The present application describes an interchangeable dismountable hinged box for storing core samples, specifically used in the field of the collection of mineral materials, deriving from activities of geological exploration, for subsequent analysis.
The invention reveals a box comprising connectable modular walls that are interchangeable with a base, allowing for the movement of these walls between a collapsed position, saving storage space and an extended position, for storing core samples of different sizes, depending on the dimensions of the modular walls fitted in the base.
The invention also proposes at least one interchangeable partition that makes the box easy to assemble and practical to use. In addition to this, each partition is enlarged and may comprise different dimensions that allow for the assembly of boxes with a number of compartments and adequate space to receive core samples of varying diameters.
Conveniently, the enlarged partitions, in addition to fulfilling the functions mentioned above, confer greater mechanical strength on the box when assembled, and also ensure greater dimensional stability during the manufacturing process of each partition.
The interchangeability occurs with the use of intuitive connecting means that facilitate the assembly and disassembly of the box, which simplifies the process of packing the samples, since the box is adaptable to the need to collect varying sizes of samples.
Boxes for collecting core samples are known to the state of the art. Such boxes are manufactured from polymer and intended to provide greater durability and reliability for the storage of soil samples, in addition to allowing for the division of the inside of the box to form storage compartments for the core samples.
An example of a box for storing cores samples is presented by the Australian patent document AU2010201733A1, which teaches a box formed of a single body, comprising a base and walls, in addition to comprising a plurality of recesses intended to receive partition walls, which define spaces inside the box that are used as compartments for the storage of different core samples, with said partition walls being positioned in such a way as to allow for the storage of core samples of different diameters.
Thus, in a disadvantageous manner, this type of box occupies a large storage area when it is not being used to store core samples, since its body does not possess the means to be disassembled or folded. Thus, the single body of the box will always occupy the same space when it is being transported or stored without the core samples.
Furthermore, and also in a disadvantageous manner, these boxes of the state of the art do not have interchangeable walls, which allow for the use of modular components to form boxes of different dimensions, in accordance with the respective needs and use of said boxes. Thus, inconveniently, it is necessary to manufacture the bodies of these boxes in fixed sizes and, similarly, it is necessary for the end-customer to acquire boxes of different sizes so that it can store core samples of different sizes, increasing the costs of manufacturing and purchasing these boxes.
With a view to resolving these inconveniences, the present invention proposes an interchangeable dismountable hinged box for storing core samples, which comprises modular walls that can be fitted in an interchangeable manner with a base, allowing for the hinging of these walls between a collapsed position, for saving storage space, and an extended position, for storing core samples of different sizes.
Thus, one objective of this invention is to provide an interchangeable dismountable hinged box for storing core samples, which preferably comprises a single-sized base comprising modular fitting edges that can receive modular walls of different heights.
Another aim of this invention is to provide an interchangeable dismountable hinged box for storing core samples, which comprises structurally reinforced and flexible modular walls that simultaneously allow for sealing with the base of this box, when said walls are in an assembled position.
Another aim of this invention is to provide an interchangeable dismountable hinged box for storing core samples, which comprises modular internal partitions that can also have different dimensions and are interlocked with the modular walls of the box, while presenting an extended transversal section, to provide greater structural strength to this internal partition and the box itself.
Advantageously, the present invention presents an interchangeable dismountable hinged box for storing core samples which possesses components designed to fulfill the specific needs related to the correct storage of core samples, being easy to assemble and practical to use, reducing the costs of manufacturing and acquiring said boxes and simultaneously producing space gains in the transportation and storage of said boxes when they are empty.
Below are presented schematic figures of one particular embodiment of the invention, whose dimensions and proportions are not necessarily the real ones, since the figures simply have the purpose of didactically presenting their various aspects, whose scope is determined only by the scope of the attached claim.
The interchangeable dismountable hinged box (C) of the claimed invention is described with the below reference numerals:
As represented by the figures, the interchangeable dismountable hinged box (C) for storing core samples (T) comprises at least one storage compartment (C1) for core samples (T) defined between two modular transversal walls (2) and two modular longitudinal walls (3) which are assembled interchangeably between each other and the base (1). Thus, each modular wall (2 and 3) can be assembled and disassembled interchangeably, so that the base (1) can receive modular walls (2 and 3) of different dimensions, to form boxes (C) of different sizes, so that core samples (T) of different sizes can be stored in each storage compartment (C1) of said box (C).
In addition to this, the assembly of the modular walls (2 and 3) is performed in such a way that each modular wall (2 and 3) is moveable between a position perpendicular to the base (1), on which the box (C) is assembled (see
As illustrated by
Moreover, the base (1) comprises a connecting edge (30) for each modular longitudinal wall (3). Thus, two of the connecting and hinged edges (10) receive, in an interchangeable and hinged manner, the modular transversal walls (2), while the other two connecting and hinged edges (10) receive, in an interchangeable and hinged manner, the modular longitudinal walls (3).
In accordance with
In accordance with
Also, in accordance with what is illustrated in
Said locking (21 and 31) are preferably configured by pressure locking elements, also known as snap fit, which, advantageously, can be interlocked with each other and unlocked in a simple and practical manner. Also, preferably, said locking (21 and 31) are positioned in an upper region of each modular wall (2 and 3), respectively.
Preferably, each pair of perpendicular locking (21 and 31) that interlock with each other, is configured by one male type locking element and the other by a female type locking element. More specifically, each lateral locking opening (21) is configured to receive each upper locking shoulder (31), where each lateral locking openings (21) is a trapezoidal-shaped hole and each upper locking shoulder (31) is a trapezoidal-shaped projection, so as to enable the cooperative fitting and swift coupling of the modular walls (2 and 3) by mechanical interference, which may incorporate any locking system known to the state of the art, such as snap-fit, click type, pressure or similar.
As illustrated by
Preferably, as illustrated by
Thus, each partition with an enlarged section may comprise different dimensions in order to facilitate the assembly of boxes with a number of compartments and adequate space to receive core samples (T) with varying diameters.
In one form of embodiment of the invention, as shown in
In another form of embodiment of the invention, as shown in
As shown in
In this way, each partition with an enlarged transversal section (4), in addition to fulfilling the aforementioned functions, provides greater mechanical strength to the box when assembled, and also ensures greater dimensional stability during the manufacturing process of each partition (4).
Technically, the enlarged partition (4) when interlocked with the modular transversal walls (2) provides greater structural stability to the box (C), since the interchangeable modular partitions (4) assume the function of a structural rib, in such a way as to prevent plastic deformations (twists) at the time of their handling, during the maneuvers of collection and transportation of the core samples.
Furthermore, the constructive form of the partition (4) described above, facilitates the manufacturing process of molding the thermoplastic material, since, said constructive form ensures dimensional stability during the manufacturing process, preventing potential contractions of the material.
The fact that the partition (4) has a significant length, demands the manufacture of large molds and the use of a large amount of thermoplastic material to be processed.
Overcoming these technical challenges of the manufacturing process, the partition with an enlarged section (4) is cooled without compromising its dimensions, avoiding twists along its length after the process of cooling and extracting the part.
As a result, the box (C) equipped with partitions (4) with enlarged sections can be packed with samples (T) of varying weights, keeping the structure of the box (C) stable and preserving the integrity of the samples during transportation and storage.
As shown in
In accordance with
embodiment of the invention, at least two of the connecting and hinged edges (10) of the base (1) comprise at least one, and preferably two, transverse connection and articulation elements (100). Thus, each transverse connection and articulation element (100) is mounted on a connecting and hinged edge (20) in order to enable the connection of each modular transversal wall (2) with the base (1).
In accordance with
Each transverse connection and articulation element (100) is responsible for allowing the assembly of a connecting elements and transverse articulation (200), so that the modular transversal wall (2) can perform a hinged movement of the modular transversal wall (2) between its assembled position (see
Thus, the transverse connection and articulation element (100) of the modular base (1) and the connecting elements and transverse articulation (200) of the modular wall (2), allow each modular transversal wall (2) to be assembled and connected to the modular base (1), and to be disassembled when modular transversal walls (2) of larger dimensions are required.
In accordance with what is illustrated in
Conveniently, this connecting arrangement of the modular transversal walls (2) on the lower surface (1B) of the base (1), helps to ensure that there is no involuntary unlocking of each lateral locking openings (21) of the modular transversal wall (2) between each upper locking shoulders (31) of the modular longitudinal wall (3).
Preferably, as illustrated by
In accordance with
Thus, each connecting and hinged edge (10) may comprise one or more transverse connection and articulation elements (100) or one or more longitudinal connecting and articulating elements (101).
It will be understood that each connecting and hinged edge (10) can receive transverse connection and articulation elements (100) or longitudinal connecting and articulating elements (101), since, said transverse connection and articulation elements (100) determine the connection of the walls (2 and 3) to the lower region (1B), while each longitudinal connecting and articulating element (101) determines the connection of the modular walls (2 and 3) to the upper region (1A) of the base (1).
In accordance with what is illustrated in
Each longitudinal connecting and articulating element (101) is responsible for allowing the assembly of a connecting element and longitudinal articulation (300), so that the modular longitudinal wall (3) can perform a hinged movement between its assembled position and a position adjacent to the upper surface (1A) of the base (1).
Preferably, as illustrated by
As illustrated in
Furthermore, as illustrated by
In the preferential form of embodiment of this invention, two connecting and hinged edges (10) comprise at least one stopper (102) to limit the hinging of each modular transversal wall (2). Furthermore, each modular transversal wall (2) comprises an inclined sealing area (24) which prevents the modular transversal wall (1) from encroaching on each stopper projection (102). This limitation of movement prevents the hinging of the modular transversal walls (2) towards the upper surface (1A) of the base (1), preventing the disconnection between the modular transversal walls (2) and the modular longitudinal walls (3).
Thus, each stopper (102) is a point of support of the inclined region (24) of the modular transversal wall (2) with the base (1), which advantageously prevents the involuntary dismantling of the box (C).
Furthermore, in accordance with what is illustrated in
In addition to this, preferably each modular longitudinal wall (3) also comprises at least one ergonomic handling region (33) to facilitate gripping and handling of the box (C) by a human operator.
The handling region (23) is located in the lower portion of each modular transversal wall (2), while each handling region (33) is located in the lower portion of each modular longitudinal wall (3), in order to prevent the unlocking of the walls (2 and 3) during the lifting of the box (C). Thus, unlocking does not occur because each handling region (23 and 33) is arranged in a manner contrary to the locking (21 and 31) between the modular transversal walls (2) and the modular longitudinal walls (3).
As illustrated by
In accordance with
The box (C) also comprises a lid (7) for closing the box (C) that rests on a receiving area (C2) which is defined by the alignment of top recesses (2A and 3A) arranged on the modular walls (2 and 3), respectively, when the said modular walls (2 and 3) are in the assembled position.
Finally, the box (C) also comprises a plurality of structural reinforcements (6) distributed along the modular walls (2 and 3), preferably defined by vertical ribs, responsible for increasing the structural strength of these modular walls (2 and 3).
Number | Date | Country | Kind |
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10 2019 004379 2 | Mar 2019 | BR | national |
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Number | Date | Country | |
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20200283196 A1 | Sep 2020 | US |