storage device
Patent Information
- Application Number
- CN202521928399.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-08
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-08
AI Technical Summary
目前已有的发明仅通过一种存储条件或者一个存储装置无法满足所有奶酪的存储需求
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Figure CN224727522U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of food preservation, and more specifically to a storage device. Background Technology
[0002] Current food preservation storage devices are mostly designed for single storage conditions. However, some foods vary greatly in moisture content and texture due to differences in freshness and processing methods, requiring different storage conditions. For example, cheese comes in many varieties, including fresh cheese, soft cheese, and hard cheese, each with different storage requirements. Fresh cheese is typically stored soaked in a low-temperature, concentrated brine solution with a humidity level of approximately 100%. Hard cheese is stored with an average humidity level greater than 90%, while soft cheese is stored with an average humidity level of 80%-90%. Existing inventions using only one storage condition or device cannot meet the storage needs of all types of cheese. Utility Model Content
[0003] To address the aforementioned problems, this application provides a storage device comprising a housing, a cover over the opening of the housing, and a humidity regulating component disposed on the cover. The housing includes multiple independent accommodating cavities. The cover includes a cover body and an mounting opening formed by the cover body, the mounting opening connecting all accommodating cavities. The humidity regulating component includes a moisture-permeable element and a shielding element corresponding to the moisture-permeable element, the moisture-permeable element being disposed at the mounting opening. The storage device is configured such that when the cover is placed over the housing, the accommodating cavities communicate with the outside only through the mounting opening. The shielding element adjusts the effective moisture-permeable area of the moisture-permeable element by changing its overlap area with the moisture-permeable element.
[0004] Furthermore, the cover also includes a cover attachment disposed below the cover body. The cover attachment includes a frame-shaped support frame and a fixing part. The fixing part is located at the four corners of the support frame and extends upward to connect to the cover body. A sliding groove is formed between the support frame and the cover body. The side edge of the shielding member is slidably embedded in the sliding groove.
[0005] Furthermore, the support frame includes a first support portion and a second support portion that are perpendicularly connected to each other. The first support portion is disposed around the second support portion and protrudes upward from the second support portion. The upper surface of the first support portion is a certain distance from the lower surface of the cover body to form the groove. The moisture-permeable member is fixed to the second support portion, and the shielding member is slidably disposed in the groove.
[0006] Furthermore, the box body includes a first accommodating cavity and a second accommodating cavity; the moisture-permeable component includes a first moisture-permeable component and a second moisture-permeable component connected to each other, the first moisture-permeable component is projected in the first accommodating cavity, and the second moisture-permeable component is projected in the second accommodating cavity.
[0007] Furthermore, the first moisture-permeable element and the second moisture-permeable element have different moisture permeability rates.
[0008] Furthermore, the first breathable element and the second breathable element are integrally molded.
[0009] Furthermore, the shielding member includes a first cover plate and a second cover plate disposed opposite to each other, wherein the first cover plate and the second cover plate abut together and are adapted to the breathable member.
[0010] Furthermore, the box body also includes a vertically arranged partition plate, which is used to separate the first receiving cavity from the second receiving cavity.
[0011] Furthermore, the moisture-permeable element is a moisture-permeable membrane.
[0012] Furthermore, the storage device also includes a sterilization device; the sterilization device is configured to select a sterilization mode of different intensities according to the ambient humidity inside the storage device.
[0013] This application provides a storage device, comprising a box body, a lid covering the opening of the box body, and a humidity regulating component disposed on the lid. The box body includes multiple independent accommodating cavities. The lid includes a lid body and an installation opening formed by the lid body, the installation opening communicating with all accommodating cavities. The humidity regulating component includes a moisture-permeable element and a shielding element corresponding to the moisture-permeable element, the moisture-permeable element being disposed at the installation opening. When the lid is placed on the box body, the accommodating cavities communicate with the outside only through the installation opening. The shielding element adjusts the effective moisture-permeable area of the moisture-permeable element by changing its overlap area with the moisture-permeable element. The storage device of this application has multiple independent accommodating cavities within its box body, and the exposure degree of the moisture-permeable element can be flexibly adjusted by adjusting the area of the overlap area between the shielding element and the lid body, thus flexibly regulating the humidity within each accommodating cavity to meet the differentiated humidity requirements of different foods within the same storage device. Attached Figure Description
[0014] Figure 1 This is an overall schematic diagram of the storage device of this application; Figure 2 This is a cross-sectional view of the storage device of this application; Figure 3 This is a schematic diagram of the interior of the box in this application; Figure 4 This is a first-person view of the cover of this application; Figure 5 This is a second-view schematic diagram of the cover of this application; Figure 6 This is a sectional view of the cover of this application; Figure 7This is a schematic diagram of the first state of the storage device in this application; Figure 8 This is a schematic diagram of the second state of the storage device in this application; Figure 9 This is a schematic diagram of the third state of the storage device in this application; Figure 10 This is a schematic diagram of the sterilization device of this application.
[0015] Explanation of reference numerals in the attached figures 100. Storage device; 1. Box body; 11. First accommodating cavity; 12. Second accommodating cavity; 13. Accommodating cavity; 14. Divider plate; 2. Cover; 21. Cover body; 22. Mounting port; 23. Cover attachment; 231. Support frame; 2311. First bearing part; 2312. Second bearing part; 232. Fixing part; 24. Slide groove; 3. Humidity regulating component; 31. Moisture permeable component; 311. First moisture permeable component; 312. Second moisture permeable component; 32. Shielding component; 321. First cover plate; 322. Second cover plate; 323. Grip protrusion; 6. Slide rail; 7. Sterilization device; 71. Humidity sensor; 72. Sterilization module; 73. Control module. Detailed Implementation
[0016] To gain a more detailed understanding of the features and technical content of the embodiments disclosed herein, the following description is provided in conjunction with the accompanying drawings. Figure 1-10 The implementation of the embodiments of this disclosure is described in detail. The accompanying drawings are for illustrative purposes only and are not intended to limit the embodiments of this disclosure. In the following technical description, for ease of explanation, various details are used to provide a full understanding of the disclosed embodiments. However, one or more embodiments may still be implemented without these details. In other instances, well-known structures and apparatuses may be simplified in their depiction to simplify the drawings.
[0017] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate for the embodiments of this disclosure described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.
[0018] In this disclosure, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of the embodiments of this disclosure and their implementations, and are not intended to limit the indicated devices, elements, or components to having a specific orientation, or to require them to be constructed and operated in a specific orientation. Furthermore, some of the aforementioned terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may in some cases indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this disclosure according to the specific circumstances.
[0019] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.
[0020] Unless otherwise stated, the term "multiple" means two or more.
[0021] The term "and / or" describes an association between objects, indicating that three relationships can exist. For example, A and / or B means: A or B, or A and B.
[0022] It should be noted that, unless otherwise specified, the embodiments and features described in the present disclosure can be combined with each other.
[0023] To provide a better understanding of the purpose, structure, features, and functions of this application, detailed descriptions are provided below with reference to specific embodiments.
[0024] This application provides a storage device 100, which includes a housing 1, a cover 2 covering the opening of the housing 1, and a humidity regulating component 3 disposed on the cover 2. The housing 1 includes multiple independent accommodating cavities 13. The cover 2 includes a cover body 21 and an installation opening 22 formed by the cover body 21, the installation opening 22 connecting all the accommodating cavities 13. The humidity regulating component 3 includes a moisture-permeable element 31 and a blocking element 32 corresponding to the moisture-permeable element 31, the moisture-permeable element 31 being disposed on the installation opening 22. The storage device 100 is configured such that when the cover 2 is placed on the housing 1, the accommodating cavities 13 are only connected to the outside through the installation opening 22. The blocking element 32 adjusts the effective moisture-permeable area of the moisture-permeable element 31 by changing its overlap area with the moisture-permeable element 31.
[0025] The box 1 encloses and forms the internal accommodating space of the storage device 100. An opening of the box 1 is provided above the accommodating space for taking and placing items inside the storage device 100. The interior of the box 1 is divided into multiple independent accommodating cavities 13, which are physically isolated from each other and are used to store the same or different items respectively, so as to prevent the items from contacting each other.
[0026] The cover 2 is connected to the opening of the box 1 by means of snaps, hinges, etc., and can cover the opening of the box 1 to close or open the opening of the box 1. Specifically, the cover 2 includes a cover body 21 and an installation opening 22 formed by the cover body 21. The outer periphery size and shape of the cover body 21 are adapted to the size and shape of the opening of the box 1.
[0027] The mounting port 22 directly connects to all the independent accommodating cavities 13 inside the box body 1, providing a channel for humidity regulation in each accommodating cavity 13; that is, when the cover 2 is placed on the box body 1, the accommodating cavity 13 is only connected to the outside through the mounting port 22.
[0028] The humidity control component 3 is disposed on the cover 2 and includes a moisture-permeable component 31 and a shielding component 32. The moisture-permeable component 31 is disposed at the mounting opening 22 of the cover 2 and completely occupies the mounting opening 22, so as to allow water vapor molecules to be exchanged in a controlled manner inside and outside the storage device 100, thereby regulating the humidity inside each accommodating cavity 13.
[0029] The moisture-permeable component 31 is fixedly or detachably installed at the mounting port 22 of the cover 2.
[0030] In one embodiment, the shielding member 32 can be configured as a roll-type structure, that is, the shielding member 32 is configured as a structure that can be rolled up and folded, and the overlapping area between the shielding member 32 and the moisture-permeable member 31 is changed by the rolling method to adjust the effective moisture-permeable area of the moisture-permeable member 31.
[0031] In another embodiment, the shielding member 32 is configured as a sliding structure. Specifically, the shielding member 32 is slidably connected to the cover body 21 through a sliding connection mechanism such as a slide rail, a slide groove 24, or a ball bearing guide rail. It can perform horizontal linear reciprocating motion on the upper or lower surface of the cover body 21 to shield or expose at least part of the moisture-permeable member 31 disposed at the mounting opening 22. By sliding the shielding member 32, the overlap area between the shielding member 32 and the moisture-permeable member 31 is changed, thereby adjusting the effective moisture-permeable area of the moisture-permeable member 31 to control the rate of humidity exchange between the accommodating cavity 13 and the outside world, thereby changing the humidity environment of the accommodating cavity 13 of the storage device 100.
[0032] During the sliding process of the shield 32, there is a specific first state in which at least a portion of the shield 32 overlaps with a portion of the cover body 21 in the vertical direction. That is, a part of the shield 32 slides to the area of the cover body 21, rather than covering the mounting opening 22 or the location of the breathable part 31.
[0033] The sliding connection mechanism extends to the area of the cover body 21, providing support and a sliding path for the shielding member 32, so that the shielding member 32 has a first state during the sliding process, that is, there is at least a partial overlap between the shielding member 32 and the cover body 21.
[0034] Specifically, the first state can be that the shielding member 32 partially exposes the breathable member 31; the first state can also be that the shielding member 32 completely exposes the breathable member 31.
[0035] The shielding member 32 partially exposes the moisture-permeable member 31. By adjusting the exposed area of the moisture-permeable member 31, the humidity exchange rate is adjusted to meet the humidity requirements of the stored items in the accommodating cavity 13.
[0036] The shielding element 32 completely exposes the moisture-permeable element 31, which has the maximum humidity control capacity and can quickly adjust the humidity inside the accommodating cavity 13.
[0037] During the sliding process, the shielding member 32 also exists in a second state, in which the shielding member 32 is in a state of completely blocking the moisture-permeable member 31, that is, the shielding member 32 overlaps with the moisture-permeable member 31 to turn off the humidity-regulating function of the moisture-permeable member 31 in order to maintain a specific humidity environment in the accommodating cavity 13.
[0038] The cover 2 also includes a cover attachment 23 disposed below the cover body 21. The cover attachment 23 includes a frame-shaped support frame 231 and a fixing part 232. The fixing part 232 is located at the four corners of the support frame 231 and extends upward to the cover body 21. A sliding groove 24 is formed between the support frame 231 and the cover body 21. The side edge of the shielding member 32 is slidably embedded in the sliding groove 24.
[0039] The cover attachment 23 is connected to the lower part of the cover body 21 via the fixing parts 232 located at the four corners.
[0040] The cover attachment 23 includes a frame-shaped support frame 231 and a fixing part 232. The frame-shaped support frame 231 is a hollow frame structure, and its overall outline is the same as or approximately the same as the outer periphery outline of the cover body 21.
[0041] The fixing part 232 is configured as a column, boss and connecting block protruding upward from the four corner points of the cover attachment part 23, so as to firmly suspend the support frame 231 of the cover attachment part 23 to the cover body 21.
[0042] The fixing part 232 extends upward from the four corners of the support frame 231 and is connected to the cover body 21, so that a groove 24 with a specific height and width is formed between the upper surface of the support frame 231 and the lower surface of the cover body 21. Specifically, the groove 24 is located between the upper surface of the frame support frame 231 and the lower surface of the cover body 21.
[0043] The side edge of the shield 32 is slidably embedded in the groove 24, and the groove 24 provides a preset horizontal sliding path for the shield 32.
[0044] Meanwhile, the four fixing parts 232 are located at the four corners of the slide groove 24, which can limit the extreme position of the sliding path of the blocking member 32. That is, when the edge of the blocking member 32 contacts the inner side of the fixing part 232 during the sliding process, it is blocked by the fixing part 232 and stops sliding.
[0045] The frame-shaped support frame 231 and the fixing part 232 are integrally formed or firmly connected by welding, bonding or other methods.
[0046] The support frame 231 includes a first support portion 2311 and a second support portion 2312 that are perpendicularly connected to each other. The first support portion 2311 is disposed around the second support portion 2312 and protrudes upward from the second support portion 2312. The upper surface of the first support portion 2311 is at a certain distance from the lower surface of the cover body 21, forming the sliding groove 24. The moisture-permeable member 31 is fixed to the second support portion 2312, and the shielding member 32 is slidably disposed in the sliding groove 24.
[0047] The first support portion 2311 surrounds the second support portion 2312 and protrudes upward; the second support portion 2312 is a frame-shaped platform structure located inside the annular area enclosed by the first support portion 2311. The first support portion 2311 and the second support portion 2312 are perpendicular to each other at the connection point, forming an L-shaped cross section.
[0048] The groove 24 is formed by the gap between the upper surface of the first support portion 2311 and the lower surface of the cover body 21. Since the first support portion 2311 protrudes upward from the outer edge of the second support portion 2312, the top of the first support portion 2311 is higher than the upper surface of the second support portion 2312. The first support portion 2311 raises the position of the groove 24 and at the same time raises the sliding path of the shielding member 32. The moisture-permeable member 31 is fixed to the second support portion 2312 by means of snapping, bonding, etc., to ensure that the shielding member 32 can be suspended and cover the moisture-permeable member 31.
[0049] By setting the first support portion 2311 to protrude upward from the outer periphery of the second support portion 2312, the sliding path of the shielding member 32 is raised above the moisture-permeable member 31, so as to avoid frictional contact between the shielding member 32 and the moisture-permeable member 31 below during the sliding process, which would cause damage to the moisture-permeable member 31.
[0050] In one embodiment, the housing 1 includes a first accommodating cavity 11 and a second accommodating cavity 12; the moisture-permeable component 31 includes a first moisture-permeable component 311 and a second moisture-permeable component 312 connected to each other, the first moisture-permeable component 311 is projected onto the first accommodating cavity 11, and the second moisture-permeable component 312 is projected onto the second accommodating cavity 12.
[0051] The box body 1 includes a partition that divides the accommodating space inside the box body 1 into a first accommodating cavity 11 and a second accommodating cavity 12. The first accommodating cavity 11 and the second accommodating cavity 12 are isolated from each other and do not communicate with each other.
[0052] The first breathable component 311 and the second breathable component 312 are simultaneously fixedly connected to the upper surface of the second bearing portion 2312 of the support frame 231, and cover and connect the first accommodating cavity 11 and the second accommodating cavity 12 below through the mounting port 22.
[0053] The first moisture-permeable element 311 is located entirely or mostly within the opening range of the first accommodating cavity 11 in the orthographic projection area from top to bottom, and is mainly used to regulate the humidity inside the first accommodating cavity 11. The second moisture-permeable element 312 is located entirely or mostly within the opening range of the second accommodating cavity 12 in the orthographic projection area from top to bottom, and is mainly used to regulate the humidity inside the second accommodating cavity 12.
[0054] It should be noted that the majority of the area located within the opening range of the first accommodating cavity 11 or the majority of the area located within the opening range of the second accommodating cavity 12 can be 60% or 70% or more of the total area of the first moisture-permeable member 311 and 60% or 70% or more of the total area of the second moisture-permeable member 312. Of course, other preset percentages are also possible, and these percentages are not intended to limit the technical solution of this application.
[0055] By setting the first moisture-permeable component 311 to mainly regulate the humidity of the first accommodating cavity 11, and the second moisture-permeable component 312 to mainly regulate the humidity environment of the second accommodating cavity 12, the humidity of the first accommodating cavity 11 and the second accommodating cavity 12 can be adjusted independently according to the different needs of the items stored inside, and the humidity adjustment in the two accommodating cavities 13 does not affect each other.
[0056] The first moisture-permeable element 311 and the second moisture-permeable element 312 have different moisture permeability rates.
[0057] Moisture permeability is the rate at which water vapor can pass through the moisture permeable element 31, usually expressed in g / m²·24h.
[0058] Specifically, the different permeability rates of the first moisture-permeable element 311 and the second moisture-permeable element 312 can be achieved by the first moisture-permeable element 311 and the second moisture-permeable element 312 being made of different types of moisture-permeable materials. For example, the first moisture-permeable element 311 may be made of a polytetrafluoroethylene membrane with high permeability, while the second moisture-permeable element 312 may be made of a porous polyethylene membrane with lower permeability. The different permeability rates of the first moisture-permeable element 311 and the second moisture-permeable element 312 can also be achieved by using the same substrate for both elements and adjusting their thicknesses; generally, the permeability decreases as the thickness of the moisture-permeable element 311 increases. Furthermore, the different permeability rates of the first moisture-permeable element 311 and the second moisture-permeable element 312 can also be achieved by the first moisture-permeable element 311 and the second moisture-permeable element 312 having different pore size distributions, porosities, or pore densities to directly affect the water vapor permeation rate.
[0059] The humidity environment of the first accommodating cavity 11 is mainly affected by the moisture permeability of the first moisture-permeable element 311. The humidity environment of the second accommodating cavity 12 is mainly affected by the moisture permeability of the second moisture-permeable element 312.
[0060] Based on the items to be stored in each accommodating cavity 13, the moisture permeability of the corresponding moisture-permeable component 31 is configured. At the same time, by sliding the first cover plate 321 and the second cover plate 322, the humidity of the first accommodating cavity 11 and the second accommodating cavity 12 is further adjusted within the basic range of their respective moisture permeability settings to meet the humidity requirements of the first accommodating cavity 11 and the second accommodating cavity 12.
[0061] Of course, the first moisture-permeable component 311 and the second moisture-permeable component 312 can also be set to have the same moisture permeability. By sliding the first cover plate 321 and the second cover plate 322, the moisture permeability of the first moisture-permeable component 311 and the second moisture-permeable component 312 can be adjusted to regulate the humidity of the first accommodating cavity 11 and the second accommodating cavity 12 and meet the humidity requirements of the first accommodating cavity 11 and the second accommodating cavity 12.
[0062] The first breathable part 311 and the second breathable part 312 are integrally formed.
[0063] The first breathable component 311 and the second breathable component 312 are formed in one step during the manufacturing process, forming a seamless integral component.
[0064] Specifically, during the manufacturing process, the first moisture-permeable part 311 and the second moisture-permeable part 312 use the same tool to simultaneously extrude polymer melts with different moisture permeability properties into a seamless, continuous sheet. Alternatively, the first moisture-permeable part 311 and the second moisture-permeable part 312 may use the same substrate, but different moisture-permeable materials may be coated in different areas of the substrate, resulting in different moisture permeability rates in different areas.
[0065] The first breathable component 311 and the second breathable component 312 are integrally molded. Compared with separate splicing, integral molding eliminates the existence of connecting seams between different breathable components 31, giving them higher mechanical strength and preventing damage due to stretching or other factors.
[0066] The shielding member 32 includes a first cover plate 321 and a second cover plate 322 disposed opposite to each other. When the first cover plate 321 and the second cover plate 322 abut together, they are adapted to the breathable member 31.
[0067] Specifically, the first cover plate 321 and the second cover plate 322 are coplanar and slidably disposed side by side in the groove 24 between the cover attachment 23 and the cover body 21. That is, the first cover plate 321 and the second cover plate 322 are located between the upper surface of the first support part 2311 and the lower surface of the cover body 21, and are suspended above the moisture-permeable member 31.
[0068] The first cover plate 321 and the second cover plate 322 are independently movable. That is to say, moving one of the first cover plate 321 and the second cover plate 322 will not force the other to move; of course, when needed, the first cover plate 321 and the second cover plate 322 can be moved simultaneously, and the direction of movement can be selected according to actual needs.
[0069] The first cover plate 321 and the second cover plate 322 have the same structure, both being plate-shaped or sheet-shaped structures. The first cover plate 321 and the second cover plate 322 are in different sliding positions, forming different shielding combinations.
[0070] Specifically, the first cover plate 321 covers the first breathable element 311 corresponding to the lower first receiving cavity 11. The first cover plate 321 slides within its corresponding sliding groove 24 segment, changing the covering area of the first breathable element 311 from completely covering the first breathable element 311 to partially exposing the first breathable element 311 or completely exposing the first breathable element 311. The second cover plate 322 covers the second breathable element 312 corresponding to the lower second receiving cavity 12. The second cover plate 322 slides within its corresponding sliding groove 24 segment, changing its covering area of the second breathable element 312 from completely covering the second breathable element 312 to partially exposing the second breathable element 312 or completely exposing the second breathable element 312.
[0071] The first cover plate 321 and the second cover plate 322 are manually pushed together side by side. The overall outline and size of the first cover plate 321 and the second cover plate 322 are adapted to the shape and size of the moisture-permeable component 31 or the mounting port 22 fixedly installed below. That is, when the first cover plate 321 and the second cover plate 322 are in a close side by side state, they can completely cover the entire area of the moisture-permeable component 31 or the mounting port 22.
[0072] By setting the first cover plate 321 and the second cover plate 322, the humidity exchange rate of the first accommodating cavity 11 and the second accommodating cavity 12 can be adjusted independently without affecting each other, providing the required precise and dynamically adjustable humidity conditions for different items.
[0073] The upper surfaces of the first cover plate 321 and the second cover plate 322 are respectively provided with upward protruding gripping protrusions 323, which are used by the user's hand to make it easier to push and pull the first cover plate 321 and the second cover plate 322.
[0074] The box body 1 includes a vertically arranged partition plate 14, which is used to separate the first accommodating cavity 11 and the second accommodating cavity 12.
[0075] The partition 14 is a sheet-like partition structure, and its two opposite, vertical side edges are connected to the inner wall of the box 1 by means of fastening, welding, or bonding.
[0076] Specifically, in the vertical direction, the height of the partition plate 14 is equal to or slightly lower than the height of the internal cavity 13 of the box body 1, its upper edge is close to the lower surface of the cover attachment 23, and its lower edge extends to the bottom of the internal cavity 13 of the box body 1.
[0077] The first accommodating cavity 11 and the second accommodating cavity 12 share the same cover 2 and the space above the mounting port 22. The partition plate 14 completely isolates the items in the first accommodating cavity 11 and the second accommodating cavity 12, so that the first accommodating cavity 11 and the second accommodating cavity 12 can only exchange humidity with the external environment through the corresponding moisture-permeable area directly above them, ensuring that the humidity in the first accommodating cavity 11 and the second accommodating cavity 12 can change independently and without interfering with each other.
[0078] In one embodiment, the box body 1 has a vertical slide 6, and the partition plate 14 is inserted into the slide 6. The slide 6 is a pair of vertical, slender fixed structures arranged on the inner walls of opposite sides of the box body 1.
[0079] The slide 6 is integrally formed with the box body 1. The two vertically oriented sides of the partition plate 14 are inserted into the slide 6. When installing the partition plate 14, the partition plate 14 can only move up and down along the slide 6. The slide 6 restricts the horizontal movement of the partition plate 14 to ensure that the partition plate 14 is vertically and stably fixed in the box body 1.
[0080] In other alternative embodiments, the slide rail 6 includes three pairs of slide rails 6 arranged side by side. Depending on actual needs, one pair of slide rails 6 can be selected to fix the partition plate 14. When replacement is required, the partition plate 14 can be removed and another pair of slide rails 6 can be inserted. This allows for flexible division of the space between the first accommodating cavity 11 and the second accommodating cavity 12 within the housing 1.
[0081] The moisture-permeable component 31 is a moisture-permeable membrane.
[0082] The moisture-permeable membrane is a thin sheet-like film that is fixedly attached to the upper surface of the second support portion 2312 of the support frame 231 of the cover attachment portion 23. The outline and size of the moisture-permeable membrane are precisely matched with the mounting port 22 area on the cover 2 and the upper surface of the second support portion 2312 of the support frame 231 to ensure complete coverage and sealing of the mounting port 22.
[0083] The moisture-permeable membrane automatically adjusts the humidity value inside the box 1 based on the properties of its membrane material, providing the required humidity conditions for the accommodating cavity 13 inside the box 1.
[0084] The storage device 100 is used to store cheese.
[0085] Specifically, the storage device 100 is divided into a first accommodating cavity 11 and a second accommodating cavity 12, wherein the first accommodating cavity 11 and the second accommodating cavity 12 respectively store cheese of different forms. The humidity conditions in the first accommodating cavity 11 and the second accommodating cavity 12 are adjusted according to the different forms of cheese. Specifically, the effective moisture permeation area of the first moisture permeation member 311 and the second moisture permeation member 312 is adjusted to adjust the humidity in the first accommodating cavity 11 and the second accommodating cavity 12.
[0086] For example, the first accommodating cavity 11 is located on the left side of the storage device 100 in the figure, and the second accommodating cavity 12 is located on the right side of the storage device 100. The first moisture-permeable element 311 above the first accommodating cavity 11 has a moisture permeability of 80%. When the humidity is higher than 80%, it can permeate moisture outward. When the humidity in the environment is lower than 80%, the moisturizing film automatically adjusts the moisture permeability rate to reduce humidity loss and ensure that the humidity in the first accommodating cavity 11 is around 80%, which meets the storage requirements of soft cheese. The second moisture-permeable element 312 above the second accommodating cavity 12 has a moisture permeability of 90%. When the humidity is higher than 90%, it automatically permeates moisture outward. When the humidity in the environment is lower than 90%, the moisturizing film automatically adjusts the moisture permeability rate to reduce humidity loss and ensure that the humidity in the first accommodating cavity 11 is around 90%, which meets the storage requirements of hard cheese.
[0087] The first moisture-permeable component 311 and the second moisture-permeable component 312 work together with the first cover plate 321 and the second cover plate 322 to jointly regulate the humidity in the first accommodating cavity 11 and the second accommodating cavity 12.
[0088] See Figure 1 The first cover plate 321 and the second cover plate 322 abut against each other and completely cover the moisture-permeable part 31. The humidity of the first accommodating cavity 11 and the second accommodating cavity 12 in the box 1 of the storage device 100 is 100%. Both the first accommodating cavity 11 and the second accommodating cavity 12 can be used to store fresh cheese.
[0089] See Figure 7 The first cover plate 321 on the left is pushed open, completely exposing the first moisture-permeable component 311. The humidity inside the first accommodating cavity 11 is 80%, which is used to store soft cheese. The second cover plate 322 on the right completely covers the second moisture-permeable component 312. The humidity inside the second accommodating cavity 12 is 100%, which is used to store fresh cheese.
[0090] See Figure 8 The second cover plate 322 on the right side is pushed open, fully exposing the second moisture-permeable component 312. The humidity inside the second accommodating cavity 12 is 90%, which is used to store hard cheese. The first cover plate 321 on the left side completely covers the first moisture-permeable component 311. The humidity inside the first accommodating cavity 11 is 100%, which is used to store fresh cheese.
[0091] See Figure 9 The first cover plate 321 on the left and the second cover plate 322 on the right are both pushed open, fully exposing the first moisture-permeable part 311 and the second moisture-permeable part 312. The humidity in the first accommodating cavity 11 is 80%, which is used to store soft cheese, and the humidity in the second accommodating cavity 12 is 90%, which is used to store hard cheese.
[0092] The first cover plate 321 cooperates with the first moisture-permeable component 311 to adjust the humidity in the first accommodating cavity 11, and the second cover plate 322 cooperates with the second moisture-permeable component 312 to adjust the humidity in the second accommodating cavity 12. The humidity conditions of the first accommodating cavity 11 and the second accommodating cavity 12 do not affect each other, providing the required precise and dynamically adjustable humidity conditions for different items.
[0093] The above describes four states in which the first cover plate 321 and the second cover plate 322 cover the first moisture-permeable element 311 and the second moisture-permeable element 312. In addition, the first cover plate 321 may also partially cover the first moisture-permeable element 311, and the second cover plate 322 may also partially cover the second moisture-permeable element 312. The positions of the first cover plate 321 and the second cover plate 322 can be adjusted according to actual needs. This application does not impose specific limitations.
[0094] In an optional embodiment, the storage device 100 is further provided with a sterilization device 7, which is configured to select a sterilization mode of different intensities according to the ambient humidity inside the storage device 100.
[0095] The sterilization device 7 includes a sterilization module 72, a humidity sensor 71, and a control module 73.
[0096] Specifically, when the humidity sensor 71 detects that the ambient humidity inside the storage device 100 is 100%, the control module 73 intelligently determines that the cheese stored in the cheese box is fresh cheese and controls the sterilization module 72 to automatically turn on the medium intensity sterilization mode to ensure that the fresh cheese is not contaminated by microorganisms.
[0097] When the humidity sensor 71 detects that the ambient humidity inside the storage device 100 is 90%, the control module 73 determines that the cheese stored in the cheese box is hard cheese and controls the sterilization module 72 to start the low-intensity sterilization mode.
[0098] When the humidity sensor 71 detects that the ambient humidity inside the storage device 100 is 80%, the control module 73 will determine that the cheese stored in the cheese box is soft cheese and control the sterilization module 72 to start the medium intensity sterilization mode.
[0099] When the humidity sensor 71 detects a change in the ambient humidity inside the storage device 100, the control module 73 determines that the type of cheese stored in the cheese box has changed and controls the sterilization module 72 to activate a high-intensity sterilization mode to ensure a fresh and clean environment inside the cheese box and avoid cross-contamination and odor mixing.
[0100] This application provides a storage device 100, which includes a housing 1, a cover 2 covering the opening of the housing 1, and a humidity regulating component 3 disposed on the cover 2. The housing 1 includes multiple independent accommodating cavities 13. The cover 2 includes a cover body 21 and an installation opening 22 formed by the cover body 21, which connects to all accommodating cavities 13. The humidity regulating component 3 includes a moisture-permeable element 31 and a shielding element 32 corresponding to the moisture-permeable element 31, which is disposed on the installation opening 22. When the cover 2 covers the housing 1, the accommodating cavities 13 are connected to the outside only through the installation opening 22. The shielding element 32 adjusts the effective moisture-permeable area of the moisture-permeable element 31 by changing its overlap area with the moisture-permeable element 31. The storage device 100 of this application has multiple independent accommodating cavities 13 inside the box body 1, and the exposure degree of the moisture-permeable component 31 can be flexibly adjusted by adjusting the area of the overlapping area between the shielding component 32 and the cover body 21, so as to flexibly adjust the humidity in each accommodating cavity 13 and meet the different humidity requirements of different foods in the same storage device 100.
[0101] In the description of this specification, references to terms such as "an embodiment," "some embodiments," "specifically," or "optional embodiments," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of those different embodiments or examples.
[0102] This application has been described with reference to the above-mentioned embodiments; however, the above embodiments are merely examples for implementing this application. It must be noted that the disclosed embodiments do not limit the scope of this application. On the contrary, any modifications and refinements made without departing from the spirit and scope of this application are within the scope of patent protection of this application.
Claims
1. A storage device (100) comprising a housing (1), a cover (2) covering an opening of the housing (1), and a humidity regulating component (3) disposed on the cover (2), characterized in that, The box body (1) includes multiple independent accommodating cavities (13); The cover (2) includes a cover body (21) and an installation opening (22) formed by the cover body (21), the installation opening (22) connecting all the receiving cavities (13); The humidity control component (3) includes a moisture-permeable component (31) and a shielding component (32) corresponding to the moisture-permeable component (31), wherein the moisture-permeable component (31) is disposed at the mounting port (22); The storage device (100) is configured such that when the cover (2) is placed on the box (1), the accommodating cavity (13) is connected to the outside only through the mounting port (22); the shielding member (32) adjusts the effective moisture permeability area of the moisture permeable member (31) by changing its overlap area with the moisture permeable member (31).
2. The storage device according to claim 1, characterized in that, The cover (2) also includes a cover attachment (23) disposed below the cover body (21). The cover attachment (23) includes a frame support frame (231) and a fixing part (232). The fixing part (232) is located at the four corners of the support frame (231) and extends upward to connect to the cover body (21). A groove (24) is formed between the support frame (231) and the cover body (21). The side edge of the shielding member (32) is slidably embedded in the groove (24).
3. The storage device according to claim 2, characterized in that, The support frame (231) includes a first support part (2311) and a second support part (2312) that are perpendicularly connected to each other. The first support part (2311) is disposed around the second support part (2312) and protrudes upward from the second support part (2312). The upper surface of the first support part (2311) is a certain distance from the lower surface of the cover body (21) to form the groove (24). The breathable member (31) is fixed to the second support part (2312), and the shielding member (32) is slidably disposed in the groove (24).
4. The storage device according to claim 1, characterized in that, The box body (1) includes a first accommodating cavity (11) and a second accommodating cavity (12); the moisture-permeable component (31) includes a first moisture-permeable component (311) and a second moisture-permeable component (312) connected to each other, the first moisture-permeable component (311) is projected in the first accommodating cavity (11), and the second moisture-permeable component (312) is projected in the second accommodating cavity (12).
5. The storage device according to claim 4, characterized in that, The first moisture-permeable element (311) and the second moisture-permeable element (312) have different moisture permeability rates.
6. The storage device according to claim 4, characterized in that, The first breathable part (311) and the second breathable part (312) are integrally formed.
7. The storage device according to claim 1, characterized in that, The shielding member (32) includes a first cover plate (321) and a second cover plate (322) disposed opposite to each other, and the first cover plate (321) and the second cover plate (322) are adapted to the breathable member (31) when they abut together.
8. The storage device according to claim 4, characterized in that, The box body (1) also includes a vertically arranged partition plate (14), which is used to separate the first accommodating cavity (11) and the second accommodating cavity (12).
9. The storage device according to claim 1, characterized in that, The moisture-permeable component (31) is a moisture-permeable membrane.
10. The storage device according to claim 1, characterized in that, The storage device (100) further includes a sterilization device (7); The sterilization device (7) is configured to select different intensity sterilization modes according to the ambient humidity inside the storage device (100).