A gas-liquid detachable modular mining transport box and its use method
By designing the support structure and rotating structure of the detachable modular mining transport box, the problem of poor tank stability in the transportation of coal and mineral materials is solved, stable transportation and flexible loading of various types of materials are achieved, and transportation convenience and functionality are improved.
Patent Information
- Application Number
- CN202411706426.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-11-26
Smart Images

Figure CN119660174B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of material transportation, and in particular to a gas-liquid detachable modular mining transport box and a use method thereof. Background Art
[0002] In recent years, the coal industry, as the cornerstone of my country's energy security, has achieved a transformation from manual and semi-mechanized to automated. Specifically in the transportation of coal and mineral materials, the existing technology generally uses tanks to hold gaseous materials or liquid materials. The placement and transportation stability of the tanks is poor, which makes the transportation of coal and mineral materials more difficult. Summary of the Invention
[0003] The purpose of the present invention is to provide a gas-liquid detachable modular mining transport box and a method of using the same, so as to solve the technical problem that the existing tanks have poor placement and transportation stability, resulting in greater difficulty in transporting coal and mineral materials.
[0004] To solve the above problems, the present invention provides a gas-liquid detachable modular mining transport box, comprising a box body and a support structure provided in the box body, wherein the support structure comprises two support parts, each of the two support parts comprises a limit seat provided at the bottom of the box body and a support body slidably connected to the limit seat via a first guide structure, the support surfaces of the support bodies of the two support parts forming an angular support groove with an upward opening, and the support bodies of the two support parts are configured to be able to slide relative to each other along the corresponding first guide structure to adjust the width or opening angle of the angular support groove;
[0005] A first locking structure is connected between the support body and the limit seat, and the first locking structure has a first locking position for locking the relative position of the support body and the limit seat and a first unlocking position for unlocking; there are multiple support structures, and any one of the support structures is arranged side by side with at least one adjacent support structure along the length extension direction of its angular support groove.
[0006] Optionally, there are two support bodies in the support portion, and the two support bodies are respectively a first support body and a second support body, and the first support body and the second support body are arranged along the width direction toward the corresponding angular support groove, the support surface of the first support body is higher than the support surface of the second support body, and the inclination of the support surface of the first support body relative to the vertical plane is smaller than the inclination of the support surface of the second support body relative to the vertical plane.
[0007] Optionally, the support portion also includes an adjustment seat, the support body is located between the adjustment seat and the limit seat, and the support body is slidably connected to the adjustment seat through a second guide structure, and the first guide structure and the second guide structure are configured as follows: when the adjustment seat moves along a preset trajectory, the support body is driven to move synchronously along the width direction and the up and down directions of the angular support groove.
[0008] Optionally, the second guide structure includes a locking member, a strip guide hole provided on the adjustment seat and a threaded hole provided on the support body, the locking member includes a screw and a locking head fixed to the first end of the screw, the second end of the screw passes through the strip guide hole and is screwed to the threaded hole, and the locking head blocks the side of the strip guide hole away from the support body.
[0009] Optionally, a base is provided at the bottom of the box body, and the limiting seats of every two supporting structures are fixed to one of the bases, and the two supporting structures located on the same base are arranged side by side along the length direction of their angular supporting grooves.
[0010] Optionally, the top surface of the base is provided with a first guide surface, and the first guide surface extends along the preset track; the bottom surface of the adjustment seat is provided with a second guide surface, and the second guide surface matches the first guide surface;
[0011] The base is provided with a stop platform, which is located on a side of the first guide surface away from the limiting seat, and the side walls of the adjustment seat and the stop platform facing each other are in contact with each other.
[0012] Optionally, the gas-liquid detachable modular mining transport box also includes a rotating structure, which includes a connecting seat fixedly connected to the bottom of the box body and a rotating seat rotatably connected to the top of the connecting seat, and a second locking structure is connected between the rotating seat and the connecting seat, and the second locking structure has a second locking position for locking the relative position of the rotating seat and the connecting seat and a second unlocking position for unlocking; the rotating structures are multiple and are arranged at intervals along the length direction of the box body, and the bases are multiple and are respectively fixed to one of the rotating seats.
[0013] Optionally, a support column is fixed to the top of the connecting seat, and the rotating seat is rotatably sleeved on the top of the support column;
[0014] The second locking structure includes a plurality of locking holes provided on the rotating seat and a lifting plate slidably connected to the support column. The plurality of locking holes are evenly spaced along the circumference of the rotating seat. The top of the lifting plate is provided with a plurality of plug-in columns, and the plurality of plug-in columns are plugged into the plurality of locking holes one by one. An elastic member is sandwiched between the lifting plate and the connecting seat.
[0015] The present invention also provides a method of use, which is applied to the above-mentioned gas-liquid detachable modular mining transport box, and the method of use comprises:
[0016] Determine a supporting structure for support according to the length of the tank body, and use the determined supporting structure as a target supporting structure;
[0017] Determining the width or opening angle of the angular support groove in the target support structure according to the radial dimension of the tank body, and using the determined width or opening angle as the target width or target opening angle;
[0018] Adjusting the first locking structure in the target support structure to a first unlocking position, and sliding the support body along the first guide structure so that the width or opening angle of the angular support groove reaches a target width or target opening angle;
[0019] Adjusting the first locking structure to a first locking position;
[0020] supporting the tank body on the angular support grooves of each target support structure;
[0021] Use a strap to go around the top of the tank and tie it to the box body or support structure.
[0022] Optionally, before supporting the tank body on the angular support grooves of each target support structure, the method further includes the following steps:
[0023] Determining the circumferential orientation of the base corresponding to the target support structure according to the length of the tank body, and using the determined circumferential orientation as the target circumferential orientation;
[0024] Adjusting the second locking structure of the rotating structure corresponding to the target support structure to a second unlocking position, and rotating the rotating seat circumferentially to drive the base thereon to rotate to the target circumferential orientation;
[0025] The second locking structure is adjusted to a second locking position.
[0026] In the gas-liquid detachable modular mining transport box provided by the present invention, on the one hand, a support structure is provided in the box body, and the tank body is supported and limited by the support structure to ensure its stability when loaded into the box body. During transportation, the transport box loaded with the tank body can be transported as a whole. In particular, the transport box body can be used as a container, thereby greatly improving the convenience of transporting materials; on the other hand, the support bodies of the two support parts of the support structure can slide along the first guide structure to adjust the width or opening angle of the angular support groove formed by the two support bodies to be suitable for stable support of tank bodies of different diameters, thereby improving the applicability and functionality of the transport box, and further improving the convenience of transporting materials; on the other hand, multiple support structures can be divided into different support modules to support the loading of different tank bodies, and the tank body can contain gas or liquid, thereby realizing gas-liquid detachable modular loading and transportation, thereby further improving the functionality of the transport box and the convenience of transporting materials.
[0027] The method of use provided by the present invention adopts the above-mentioned gas-liquid detachable modular mining transport box, including all its beneficial effects, which will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the specific embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0029] Figure 1 A schematic diagram of a gas-liquid detachable modular mining transport box provided by an embodiment of the present invention connected to a loading vehicle, wherein a large tank is placed inside the box body;
[0030] Figure 2 for Figure 1 Axonometric view of the gas-liquid detachable modular mining transport box from the first perspective;
[0031] Figure 3 for Figure 1 Axonometric view of the gas-liquid detachable modular mining transport box from the second perspective;
[0032] Figure 4 A schematic diagram showing a first perspective view of two supporting structures provided on a base of a gas-liquid detachable modular mining transport box according to an embodiment of the present invention;
[0033] Figure 5 A schematic diagram showing a second perspective of a gas-liquid detachable modular mining transport box provided in an embodiment of the present invention, wherein two supporting structures are arranged on a base;
[0034] Figure 6 A schematic diagram showing a third perspective of two supporting structures provided on a base of a gas-liquid detachable modular mining transport box according to an embodiment of the present invention;
[0035] Figure 7 A schematic diagram of the connection between the limit seat, the first support body, the second support body and the base in the gas-liquid detachable modular mining transport box provided in an embodiment of the present invention;
[0036] Figure 8 Schematic diagram of a large tank supported by a wide angular support groove in a gas-liquid detachable modular mining transport box provided by an embodiment of the present invention;
[0037] Figure 9 Schematic diagram of a small tank supported by a relatively small angular support groove in a gas-liquid detachable modular mining transport box provided by an embodiment of the present invention;
[0038] Figure 10 A schematic diagram of three small tanks supported in a gas-liquid detachable modular mining transport box provided in an embodiment of the present invention;
[0039] Figure 11 A schematic diagram of a gas-liquid detachable modular mining transport box provided in an embodiment of the present invention supporting a small tank and a medium tank;
[0040] Figure 12 An axonometric diagram of the rotating structure of a gas-liquid detachable modular mining transport box provided in an embodiment of the present invention;
[0041] Figure 13 for Figure 12 Axonometric drawing of the central rotating structure after removing the side panels;
[0042] Figure 14 for Figure 12 A partial cross-sectional view of the rotating structure;
[0043] Figure 15 for Figure 1 First-person perspective diagram of a medium-sized loader;
[0044] Figure 16 for Figure 15 A partial enlarged view of middle A;
[0045] Figure 17 for Figure 1 A second perspective diagram of a medium-sized loader;
[0046] Figure 18 for Figure 15 Schematic diagram of the disassembly and assembly structure;
[0047] Figure 19 A schematic diagram of a process for loading a single large tank using the method provided in an embodiment of the present invention;
[0048] Figure 20 A schematic diagram of a process for loading three small tanks using the method provided in an embodiment of the present invention;
[0049] Figure 21 A schematic diagram of a process for loading a small tank and a medium tank using the method provided in an embodiment of the present invention.
[0050] Description of reference numerals:
[0051] 100 - box body; 110 - corner piece; 111 - connection hole; 120 - crossbeam; 130 - vertical beam; 20A - support structure; 20B - angular support groove; 200 - support portion; 210 - limit seat; 211 - linear guide hole; 220 - first guide structure; 230 - first support body; 240 - second support body; 241 - threaded hole; 242 - first plug-in protrusion; 250 - first locking structure ;260-adjustment seat;261-strip guide hole;262-second guide surface;263-first handle;270-second guide structure;271-locking member;271a-screw;271b-locking head;300-base;310-first guide surface;320-stop platform;400-rotating structure;410-connecting seat;411-support column;420-rotating seat;421-locking hole;430- Lifting plate; 431-plug-in column; 440-elastic member; 450-extension arm; 460-side panel; 461-opening; 470-bearing; 500-loading vehicle; 510-loading frame; 511-loading frame beam; 512-bottom plate; 521-transport wheel; 522-axle clamp; 523-connecting shaft; 530-disassembly and assembly structure; 531-connecting piece; 531a-limiting head; 531b-connecting column; 53 1c-stop platform; 531d-second handle; 532-sliding seat; 532a-sliding channel; 541-fixed seat; 541a-accommodating groove; 541b-plug hole; 541c-plug cylinder; 541d-through hole; 542-anti-collision block; 543-connecting pin; 543a-stop hole; 544-stop pin; 550-mounting frame; 600-tank body; 610-loading and unloading port; 620-valve. DETAILED DESCRIPTION
[0052] The technical solution of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0053] In the description of the present invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0054] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed, detachable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.
[0055] This embodiment provides a gas-liquid detachable modular mining transport box, such as Figure 2 、 Figure 3 、 Figure 10 and Figure 11 As shown, it includes a box body 100 and a support structure 20A arranged in the box body 100, the support structure 20A includes two support parts 200, and the two support parts 200 both include a limit seat 210 arranged at the bottom of the box body 100 and a support body slidably connected to the limit seat 210 through a first guide structure 220, the support surfaces of the support bodies of the two support parts 200 form an angular support groove 20B with the opening 461 facing upward, and the support bodies of the two support parts 200 are configured as follows: they can slide relative to each other along the corresponding first guide structure 220 to adjust the width or opening angle of the angular support groove 20B; a first locking structure 250 is connected between the support body and the limit seat 210, and the first locking structure 250 has a first locking position for locking the relative position of the support body and the limit seat 210 and a first unlocking position for unlocking; there are multiple support structures 20A, and any support structure 20A is arranged side by side with at least one adjacent support structure 20A along the length extension direction of its angular support groove 20B.
[0056] In the gas-liquid detachable modular mining transport box provided in this embodiment, each support structure 20A includes two support parts 200, and the support bodies of the two support parts 200 extend away from each other from bottom to top to form an angular support groove 20B with an opening 461 expanding upward; wherein, the support bodies of the two support parts 200 can slide along their respective first guide structures 220, so that the two support bodies move toward each other to reduce the width or opening angle of the angular support groove 20B formed by the two, so that it is suitable for supporting and loading small-diameter tanks 600; or, the two support bodies move away from each other to increase the width or opening angle of the angular support groove 20B formed by the two, so that it is suitable for supporting and loading large-diameter tanks 600.
[0057] There are at least two supporting structures 20A, and among all the supporting structures 20A, every two or more adjacent supporting structures 20A serve as a supporting module. The two or more supporting structures 20A of the same supporting module are arranged side by side along the length extension direction of the angular supporting groove 20B, so that the angular supporting grooves 20B of each supporting structure 20A of the same supporting module are correspondingly connected to form an angular supporting space. The length extension direction of the angular supporting space is consistent with the length extension direction of each angular supporting groove 20B and the arrangement direction of each supporting structure 20A, and the two supporting parts 200 of the same supporting structure 20A can be arranged at intervals or in the same position along the length extension direction.
[0058] This embodiment also provides a method of use, which is applied to the above-mentioned gas-liquid detachable modular mining transport box, and the method of use includes:
[0059] S1 determines the supporting structure 20A for supporting the tank body 600 according to the length dimension thereof, and uses the determined supporting structure 20A as a target supporting structure.
[0060] The number of required support structures 20A is determined according to the length dimension of the tank body 600 to ensure the support stability of various parts of the tank body 600 in the length direction; the support module with this number of support structures 20A in the box body 100 is used as the target support module, and accordingly, the support structure 20A of the target support module is used as the target support structure.
[0061] S2 determines the width or opening angle of the angular support groove 20B in the target support structure according to the radial dimension of the tank body 600, and uses the determined width or opening angle as the target width or target opening angle.
[0062] S3 adjusts the first locking structure 250 in the target support structure to the first unlocking position, and slides the support body along the first guide structure 220 so that the width or opening angle of the angular support groove 20B reaches the target width or target opening angle.
[0063] S4 adjusts the first locking structure 250 to the first locking position.
[0064] The width or opening angle of the angular support groove 20B in the target support structure is adjusted in a positive correlation with the diameter of the tank body 600 to ensure the support stability of the two support parts 200 of the target support structure on both sides of the tank body; specifically, the first locking structure 250 is adjusted to the first unlocking position, and the support body can slide relative to the limit seat 210 along the first guide structure 220. When the diameter of the tank body 600 is large, the support bodies of the two support parts 200 in the target support structure are slidably adjusted to increase the radial distance between the two along the tank body 600 or increase the degree of inclination from bottom to top away from each other, and the angular support groove 20B is correspondingly enlarged. B's width or opening angle is adjusted to ensure that the support surfaces of the two support parts 200 contact and support the middle and lower areas on both sides of the tank body 600, thereby ensuring the support stability of the tank body 600; when the diameter of the tank body 600 is small, the support bodies of the two support parts 200 in the target support structure are slidably adjusted to reduce the radial distance between the two along the tank body 600 or reduce the degree of inclination away from each other from bottom to top, and the width or opening angle of the angular support groove 20B is adjusted accordingly to ensure that the support surfaces of the two support parts 200 contact and support the middle and lower areas on both sides of the tank body, thereby ensuring the support stability of the tank body 600.
[0065] Among them, the angular support groove 20B of each support structure 20A in the same support module needs to be adjusted synchronously, and after the adjustment is completed, the first locking structure 250 is adjusted to the first locking position, and the support body and the limit seat 210 are relatively fixed. Accordingly, the relative positions of the two support bodies of the target support structure are fixed, and the width or opening angle of the diagonal support groove 20B is locked, thereby ensuring its stable support for the tank body 600.
[0066] S5: The can body 600 is supported on the angular support grooves 20B of each target support structure.
[0067] The tank body 600 containing gas or liquid is placed in the angular support space from above. The support structures 20A of the target support module are supported at different positions in the length direction of the tank body 600, and the two support parts 200 of the same support structure 20A are supported on both sides of the tank body 600 in the radial direction.
[0068] S6 uses a strap to go around the top of the tank 600 and tie it to the box body 100 or the support structure 20A.
[0069] After the tank body 600 is supported on the support structure 20A, it is tied with straps to further improve its position stability when loaded into the box body 100, ensure its position stability during placement or transportation, and reduce the occurrence of the tank body 600 rolling down.
[0070] In the gas-liquid detachable modular mining transport box provided in this embodiment, on the one hand, by setting a support structure 20A in the box body 100, the tank body 600 is supported and limited by the support structure 20A to ensure its stability when loaded into the box body 100. During transportation, the transport box loaded with the tank body 600 can be transported as a whole. In particular, the transport box can be used as a container, thereby greatly improving the convenience of transporting materials; on the other hand, the support bodies of the two support parts 200 of the support structure 20A can be moved along the first guide structure 220 slides to adjust the width or opening angle of the angular support groove 20B formed by the two support bodies, so as to be suitable for stable support of tanks 600 of different diameters, thereby improving the applicability and functionality of the transport box, and further improving the convenience of material transportation; on the other hand, multiple support structures 20A can be divided into different support modules to support the loading of different tanks 600, and the tanks 600 can contain gas or liquid, thereby realizing gas-liquid detachable modular loading and transportation, thereby further improving the functionality of the transport box and the convenience of material transportation.
[0071] Specifically, in this embodiment, Figure 4-Figure 7 As shown, there are two support bodies in the support portion 200, namely a first support body 230 and a second support body 240. The first support body 230 and the second support body 240 are arranged along the width direction of the corresponding angular support groove 20B. The support surface of the first support body 230 is higher than the support surface of the second support body 240, and the degree of inclination of the support surface of the first support body 230 relative to the vertical plane is smaller than the degree of inclination of the support surface of the second support body 240 relative to the vertical plane. Taking the vertical plane extending along the length direction of the angular support groove 20B as the reference plane, the second support body 240 is close to the reference plane, and the first support body 230 is located outside the second support body 240. The angle of inclination of the support surface of the second support body 240 relative to the reference plane is greater than the angle of inclination of the support surface of the first support body 230 relative to the reference plane. During use, the first support body 230 and the second support body 240 always maintain this positional relationship. When the tank body 600 is loaded on the support structure 20A, the support surface of the second support body 240 mainly supports the tank body. The lower part of the middle and lower area of the tank body 600 is supported upward, and the supporting surface of the first support body 230 mainly limits the upper part of the middle and lower area of the tank body 600 inward. In the support structure 20A, the second support bodies 240 of the two support parts 200 respectively support the supporting tank body 600 upward on both sides, and the two first support bodies 230 respectively clamp the tank body 600 on both sides to limit the tank body 600 left and right, thereby ensuring the support stability and limiting stability of the support structure 20A for the tank body 600, and reducing the occurrence of the tank body 600 rolling to both sides.
[0072] Among them, the two supporting bodies in the supporting part 200 are each slidably connected to the limit seat 210 through a first guide structure 220, and preferably, the side walls of the two supporting bodies facing each other slide and abut against each other. When the two supporting bodies are adjusted along the first guide structure 220, relative sliding can occur between the two supporting bodies.
[0073] In this embodiment, Figure 4-Figure 6 As shown, the support portion 200 also includes an adjustment seat 260, the support body is located between the adjustment seat 260 and the limit seat 210, and the support body is slidably connected to the adjustment seat 260 through the second guide structure 270, and the first guide structure 220 and the second guide structure 270 are configured as follows: during the movement of the adjustment seat 260 along the preset trajectory, the support body is driven to move synchronously along the width direction and the up and down directions of the angular support groove 20B.
[0074] The position of the limit seat 210 is fixed, the support body is clamped between the limit seat 210 and the adjustment seat 260, and the support body is slidably connected to the limit seat 210 through the first guide structure 220 and slidably connected to the adjustment seat 260 through the second guide structure 270. When it is necessary to adjust the angular support groove 20B according to the radial size of the tank body 600, a preset trajectory can be set according to the structure of the first guide structure 220, the second guide structure 270 and the support body, and then the adjustment seat 260 is moved along the first direction of the preset trajectory. Under the joint guiding action of the first guide structure 220 and the second guide structure 270, the support body can move outward and downward along the width direction of the angular support groove 20B to increase the width of the angular support groove 20B so that it is suitable for supporting large-sized tanks 600. At the same time, the height of the angular support groove 20B is reduced to reduce the occurrence of the situation where the large-sized tank body 600 is supported on the support structure 20A and interferes with the box body 100, thereby improving the capacity of the transport box for large-sized tanks 600.
[0075] Similarly, by moving the adjustment seat 260 in the second direction of the preset trajectory, under the joint guiding action of the first guide structure 220 and the second guide structure 270, the support body can move inward and upward along the width direction of the angular support groove 20B to reduce the width of the angular support groove 20B so that it is suitable for supporting a small-sized tank body 600.
[0076] Specifically, in this embodiment, Figure 5As shown, the second guide structure 270 includes a locking member 271, a strip guide hole 261 provided on the adjustment seat 260 and a threaded hole 241 provided on the support body. The locking member 271 includes a screw 271a and a locking head 271b fixed to the first end of the screw 271a. The second end of the screw 271a passes through the strip guide hole 261 and is screwed to the threaded hole 241. The locking head 271b is blocked on the side of the strip guide hole 261 away from the support body. When the second guide structure 270 adopts the above-mentioned form, it also serves as the first locking structure 250, which has a simple structure and strong functionality. Specifically, when it is necessary to adjust the angular support groove 20B of the support structure 20A, the screw 271a can be loosened to make the first locking structure 250 reach the first unlocking position. At this time, the screw 271a is threadedly connected to the support body and can slide along the strip guide hole 261, thereby ensuring the guiding effect of the second guide structure 270, and can drive the adjustment seat 260 to move to adjust the orientation of the support body; after the adjustment is completed, the screw 271a can be tightened to make the first locking structure 250 reach the first locking position. At this time, the screw 271a is threadedly connected to the support body, and the locking head 271b abuts against the end face of the strip guide hole 261 and clamps the adjustment seat 260 to the support body. The screw 271a and the strip guide hole 261 cannot slide relative to each other, thereby achieving the relative position locking of the adjustment seat 260, the support body and the limit seat 210.
[0077] Specifically, if Figure 4 and Figure 6 As shown, the support portion 200 has two support bodies, and the limiting seat 210 is provided with two linear guide holes 211. The two linear guide holes 211 are arranged at intervals along the width direction of the angular support groove 20B and are inclined from bottom to top toward the angular support groove 20B. At the same time, the linear guide hole 211 located on the outside away from the angular support groove 20B is more inclined. The first support body 230 and the second support body 240 are both provided with a first plug-in protrusion 242 on the side facing the limiting seat 210, and the first plug-in protrusion 242 provided on the second support body 240 is slidably plugged into the linear guide hole 211 on the inner side close to the angular support groove 20B, and the first plug-in protrusion 242 provided on the first support body 230 is provided. The plug-in protrusion 242 is slidably plugged into the linear guide hole 211 on the outside away from the angular support groove 20B; the adjustment seat 260 is provided with two arc-shaped strip guide holes 261, and the first support body 230 and the second support body 240 are both threadedly connected to the side of the adjustment seat 260 with a locking piece 271, and the screws 271a of the two locking pieces 271 are slidably plugged into the two strip guide holes 261 in a one-to-one manner; wherein, the first plug-in protrusion 242 and the linear guide hole 211 are slidably plugged into cooperation to form the first guide structure 220, and the sliding plug-in cooperation of the locking piece 271 and the strip guide hole 261 simultaneously forms the second guide structure 270 and the first locking structure 250.
[0078] When the supporting part 200 of this form is used, Figure 4 As shown, looking at the support structure from right to left, in the support structure on the left side, when the adjustment seat 260 is driven to move rightward along the preset trajectory, its first support body 230 and second support body 240 are synchronously translated to the right and upward; similarly, in the support structure on the right side, when the adjustment seat 260 is driven to move leftward along the preset trajectory, its first support body 230 and second support body 240 are synchronously translated to the left and upward to reduce the width of the diagonal support groove 20B. Similarly, adjusting the adjustment seat 260 in the opposite direction can increase the width of the diagonal support groove 20B, as shown in FIG. Figure 8 As shown, the angular support groove 20B with a larger width is suitable for supporting large tanks with a larger diameter; Figure 9 As shown, the angular support groove 20B with a smaller width is suitable for supporting small cans with a smaller diameter.
[0079] Of course, in some other embodiments, the first guide structure 220 and the second guide structure 270 can also be set to other forms and trajectories to adjust the rotation angle of the support body by driving the adjustment seat 260 to move, and correspondingly adjust the opening angle of the diagonal support groove 20B.
[0080] In this embodiment, Figure 5 and Figure 6 As shown, a first handle 263 is provided on the side of the adjustment seat 260 facing away from the support body. When adjusting, force can be applied to the first handle 263 to drive the adjustment seat 260 to move, thereby improving the convenience of adjustment.
[0081] In this embodiment, Figure 2 and Figure 4 As shown, a base 300 is provided at the bottom of the box body 100. The stoppers 210 of each of the two support structures 20A are fixedly connected to one of the bases 300. The two support structures 20A located on the same base 300 are arranged side by side along the length of the angular support grooves 20B thereof. Each two support structures 20A disposed on a base 300 constitute a support module. During assembly, the support structures 20A can first be externally assembled to the base 300. The positions of the support modules can then be planned and the bases 300 of each support module connected to the bottom of the box body 100. This facilitates the assembly of the support structures 20A within the box body 100.
[0082] In this embodiment, Figure 6As shown, the top surface of the base 300 is provided with a first guide surface 310, which extends along a preset trajectory; the bottom surface of the adjustment seat 260 is provided with a second guide surface 262, which matches the first guide surface 310; the base 300 is provided with a stop 320, which is located on the side of the first guide surface 310 facing away from the limit seat 210, and the side walls of the adjustment seat 260 and the stop 320 are in contact with each other. On the one hand, the first guide surface 310 and the second guide surface 262 slide together to form a guide structure. During adjustment, the adjustment seat 260 can be pushed along the first guide surface 310 to adjust the support body, thereby improving the convenience of adjustment and reducing the occurrence of jamming of the first guide structure 220 and the second guide structure 270. On the other hand, the stopper 320 limits the adjustment seat 260 on the outside, that is, the limiting seat 210 and the stopper 320 clamp the support body and the adjustment seat 260 between them on both sides, thereby ensuring the sliding fit stability of the adjustment seat 260, the support body and the limiting seat 210.
[0083] Specifically, the first guide surface 310 can be arc-shaped, and the arc length of the first guide surface 310 can be L=354.3 mm. The rotation angle θ1 of the adjustment seat 260 along the first guide surface 310 ranges from 0° to 28.11°. Taking the center of the first guide surface 310 as a reference, by pushing the adjustment seat 260 to rotate along the first guide surface 310, the diameter d of the angular support groove ranges from 596 mm to 1000 mm, and the variation range of d is 0 mm to 405 mm.
[0084] When the adjustment seat 260 rotates 1°, the arc length change ΔL of the first guide surface 310 is:
[0085] △L=L / θ 1max =12.6mm (1)
[0086] Correspondingly, when the adjustment seat 260 rotates 1°, the diameter change Δd of the angular support groove is:
[0087] △d=d max / θ 1max =14.4mm (2)
[0088] When the rotation angle θ1 of the adjustment seat 260 is equal to θ 1min When the adjustment seat 260 and the support body are both at the minimum limit, the diameter d of the angular support groove formed by the support structure is at the maximum value; when the rotation angle θ1 of the adjustment seat 260 is θ 1max When , the adjustment seat and the support body are both at the maximum limit (original position), at this time the diameter d of the angular support groove formed by the support structure is the minimum value.
[0089] Specifically, the structures of the two supporting parts 200 may be the same, and one of the two can be overlapped with the other by rotating 180° around the first vertical axis.
[0090] In this embodiment, Figure 2 、 Figure 3 、 Figure 12-14 As shown, the gas-liquid detachable modular mining transport box also includes a rotating structure 400, which includes a connecting seat 410 fixedly connected to the bottom of the box body 100 and a rotating seat 420 rotatably connected to the top of the connecting seat 410. A second locking structure is connected between the rotating seat 420 and the connecting seat 410, and the second locking structure has a second locking position for locking the relative position of the rotating seat 420 and the connecting seat 410 and a second unlocking position for unlocking. There are multiple rotating structures 400 and they are arranged at intervals along the length of the box body 100. There are multiple bases 300 and they are respectively fixed to one of the rotating seats 420. The box body 100 can be a rectangular body, and the multiple bases 300 are arranged at intervals along the length of the box body 100. The bottom of each base 300 is provided with a rotating structure 400. The rotating structure 400 can adjust the angle of the base 300 and the corresponding support module so that it can stably support the tank body 600 placed at a corresponding angle.
[0091] When in use, before supporting the tank body 600 on the angular support groove 20B of each target support structure, the following steps may also be included: determining the circumferential orientation of the base 300 corresponding to the target support structure according to the length dimension of the tank body 600, and using the determined circumferential orientation as the target circumferential orientation; adjusting the second locking structure of the rotating structure 400 corresponding to the target support structure to reach the second unlocking position, so that the rotating seat 420 can rotate relative to the connecting seat 410, and circumferentially rotating the rotating seat 420 to drive the base 300 thereon to rotate to the target circumferential orientation; after the rotation adjustment is completed, adjust the second locking structure to reach the second locking position, thereby locking the rotating seat 420 to the connecting seat 410, ensuring the circumferential orientation stability of the corresponding base 300 and the support module.
[0092] Among them, the setting of the rotating structure 400 can improve the adjustment of the circumferential position of each support module, so that multiple support modules in the box body 100 can be combined into different forms according to needs, and mixed placement and transportation of gas and liquid tanks 600 of multiple sizes and types can be realized, thereby improving the flexibility and efficiency of transportation, and realizing composite transportation without replacing the transport box. At the same time, a modular design is adopted to realize the separable characteristics and improve the transportation efficiency, so that the transport box has a wide range of application scenarios in the field of mine material transportation, thereby further improving the functionality of the transport box.
[0093] like Figure 10As shown, the box body 100 is provided with three bases 300. The top of each base 300 is provided with two support structures 20A. The two support structures 20A are located on either side of each base 300 along the length of the box body 100. The length extension direction of the angular support groove 20B formed by each support structure 20A is consistent with the length direction of the box body 100, and the width direction of the angular support groove 20B is consistent with the width direction of the box body 100. The bottom of each of the three bases 300 is provided with a rotating structure 400. The three bases 300 are circumferentially oriented in the same direction, so that the angular support grooves 20B formed by the six support structures 20A are arranged side by side along the length direction of the box body 100 to form a long angular support space. During use, a single can body 600 of larger length and diameter can be placed in the box body 100. The width or opening angle of the angular support groove 20B of each support structure 20A can be adjusted according to the diameter of the can body 600. The six support structures 20A can support different parts of the can body 600 along its length. The large tank body 600 may have a length of 3000 mm and a diameter of 1000 mm.
[0094] Figure 11 and Figure 1 The difference is that the left base 300 is adjusted to rotate 90 degrees using the left rotating structure 400. The two angular support slots 20B of the support module on the left form a smaller angular support space extending along the width of the box body 100, while the four angular support slots 20B of the other two support modules form a larger angular support space extending along the length of the box body 100. During use, a single smaller tank 600 can be placed in the angular support space on the left, and a tank 600 of medium length can be placed in the angular support space on the right. The small tank 600 can be 800mm long and 600mm in diameter; the medium tank 600 can be 1900mm long and 800mm in diameter.
[0095] Figure 10 and Figure 1 The difference is that the three bases 300 are each rotated 90 degrees by their respective rotating structures 400, and the two angular support grooves 20B of the three support modules each form a smaller angular support space extending along the width direction of the box body 100. During use, three smaller cans 600 can be placed in one of the angular support spaces.
[0096] Of course, in some other embodiments, the base 300 may be rotated to other circumferential positions by the rotating structure 400 and is not limited to the above exemplary circumferential positions.
[0097] Specifically, in this embodiment, the rotating structure 400 can take the following form: a support column 411 is fixedly connected to the top of the connecting seat 410, and the rotating seat 420 is rotatably sleeved on the top of the support column 411; the second locking structure includes a plurality of locking holes 421 provided on the rotating seat 420 and a lifting plate 430 slidably sleeved on the support column 411, and the plurality of locking holes 421 are evenly spaced along the circumference of the rotating seat 420, and a plurality of plug-in columns 431 are provided on the top of the lifting plate 430, and the plurality of plug-in columns 431 are correspondingly inserted into the plurality of locking holes 421; an elastic member 440 is sandwiched between the lifting plate 430 and the connecting seat 410.
[0098] The height that the lifting plate 430 and the connecting seat 410 can move relative to each other in the up and down directions is greater than the depth of the plug-in column 431 inserted into the locking hole 421. When the lifting plate 430 is not subjected to external force, the elastic member 440 applies an upward elastic thrust to the lifting plate 430, so that the lifting plate 430 drives the plug-in column 431 to remain plugged into the corresponding locking hole 421. The second locking structure is now in the second locking position, and the rotating seat 420 cannot rotate circumferentially. When the circumferential orientation of the base 300 needs to be adjusted, a downward pressing force is applied to the lifting plate 430, and this pressing force drives the lifting plate 430 to rotate. The lowering plate 430 descends and compresses the elastic member 440 until the plug-in column 431 disengages from the locking hole 421 downward. The second locking structure is now in the second unlocking position, and the rotating seat 420 can rotate circumferentially to adjust the circumferential orientation of the corresponding base 300; after the circumferential orientation adjustment of the base 300 is completed, the lifting plate 430 can be released. The lifting plate 430 rises under the push of the elastic member 440 and drives the plug-in column 431 to be plugged into the locking hole 421, so that the second locking structure reaches the second locking position again, thereby locking the rotating seat 420 and ensuring the position stability of the support module.
[0099] Among them, the circumferential rotation angle of the rotating seat 420 needs to be an integer multiple of the angle between two adjacent locking holes 421 to ensure the plug-in fit of multiple plug-in columns 431 and multiple locking holes 421; specifically, the elastic member 440 can be a spring, and there are multiple elastic members 440, and the multiple elastic members 440 are evenly spaced along the circumference of the lifting plate 430; among them, the rotating seat 420 and the support column 411 can be rotatably connected through a bearing 470.
[0100] The relationship between the elastic force of the elastic member on the lifting plate 430 and the pressing deformation is:
[0101] F=kx (3)
[0102] Wherein, F is the elastic force of the elastic member applied to the lifting plate 430 in the vertical direction, N; k is the stiffness coefficient of the elastic member, N / m; and x is the pressing variable of the elastic member, m.
[0103] The range of x can be 1.5 cm to 3 cm.
[0104] In this embodiment, Figure 2 、 Figure 3 and Figure 12-14 As shown, the lifting plate 430 is fixedly connected to an extension arm 450, and one end of the extension arm 450 facing away from the lifting plate 430 extends out of the box body 100. During use, the extension arm 450 can be directly pressed from the outside to drive the lifting plate 430 and the plug-in column 431 to descend and disengage from the locking hole 421, thereby adjusting the circumferential orientation of the rotating base 420 and the support module; after the adjustment is completed, the extension arm 450 can be released, and the lifting plate 430 and the extension arm 450 can be elastically reset by the elastic member 440 until the plug-in column 431 is plugged into the locking hole 421, thereby locking the rotating base 420.
[0105] In this embodiment, Figure 12 and Figure 14 As shown, a side panel 460 is disposed between the connecting base 410 and the rotating base 420. The side panel 460 is fixed to the bottom of the box body 100 and has an opening 461 for the extension arm 450 to extend. The side panel 460 encloses the lifting plate 430, the plug-in column 431, and the elastic member 440, thereby improving the integrity, safety, and stability of the rotating structure 400.
[0106] When the support module and the rotating structure adopt the above-mentioned specific form, the box body is provided with three bases arranged at intervals along the length direction thereof, each base is provided with two support structures arranged at intervals to form a support module, and the arrangement direction of the two support structures is approximately perpendicular to the width direction of the angular support groove formed by the support structure. For example, Figure 1 As shown, the transport box contains a single large tank, for which Figure 19 This is a flow chart of the method provided in the embodiment of the present invention for loading a single large tank. The method of use is as follows:
[0107] S201 presses the extension arms on both sides of each rotating structure to make the plug-in post descend and disengage from the plug-in hole.
[0108] S202: Rotate the rotating base of each rotating structure until the width direction of the angular support groove is consistent with the width direction of the box body.
[0109] S203 The rotation of the rotating seat is completed, and the pressing of the lifting plate ends. The elastic member drives the lifting plate to drive the plug-in column to rise and insert into the plug-in hole, and the rotating plate is fixed.
[0110] S204: Loosen the locking pieces of each supporting structure.
[0111] S205 pushes the adjustment seat of each supporting structure to slide along the first guide surface so that the width of the angular supporting groove formed therein is maximized.
[0112] S206: Tighten the locking piece to fix the positions of the adjustment seat and the support body.
[0113] S207 places the large tank body in the angular support grooves of the three support modules, and uses straps to bind the large tank body to the first handle to secure the large tank body.
[0114] like Figure 10 As shown, Figure 1 The orientation of the three bases in the middle is taken as the initial state. On this basis, when the transport box is loaded with three small tanks; Figure 20 This is a flow chart of the method provided in the embodiment of the present invention for loading three small tanks. The method of use is as follows:
[0115] S301: Press the extension arms on both sides of each rotating structure to make the plug-in post descend and disengage from the plug-in hole.
[0116] S302: Rotate the rotating base of each rotating structure by 90° until the width direction of the angular support groove is consistent with the length direction of the box body.
[0117] S303 The rotation of the rotating seat is completed, and the pressing of the lifting plate ends. The elastic member drives the lifting plate to drive the plug-in column to rise and insert into the plug-in hole, and the rotating plate is fixed.
[0118] S304: Loosen the locking pieces of each supporting structure.
[0119] S305 pushes the adjustment seat of each supporting structure to slide along the first guide surface so that the width of the angular support groove formed therein is minimized.
[0120] S306: Tighten the locking piece to fix the positions of the adjustment seat and the support body.
[0121] S307: Place the three small cans in the two angular support grooves of one of the support modules respectively, and use a strap to bind each small can to the corresponding first handle to fix the small can.
[0122] like Figure 11 As shown, Figure 1 The orientation of the three bases in the middle is taken as the initial state, on this basis, the transport box is loaded with a small tank and a medium tank; Figure 21 The method provided in the embodiment of the present invention is used to load a small tank and a medium tank. The method of use is as follows:
[0123] S401: Keep the two adjacent support modules stationary, and press the extension arms on both sides of the rotating structure at the bottom of the remaining support module to make the plug-in column drop down and disengage from the plug-in hole.
[0124] S402 rotates the rotating seat of the corresponding rotating structure by 90 degrees until the width direction of the angular support groove is consistent with the length direction of the box body.
[0125] S403 The rotation of the rotating seat is completed, and the pressing of the lifting plate ends. The elastic member drives the lifting plate to drive the plug-in column to rise and insert into the plug-in hole, and the rotating plate is fixed.
[0126] S404: Loosen the locking pieces of each supporting structure.
[0127] S405 pushes the adjustment seat of each support structure to slide along the first guide surface, so that the width of the angular support groove formed by the support module rotated 90° is minimized, and the width of the angular support groove formed by the two support modules that remain stationary is adapted to the diameter of the medium-sized tank body.
[0128] S406: Tighten the locking piece to fix the positions of the adjustment seat and the support body.
[0129] S407 places a small tank body in the angular support groove of the support module rotated 90 degrees, and places two medium-sized tank bodies in the angular support grooves of the two support modules that remain stationary. Use straps to bind the small tank body and the medium-sized tank body to the corresponding first handles respectively, and the small tank body and the medium-sized tank body are fixed.
[0130] In this embodiment, Figure 2 and Figure 3 As shown, the corners of the bottom of the box body 100 are provided with corner pieces 110, and the bottom of the corner pieces 110 are provided with connecting holes 111; Figure 1 、 Figure 15-17 As shown, the gas-liquid detachable modular mining transport box also includes a loading vehicle 500, which includes a loading frame 510 and transport wheels 521 provided at the bottom of the loading frame 510. The corners of the loading frame 510 are each provided with a disassembly structure 530, as shown in FIG. Figure 18As shown, the disassembly and assembly structure 530 includes a connecting member 531 and a sliding seat 532 fixed to the loading frame 510, the sliding seat 532 is provided with a sliding channel 532a, the connecting member 531 includes a limit head 531a, a connecting column 531b fixed to the bottom of the limit head 531a and a stop platform 531c fixed to the bottom of the connecting column 531b, and the connecting column 531b slides in the up and down directions and is inserted into the sliding channel 532a. When the box body 100 needs to be connected to the loading truck 500, the connecting piece 531 is adjusted to move downward until the limit head 531a is lower than the loading frame 510, and the four corner pieces 110 of the box body 100 are aligned with the four disassembly structures 530. Then, the connecting piece 531 is rotated so that the limit head 531a is located in the area where the connecting hole 111 is located, and then the connecting piece 531 is pushed upward until the stop platform 531c abuts the bottom end surface of the sliding channel 532a. At this time, the limit head 531a passes through the connecting hole 111 and reaches above the connecting hole 111; the connecting piece 531 is rotated so that the limit head 531a and the connecting hole 111 are staggered circumferentially. Accordingly, the bottom end surface of the limit head 531a abuts the top hole end surface of the connecting hole 111, thereby realizing the connection between the disassembly structure 530 and the corner piece 110, and the box body 100 is assembled on the loading truck 500 accordingly, and the transport box can be transported by the loading truck 500.
[0131] To remove the transport box, the connector 531 can be rotated circumferentially so that the stopper 531a is located in the area where the connection hole 111 is located. The connector 531 is then pulled downward until the stopper 531a is disengaged from the connection hole 111 and abuts against the top surface of the sliding channel 532a or other stop structure, thereby achieving the disassembly structure 530 and the corner piece 110. The stopper 531c can be fixedly connected to a second handle 531d to facilitate its rotation.
[0132] Among them, the visual system composed of cameras can be used to collect and identify the contours of the box body 100 and the loading rack 510 to ensure the alignment of the corner piece 110 and the disassembly structure 530, thereby improving the assembly convenience of the box body 100.
[0133] Specifically, the box body 100 may include a rectangular frame, such as Figure 2 and Figure 3 As shown, the rectangular frame is formed by connecting horizontal beams 120 and vertical beams 130, and reinforcing beams are connected between the horizontal beams 120 or between the horizontal beams 120 and the vertical beams 130; corner pieces 110 can be provided at eight corners.
[0134] In this embodiment, Figure 15 and Figure 16As shown, a fixing seat 541 is provided at one end of the loading frame 510 in the longitudinal direction, and a bumper block 542 is provided at the end of the fixing seat 541 facing away from the loading frame 510. A receiving groove 541a with an opening 461 facing outward is provided on the outer side of the fixing seat 541, and the top wall and bottom wall of the receiving groove 541a are both provided with a plug-in hole 541b; a plug-in cylinder 541c is provided on the top of the fixing seat 541 surrounding the plug-in hole 541b, and the plug-in cylinder 541c is provided with a through hole 541d passing through it in a radial direction; the gas-liquid detachable modular mining transport box also includes a connecting pin 543, which is plugged into the two plug-in holes 541b, and the connecting pin 543 is provided with a stop hole 543a at the position corresponding to the through hole 541d, and the stop hole 543a is plugged with a stop pin 544, and the stop pin 544 extends out of the through hole 541d. During use, two loading racks 510 can be connected together via a chain link. Specifically, the chain link can be inserted into the receiving groove 541a, and then the connecting pin 543 is inserted into the insertion hole 541b and the chain link until the stop hole 543a reaches the position of the through hole 541d. The stop pin 544 is inserted into the stop hole 543a to lock the connecting pin 543 in the insertion hole 541b. The same operation is repeated for the other loading rack 510, thereby connecting the two loading carts 500 together. The anti-collision block 542 can provide a buffering and vibration reduction effect on the two loading racks 510.
[0135] In this embodiment, Figure 17 As shown, the loading frame 510 includes a loading frame beam 511 and a bottom plate 512 provided on the loading frame beam 511. A notch is provided on one side of the bottom plate 512. An opening and closing plate is hingedly connected to the notch, and the opening and closing plate is detachably fixed to the bottom plate 512 via a latch structure. When it is necessary to load a can 600 into the box body 100 or to remove a can 600 from the box body 100, the opening and closing plate can be opened, and the loading and unloading wheels of the loading and unloading vehicle can be lifted upward through the notch, thereby improving the loading and unloading convenience of the can 600.
[0136] Specifically, if Figure 17 As shown, a mounting frame 550 may be provided at the bottom of the loading frame 510 , and the bottom of the mounting frame 550 is rotatably connected to a connecting shaft 523 via an axle clamp 522 , and transport wheels 521 are provided at both ends of the connecting shaft 523 .
[0137] Among them, such as Figure 10 As shown, a loading and unloading port 610 may be provided at the top of the tank body 600, through which materials may be loaded into or unloaded from the tank body 600; a valve member 620 may be provided at the bottom of one end of the length direction of the tank body 600, including loading and unloading pipelines, safety accessories, and an instrument safety monitoring system.
[0138] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A gas-liquid detachable modular mining transport box, characterized in that: The invention comprises a box body (100) and a support structure (20A) provided in the box body (100), wherein the support structure (20A) comprises two support parts (200), and the two support parts (200) each comprise a limit seat (210) provided at the bottom of the box body (100) and a support body slidably connected to the limit seat (210) via a first guide structure (220), and the support surfaces of the support bodies of the two support parts (200) form an angular support groove (20B) with an opening facing upward, and the support bodies of the two support parts (200) are configured to be able to slide relative to each other along the corresponding first guide structure (220) to adjust the width or opening angle of the angular support groove (20B); A first locking structure (250) is connected between the support body and the limiting seat (210), and the first locking structure (250) has a first locking position for locking the relative position of the support body and the limiting seat (210) and a first unlocking position for unlocking; There are multiple support structures (20A), and any one of the support structures (20A) is arranged in parallel with at least one adjacent support structure (20A) along the length extension direction of its angular support groove (20B); The support portion (200) further comprises an adjustment seat (260), the support body is located between the adjustment seat (260) and the limit seat (210), and the support body is slidably connected to the adjustment seat (260) via a second guide structure (270), and the first guide structure (220) and the second guide structure (270) are configured such that when the adjustment seat (260) moves along a preset trajectory, the support body is driven to move synchronously along the width direction and the vertical direction of the angular support groove (20B); The second guide structure (270) includes a locking member (271), a strip guide hole (261) provided on the adjustment seat (260), and a threaded hole (241) provided on the support body. The locking member (271) includes a screw rod (271a) and a locking head (271b) fixed to the first end of the screw rod (271a). The second end of the screw rod (271a) passes through the strip guide hole (261) and is screwed to the threaded hole (241). The locking head (271b) blocks the side of the strip guide hole (261) facing away from the support body.
2. The gas-liquid detachable modular mining transport box according to claim 1 is characterized in that: There are two support bodies in the support portion (200), and the two support bodies are respectively a first support body (230) and a second support body (240). The first support body (230) and the second support body (240) are arranged along the width direction toward the corresponding angular support groove (20B). The support surface of the first support body (230) is higher than the support surface of the second support body (240), and the inclination of the support surface of the first support body (230) relative to the vertical plane is smaller than the inclination of the support surface of the second support body (240) relative to the vertical plane.
3. The gas-liquid detachable modular mining transport box according to claim 1 is characterized in that: A base (300) is provided at the bottom of the box body (100), and the limiting seats (210) of each two supporting structures (20A) are fixedly connected to one of the bases (300), and the two supporting structures (20A) located on the same base (300) are arranged side by side along the length direction of the angular supporting groove (20B) thereof.
4. The gas-liquid detachable modular mining transport box according to claim 3 is characterized in that: The top surface of the base (300) is provided with a first guide surface (310), and the first guide surface (310) extends along a preset track; the bottom surface of the adjustment seat (260) is provided with a second guide surface (262), and the second guide surface (262) matches the first guide surface (310); The base (300) is provided with a stopper (320), the stopper (320) being located on a side of the first guide surface (310) away from the limiting seat (210), and the side walls of the adjustment seat (260) and the stopper (320) facing each other are in contact with each other.
5. The gas-liquid detachable modular mining transport box according to claim 1 or 2, characterized in that: The gas-liquid detachable modular mining transport box further comprises a rotating structure (400), the rotating structure (400) comprising a connecting seat (410) fixedly connected to the bottom of the box body (100) and a rotating seat (420) rotatably connected to the top of the connecting seat (410), a second locking structure being connected between the rotating seat (420) and the connecting seat (410), and the second locking structure having a second locking position for locking the relative position of the rotating seat (420) and the connecting seat (410) and a second unlocking position for releasing the lock; A base (300) is provided at the bottom of the box body (100), and the limiting seats (210) of each two supporting structures (20A) are fixedly connected to one of the bases (300), and the two supporting structures (20A) located on the same base (300) are arranged side by side along the length direction of their angular supporting grooves (20B); the rotating structures (400) are multiple and arranged at intervals along the length direction of the box body (100), and the bases (300) are multiple and respectively fixedly connected to one of the rotating seats (420).
6. The gas-liquid detachable modular mining transport box according to claim 5 is characterized in that: The top of the connecting seat (410) is fixedly connected to a support column (411), and the rotating seat (420) is rotatably sleeved on the top of the support column (411); The second locking structure includes a plurality of locking holes (421) provided on the rotating seat (420) and a lifting plate (430) slidably sleeved on the support column (411), the plurality of locking holes (421) are evenly spaced along the circumference of the rotating seat (420), a plurality of plug-in columns (431) are provided on the top of the lifting plate (430), and the plurality of plug-in columns (431) are plugged into the plurality of locking holes (421) one by one; an elastic member (440) is sandwiched between the lifting plate (430) and the connecting seat (410).
7. A method of use, characterized in that: The gas-liquid detachable modular mining transport box according to claim 5 or 6 is used in a method comprising: Determining a supporting structure (20A) for supporting the tank body (600) according to the length dimension thereof, and using the determined supporting structure (20A) as a target supporting structure; Determining the width or opening angle of the angular support groove (20B) in the target support structure according to the radial dimension of the tank body (600), and using the determined width or opening angle as the target width or target opening angle; Adjusting the first locking structure (250) in the target support structure to a first unlocking position, and sliding the support body along the first guide structure (220) so that the width or opening angle of the angular support groove (20B) reaches a target width or target opening angle; Adjusting the first locking structure (250) to a first locking position; Supporting the tank body (600) on the angular support grooves (20B) of each target support structure; A strap is used to wrap around the top of the tank (600) to bind it to the box body (100) or the supporting structure (20A).
8. The method of use according to claim 7, characterized in that: Before supporting the tank body (600) on the angular support grooves (20B) of each target support structure, the following steps are also included: Determining the circumferential orientation of the base (300) corresponding to the target support structure according to the length dimension of the tank body (600), and using the determined circumferential orientation as the target circumferential orientation; Adjusting the second locking structure of the rotating structure (400) corresponding to the target support structure to reach a second unlocking position, and rotating the rotating seat (420) circumferentially to drive the base (300) thereon to rotate to the target circumferential orientation; The second locking structure is adjusted to a second locking position.
Citation Information
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