in this startup's temporary execution example by running one or more commands stored in memory.

[0141] If a method in one example of this startup contains multiple actions, those actions can be executed by one processor or by multiple processors. For example, when the first action, the second action, and the third action are executed, the first action, the second action, and the third action can all be executed by the first processor. The first action and the second action can both be executed by the first processor (e.g., a general-purpose processor), and the third action can be executed by the second processor (e.g., an AI-specific processor).

[0142] One or more processors can be implemented as a single-core processor or as a multi-core processor, including multi-core processors (e.g., homogeneous multi-core or heterogeneous multi-core). If one or more processors are implemented as multi-core processors, each core in the multi-core processor can contain processor internal memory, such as on-chip memory, and the multi-core processor can contain a general-purpose cache shared by the cores. Furthermore, the multiple cores (or a portion of the multiple cores) in the multi-core processor can independently read and execute program commands to implement the methods in this boot instance, or multiple cores can be all (or some) linked together to read and execute program commands to implement the methods in this boot instance.

[0143] If a method in one example of this startup contains multiple actions, those actions can be executed by one core in a multi-core processor, or by multiple cores. For example, if the first, second, and third actions are executed according to the method of an instance, the first, second, and third actions can all be executed by the first core in the multi-core processor, the first and second actions can be executed by the first core in the multi-core processor, and the third action can be executed by the second core in the multi-core processor.

[0144] In this implementation example, the processor may refer to a system-on-a-chip (SoC) that integrates one or more processors and other electronic components, a single-core processor, a multi-core processor, or a core contained in a single-core or multi-core processor, wherein the core may be implemented by a CPU, GPU, APU, MIC, DSP, NPU, hardware accelerator or machine learning accelerator, etc., but is not limited to the implementation example of this launch.

[0145] A stress sensor is a device for measuring thermal stress. Specifically, a stress sensor can be a device that measures the stress generated by thermal expansion or contraction due to temperature changes. For example, stress sensors can be implemented using strain gauges, piezoresistive sensors, piezoelectric sensors, fiber optic sensors, magnetic stress sensors, capacitive stress sensors, and so on.

[0146] According to one example of this disclosure, the stress sensor may include a first stress sensor and a second stress sensor. The first stress sensor is a stress sensor equipped in the 2-1 fixing means for measuring the stress on the first inner surface 201, and the second stress sensor is a stress sensor equipped in the 2-2 fixing means for measuring the stress on the second inner surface 202. Alternatively, the stress sensor may consist of two components, as described above, but it may also consist of a single stress sensor, in which case the function of measuring the stress on either the first inner surface 201 or the second inner surface 202 can be performed.

[0147] Because heat can be released from the outdoor unit 10 in the housing 200, the temperature difference between the housing 200 and the interior of the container body (which may be the space cooled by the air conditioning indoor unit) may exceed the specified temperature. Therefore, the first inner side 201 or the second inner side 202 of the container 100 may thermally expand or contract, leading to increased fatigue of the container structure. Particularly in the housing 200, in the area where the pipe section contacts the second-1 and second-2 fixing means, the waste heat temperature may be very high.

[0148] Therefore, the first stress sensor and the second stress sensor are respectively equipped on the first inner side 201 and the second inner side 202 to effectively measure stress.

[0149] An electronic device, based on the user's input regarding the air conditioner's cooling performance, identifies the target power consumption of the air conditioner and transmits this target power consumption to the air conditioner (specifically, the air conditioner's communication interface) via a communication interface, thereby allowing the air conditioner's power consumption (i.e., cooling performance) to be set. Here, if a target power consumption for the indoor unit is set, the air conditioner (i.e., both the indoor and outdoor units) can operate at that target power consumption.

[0150] Furthermore, the electronic device can re-identify the target power consumption of the air conditioner based on the stress values ​​measured by the stress sensor. Specifically, the electronic device can re-identify the target power consumption of the air conditioner based on the stress values ​​measured by the stress sensor, and transmit the updated target power consumption to the air conditioner via a communication interface, thereby changing the air conditioner's target power consumption. In this case, the air conditioner (i.e., the indoor and outdoor units) can be driven to consume the corresponding target power consumption.

[0151] Specifically, the electronic device re-identifies the target power consumption of the air conditioner based on the stress values ​​measured by the first and second stress sensors (e.g., the first stress sensor measures 120 MPa, and the second stress sensor measures 110 MPa). (For example, the target power consumption is identified as 4.0 kW; since the measurements of the first and second stress sensors exceed the standard value, the target power consumption can be reduced to 3.5 kW by lowering the stress). Here, the electronic device can identify the target value and re-identify the target power consumption based on it. Furthermore, the target value is the target value of the stress sensor used to identify the target power consumption.

[0152] For example, the electronic device can identify the average stress value measured by the first and second stress sensors (e.g., 115 MPa) as the benchmark value for the stress sensors. If this benchmark value is higher than a set first value (e.g., 110 MPa), the target power consumption of the air conditioner can be re-identified as a second value (e.g., 0.5 kW) minus the standard target power consumption (e.g., 3.5 kW). In this case, thermal stress caused by excessive temperature difference may damage the container, thus reducing the target power consumption.

[0153] Conversely, the electronic equipment can identify the average stress value (e.g., 100 MPa) measured by the first and second stress sensors as the target value of the stress sensors. If this target value is lower than a set first value (e.g., 110 MPa), the target power consumption of the air conditioner can be added to a set second value (e.g., 0.5 kW) in the standard target power consumption (e.g., 3.5 kW) and re-identified as 4.0 kW. In this case, since the pressure generated by the thermal stress due to the temperature difference between the container interior and the containment section is not large, the target power consumption can be increased to ensure cooling performance.

[0154] On the other hand, the process of re-identifying the target power consumption based on the values ​​measured by the first stress sensor and the second stress sensor can also be performed by identifying the average value of the values ​​measured by the first stress sensor and the second stress sensor as the target value, and is not limited to the example described.

[0155] Additionally, according to one example of this disclosure, the electronic device may also include a temperature sensor.

[0156] A temperature sensor is a device that measures the temperature of an environment or a specific object. A temperature sensor detects temperature and converts it into an electrical signal, which is then sent to a processor. For example, temperature sensors can be implemented as thermocouples, RTDs (Resistance Temperature Detectors), thermistors, integrated circuit temperature sensors, bimetallic temperature sensors, fiber optic temperature sensors, etc., but are not limited to these examples; many different temperature sensors can be used.

[0157] According to one embodiment of this disclosure, the temperature sensor has a first fixing means and can measure the temperature of the outdoor unit.

[0158] The temperature sensor can measure the temperature of the outdoor unit and transmit the measured value to the processor through the communication interface.

[0159] The thermal stress measured by the stress sensor is greatly affected by vibration or external interference, which will produce errors during the measurement process. In this case, the measured values ​​of the first stress sensor and the second stress sensor will have a large difference.

[0160] Therefore, according to one example of this disclosure, the electronic device can obtain the temperature of the outdoor unit from a temperature sensor if the difference between the stress values ​​measured by the first stress sensor and the second stress sensor (e.g., 90 MPa and 150 MPa) exceeds a set third value (e.g., 20 MPa). Here, the electronic device can identify the larger of the stress values ​​measured by the first stress sensor and the second stress sensor (e.g., 150 MPa) as the target value when the outdoor unit temperature (e.g., 55 degrees Celsius) is higher than a set fourth value (e.g., 50 degrees Celsius). Furthermore, the electronic device can identify the smaller of the stress values ​​measured by the first stress sensor and the second stress sensor (e.g., 90 MPa) as the target value when the outdoor unit temperature (e.g., 30 degrees Celsius) is lower than the set fourth value. Conversely, according to one embodiment of this disclosure, the electronic device can identify the average value (e.g., 95 MPa) of the stress values ​​measured by the first stress sensor and the second stress sensor respectively (e.g., 90 MPa and 100 MPa) as the target value when the difference between the stress values ​​measured by the first stress sensor and the second stress sensor respectively (e.g., 90 MPa and 100 MPa) is lower than a set third value (e.g., 20 MPa).

[0161] Furthermore, if the target value of the electronic device is higher than the first set value (e.g., 110 MPa), it can re-identify the target power consumption of the air conditioner from the second set value (e.g., 0.5 kW) of the standard target power consumption (e.g., 3.5 kW) as the subtracted value (e.g., 3.0 kW).

[0162] Conversely, if the target value of the electronic device is lower than the set first value (e.g., 110 MPa), the target power consumption of the air conditioner can be re-identified as the standard target power consumption (e.g., 3.5 kW) plus the set second value (e.g., 0.5 kW) (e.g., 4.0 kW).

[0163] Therefore, according to this invention, when the stress sensor measurement is inaccurate due to external disturbances or other reasons (i.e., when there is a large difference between the measured values ​​of the first stress sensor and the second stress sensor), the target value of the stress sensor is identified using the measured value of the temperature sensor (i.e., one of the two stress values ​​is identified as the target value), and this value is used to re-identify the target power consumption, thereby appropriately controlling the power consumption of the air conditioner under external disturbance conditions. Furthermore, according to this invention, when the external disturbances are minor (i.e., when the measured values ​​of the first stress sensor and the second stress sensor are only slightly different), the average value of the two stress sensor measurements can also be used to effectively control the power consumption of the air conditioner.

[0164] In addition, the electronic device of this startup can monitor the measured values ​​of the stress sensor in each reference monitoring cycle.

[0165] Here, according to the electronic device of this activation, if at least one of the measured values ​​of the first stress sensor and the second stress sensor exceeds a preset fifth value, the monitoring period can be changed to a first period (e.g., 0.5 seconds) that is shorter than the reference monitoring period (e.g., 1 second). Conversely, if at least one of the measured values ​​of the first stress sensor and the second stress sensor is lower than the preset fifth value, the monitoring period can be changed to a second period (e.g., 1.5 seconds) that is longer than the reference monitoring period.

[0166] In addition, the electronic device can take turns monitoring the first stress sensor and the second stress sensor.

[0167] For example, with a monitoring cycle of 0.5 seconds, the electronic device can perform monitoring of the first stress sensor at t=0s, monitoring of the second stress sensor at t=0.5s, monitoring of the first stress sensor at t=1.0s, and monitoring of the second stress sensor at t=1.5s. Therefore, according to this start-up, the monitoring of the first and second stress sensors can be performed alternately, thereby increasing the durability of the stress sensors.

[0168] Furthermore, the electronic device can identify the measurement value with the smaller difference between the measured value of the first stress sensor and two temporally adjacent measured values ​​of the second stress sensor (i.e., if the first stress sensor measured the stress value at t = 1.0 s, then the two measured values ​​of the second stress sensor will be the measured values ​​at t = 0.5 s and t = 1.5 s), thus identifying the base stress value of the first and second stress sensors. The process of identifying the target value based on the respective measured values ​​of the first and second stress sensors, and thereby identifying the target power consumption, has been described in detail above and is omitted here.

[0169] According to this invention, among the temporally adjacent measurements of the second stress sensor, the measurement value of the second stress sensor that differs less from the measurement value of the first stress sensor can be identified as the measurement value of the second stress sensor, thereby reducing the measurement error of the stress sensor. This allows for alternating monitoring of the first and second stress sensors, thereby increasing the durability of the stress sensor.

[0170] The preferred embodiments of this launch have been described and illustrated above, but this launch is not limited to the specific embodiments described. Various modifications can be made by a person of ordinary skill in the art within the scope of this launch without departing from the spirit of this launch requested, and these modifications should not be individually understood from the technical ideas and vision of this launch.

Claims

1. A container structure comprising a housing section for accommodating an outdoor unit, wherein, The container structure includes: container; The housing is surrounded by the container body, a first opening formed on the first side of the container, and a second opening formed on the second side of the container, forming a structure that can accommodate the outdoor unit; The first fixing means, for fixing the outdoor unit, includes the housing portion having at least one area; and At least one through hole is formed on at least one of the first inner side of the receiving part with a first upward opening, the second inner side of the receiving part with a second upward opening, and the third inner side corresponding to the upper part of the receiving part, so that the pipe connecting the outdoor unit and the interior of the main body can pass through.

2. The container structure according to claim 1, wherein, The container structure includes a bottom frame formed at the bottom of the container to support the container. The lower frame extends laterally from the lower part of the first side or the lower part of the second side of the container.

3. The container structure according to claim 1, wherein, The container structure includes supports formed on the first face and the side adjacent to the second face. The first fixing means is provided from the support portion to the inside of the support portion of the main body.

4. The container structure according to claim 1, wherein, The at least one through hole includes a first through hole. The first through hole is formed on the third inner side corresponding to the upper part of the receiving portion. The distance between the second inner side and the second opening is longer than the specified side length of the outdoor unit. A container structure in which the distance between the first inner side and the first opening is longer than a specified value for the front length of the outdoor unit.

5. The container structure according to claim 1, wherein, The first fixing means is formed in the lower region of the receiving part.

6. The container structure according to claim 1, wherein, The container structure includes a second securing means for preventing protrusion from the pipe section, the first opening, or the second opening. The second fixing means has at least one of the first inner side and the second inner side.

7. The container structure according to claim 1, wherein, At least one of the first inner surface and the second inner surface has a heat insulation member.