Fire hose storage structure and fire hydrant box
By designing a fire hose storage structure including a base plate unit, a sliding unit and a storage unit, the problem of the time spent and insufficient storage space of the fire hose storage in the small fire hydrant box is solved, and a fast and orderly storage effect is achieved.
Patent Information
- Application Number
- CN202421714635.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-18
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-07-18
AI Technical Summary
The storage of the existing small fire hydrant box takes a long time to store the fire hose, and the inconsistent sag length during manual storage leads to insufficient storage space, affecting the use in emergencies.
A fire hose storage structure is designed, including a base plate unit, a first sliding unit, a second sliding unit, a first storage unit and a second storage unit. By alternately setting these units, the fire hose can be quickly stored to avoid errors during manual storage.
The rapid and orderly storage of fire hoses is achieved, avoiding the problem of insufficient storage space and improving the efficiency of use of fire hoses.
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Figure CN222900091U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building fire hydrant boxes, in particular to a fire hose storage structure and a fire hydrant box. Background Art
[0002] At present, fire hydrants are a kind of fire-fighting facilities commonly used for fire fighting, which often play a vital role in controlling and extinguishing fires. Fire hydrant boxes, as a storage facility for storing fire hydrants, can protect fire hydrants and facilitate the use of relevant personnel. However, with the improvement of the efficiency of building space utilization, the location and size of fire hydrants are also subject to increasingly strict space restrictions. For the existing simple fire hydrant boxes, the fire hoses are folded and stored.
[0003] After the fire hose is used, the user needs to store it, but the existing fire extinguisher box needs to be folded and stored manually, which is inefficient and may cause insufficient subsequent storage space due to operational errors. The fire hose cannot be stored in an orderly manner, thus affecting its use in the next emergency.
[0004] Currently, no effective solution has been proposed for the problem of time-consuming storage of fire hoses in small fire hydrant boxes in the related art. Utility Model Content
[0005] The purpose of the utility model is to provide a fire hose storage structure and a fire hydrant box to address the deficiencies in the prior art, so as to solve the problem of time-consuming storage of fire hoses in small fire hydrant boxes in the related art.
[0006] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0007] In a first aspect, a fire hose storage structure is provided for use in a building fire hydrant box, comprising:
[0008] A bottom plate unit, wherein the bottom plate unit is arranged inside the fire hydrant box, and a cavity element is arranged inside the bottom plate unit;
[0009] A first sliding unit, the first sliding unit is arranged on the outer side of the bottom plate unit and communicated with the cavity element of the bottom plate unit;
[0010] a second sliding unit, the second sliding unit being arranged inside the cavity element of the bottom plate unit and being slidably connected to the first sliding unit, and the second sliding unit being capable of reciprocating up and down along the first sliding unit;
[0011] A first storage unit, the first storage unit is arranged on the outer side of the bottom plate unit and is spaced apart from the first sliding unit, an end of the first storage unit protrudes from the outer side of the bottom plate unit and is used to hang and store a fire hose;
[0012] The second storage unit is arranged at the outer end of the second sliding unit and is detachably connected to the second sliding unit. The end of the second storage unit protrudes from the outer side surface of the bottom plate unit and is used to assist in storing the fire hose.
[0013] In some of the embodiments, the base plate unit comprises:
[0014] A bottom plate element, the first sliding unit and the first receiving unit are arranged at intervals on the outer side of the bottom plate element;
[0015] A cavity element is disposed inside the bottom plate element and communicated with the first sliding unit. The second sliding unit is disposed inside the cavity element.
[0016] In some embodiments, the first sliding unit includes:
[0017] A plurality of first sliding elements are arranged at intervals on the outer side of the bottom plate unit and communicated with the cavity element of the bottom plate unit. The first sliding elements are slidably connected with the second sliding units.
[0018] In some embodiments, the second sliding unit includes:
[0019] a second sliding element, which is disposed inside the cavity element of the bottom plate unit and can reciprocate up and down along the cavity element;
[0020] a plurality of third sliding elements, which are arranged at intervals on the outer side of the second sliding element and are slidably connected to the first sliding unit;
[0021] A plurality of first connecting elements, wherein the plurality of first connecting elements are disposed on corresponding third sliding elements and are detachably connected to the second storage units;
[0022] A holding element is arranged on a side of the second sliding element and is located outside the bottom plate unit.
[0023] In some embodiments, the first storage unit includes:
[0024] A plurality of first storage elements are arranged at intervals on the outer side surface of the base unit and are respectively arranged at intervals with the first sliding units. The ends of the first storage elements protrude from the outer side surface of the base unit and are used to hang and store fire hoses.
[0025] In some embodiments, the first storage unit further includes:
[0026] A plurality of reinforcing elements are arranged at the bottom of the corresponding first receiving elements and connected to the bottom plate unit to support the first receiving elements.
[0027] In some embodiments, the second storage unit includes:
[0028] A plurality of second storage elements, wherein the plurality of second storage elements are disposed at the outer ends of the second sliding unit, and the ends of the second storage elements are disposed protruding from the outer side surfaces of the bottom plate unit, and are used to assist in storing fire hoses;
[0029] A plurality of second connecting elements are respectively disposed on corresponding second receiving elements and are detachably connected to the second sliding units.
[0030] In some of the embodiments, it also includes:
[0031] A support unit is arranged at the bottom of the base unit and is detachably connected to the base unit to prevent the base unit from being deformed.
[0032] In some of the embodiments, the base plate unit further comprises:
[0033] A locking element is arranged at the bottom of the base plate unit and is detachably connected to the supporting unit.
[0034] In some embodiments, the support unit comprises:
[0035] A supporting element, which is detachably disposed at the bottom of the base plate unit and is used to prevent the base plate unit from being deformed;
[0036] A plurality of first limiting elements, which are arranged at intervals on the supporting element and are slidably connected to the first sliding unit;
[0037] A second limiting element, wherein the second limiting element is disposed at the bottom of the supporting element and abuts against the bottom of the bottom plate unit.
[0038] In a second aspect, a fire hydrant box is provided for use in a building, comprising:
[0039] fire hydrant box;
[0040] As described in the first aspect, the fire hose storage structure is arranged inside the fire hydrant box, and the bottom plate unit of the fire hose storage structure is connected to the fire hydrant box.
[0041] The utility model adopts the above technical solution, and compared with the prior art, has the following technical effects:
[0042] The utility model provides a fire hose storage structure and a fire hydrant box. By alternately arranging a first storage unit and a slidable second storage unit, the fire hose can be quickly stored. At the same time, the situation in which inconsistent drooping lengths during manual storage lead to insufficient storage space is avoided, thereby solving the problem of time-consuming fire hose storage in a small fire hydrant box. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] Figure 1 is a schematic diagram of a fire hose storage structure according to an embodiment of the utility model (I);
[0044] Figure 2 is a schematic diagram of a bottom plate unit according to an embodiment of the utility model (I);
[0045] Figure 3 is a schematic diagram of a first sliding unit according to an embodiment of the utility model;
[0046] Figure 4 is a schematic diagram of a second sliding unit according to an embodiment of the utility model;
[0047] Figure 5 is a schematic diagram of a first storage unit according to an embodiment of the utility model;
[0048] Figure 6 is a schematic diagram of a second storage unit according to an embodiment of the utility model;
[0049] Figure 7 is a schematic diagram of a storage structure according to an embodiment of the utility model (II);
[0050] Figure 8 is a schematic diagram of a bottom plate unit according to an embodiment of the utility model (II);
[0051] Fig. 9 is a schematic diagram of a support unit according to an embodiment of the utility model;
[0052] Fig.10 It is a schematic diagram of a fire hydrant box according to an embodiment of the utility model.
[0053] The reference numerals are: 100, fire hydrant box; 200, fire hose storage structure;
[0054] 210, bottom plate unit; 211, bottom plate element; 212, cavity element; 213, locking element;
[0055] 220, first sliding unit; 221, first sliding element;
[0056] 230, second sliding unit; 231, second sliding element; 232, third sliding element; 233, first connecting element; 234, holding element;
[0057] 240, first storage unit; 241, first storage element; 242, reinforcement element;
[0058] 250, second storage unit; 251, second storage element; 252, second connecting element;
[0059] 260. Support unit; 261. Support element; 262. First limiting element; 263. Second limiting element. DETAILED DESCRIPTION
[0060] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0061] It should be noted that, in the absence of conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other.
[0062] The present invention will be further described below in conjunction with the accompanying drawings and specific embodiments, but they are not intended to limit the present invention.
[0063] Example 1
[0064] This embodiment relates to the fire hose storage structure of the utility model.
[0065] An illustrative embodiment of the present utility model is as follows: Figure 1As shown, a fire hose storage structure 200 is used for building a fire hydrant box, including a bottom plate unit 210, a first sliding unit 220, a second sliding unit 230, a first storage unit 240 and a second storage unit 250. Among them, the bottom plate unit 210 is arranged inside the fire hydrant box, and a cavity element 212 is arranged inside the bottom plate unit 210; the first sliding unit 220 is arranged on the outer side of the bottom plate unit 210 and is connected to the cavity element 212 of the bottom plate unit 210; the second sliding unit 230 is arranged inside the cavity element 212 of the bottom plate unit 210 and is slidably connected to the first sliding unit 220, and the second sliding unit 230 can reciprocate up and down along the first sliding unit 220; the first storage unit 240 is arranged on the outer side of the bottom plate unit 210 and is spaced apart from the first sliding unit 220, and the end of the first storage unit 240 protrudes from the outer side of the bottom plate unit 210 and is used to hang and store a fire hose; the second storage unit 250 is arranged at the outer end of the second sliding unit 230 and is detachably connected to the second sliding unit 230, and the end of the second storage unit 250 protrudes from the outer side of the bottom plate unit 210 and is used to assist in storing a fire hose.
[0066] like Figure 2 As shown, the bottom plate unit 210 includes a bottom plate element 211 and a cavity element 212. The outer side of the bottom plate element 211 is provided with a first sliding unit 220 and a first receiving unit 240 at intervals; the cavity element 212 is provided inside the bottom plate element 211 and communicates with the first sliding unit 220, and the second sliding unit 230 is provided inside the cavity element 212.
[0067] In some embodiments, the cross section of the bottom plate element 211 is U-shaped. Specifically, the bottom plate element 211 includes a front plate, a rear plate, a side plate, and a top plate. The front plate is provided with a first sliding unit 220; a cavity element 212 is provided between the rear plate and the front plate; the side plate is provided at the side of the front plate and the rear plate; and the top plate is provided at the top of the front plate and the rear plate.
[0068] In some of the embodiments, the front plate has a rectangular cross-section.
[0069] The size of the rear plate matches the size of the front plate. Generally, the width and height of the rear plate are equal to the width and height of the front plate, respectively.
[0070] In some of the embodiments, the cross-section of the rear plate is rectangular.
[0071] In some of the embodiments, the side panels are integrally formed with the front panel and the rear panel.
[0072] In some of the embodiments, the top plate is integrally formed with the front plate and the rear plate.
[0073] In some of these embodiments, the base plate component 211 includes, but is not limited to, a mounting plate.
[0074] The cavity element 212 is disposed through the bottom of the bottom plate element 211 .
[0075] In some embodiments, the cross-section of the cavity element 212 is rectangular.
[0076] like Figure 3 As shown, the first sliding unit 220 includes a plurality of first sliding elements 221 , which are arranged at intervals on the outer side of the bottom plate unit 210 and communicate with the cavity element 212 of the bottom plate unit 210 . The first sliding elements 221 are slidably connected with the second sliding unit 230 .
[0077] Specifically, a plurality of first sliding elements 221 are disposed at intervals on the outer side of the bottom plate element 211 .
[0078] More specifically, a plurality of first sliding elements 221 are disposed at intervals on the front plate.
[0079] A plurality of first sliding elements 221 are arranged at intervals along the horizontal direction.
[0080] The first sliding element 221 is disposed through the outer side surface of the front plate.
[0081] The bottom surface of the first sliding element 221 is flush with the bottom surface of the front plate.
[0082] The size of the first sliding element 221 matches the size of the bottom plate element 211. Generally, the axial dimension of the first sliding element 221 is smaller than the height of the front plate.
[0083] In some of the embodiments, the cross-section of the first sliding element 221 is rectangular.
[0084] In some embodiments, the first sliding element 221 is a first sliding groove.
[0085] like Figure 4 As shown, the second sliding unit 230 includes a second sliding element 231, a plurality of third sliding elements 232, a plurality of first connecting elements 233 and a gripping element 234. The second sliding element 231 is disposed inside the cavity element 212 of the bottom plate unit 210 and can reciprocate up and down along the cavity element 212; a plurality of third sliding elements 232 are disposed at intervals outside the second sliding element 231 and are slidably connected to the first sliding unit 220; a plurality of first connecting elements 233 are disposed on the corresponding third sliding elements 232 and are detachably connected to the second storage unit 250; and the gripping element 234 is disposed on the side of the second sliding element 231 and is located outside the bottom plate unit 210.
[0086] Specifically, the second sliding element 231 is disposed inside the cavity element 212 ; a plurality of third sliding elements 232 are slidably connected to the corresponding first sliding elements 221 ; and the holding element 234 is located outside the cavity element 212 .
[0087] The size of the second sliding element 231 matches the size of the cavity element 212. Generally, the axial size of the second sliding element 231 is equal to the width of the cavity element 212, the thickness of the second sliding element 231 is not greater than the thickness of the cavity element 212, and the height of the second sliding element 231 is less than the height of the cavity element 212.
[0088] In some of the embodiments, the cross section of the second sliding element 231 is rectangular.
[0089] In some embodiments, the second sliding element 231 is a first sliding block.
[0090] In some of the embodiments, the connection method between the third sliding element 232 and the second sliding element 231 includes but is not limited to integral molding and screw connection.
[0091] The number of the third sliding elements 232 matches the number of the first sliding elements 221. Generally, the number of the third sliding elements 232 is not greater than the number of the first sliding elements 221.
[0092] In some embodiments, the number of the third sliding elements 232 is equal to the number of the first sliding elements 221 , that is, the third sliding elements 232 correspond to the first sliding elements 221 one by one.
[0093] The size of the third sliding element 232 matches the size of the bottom plate element 211. Generally, the thickness of the third sliding element 232 is not less than the thickness of the front plate.
[0094] The size of the third sliding element 232 matches the size of the first sliding element 221. Generally, the radial size of the third sliding element 232 is smaller than the radial size of the first sliding element 221.
[0095] In some embodiments, the cross section of the third sliding element 232 is circular.
[0096] In some embodiments, the third sliding element 232 is a second sliding block.
[0097] In some of the embodiments, the first connecting element 233 is disposed through the third sliding element 232 .
[0098] The number of the first connecting elements 233 matches the number of the third sliding elements 232. Generally, the number of the first connecting elements 233 is equal to the number of the third sliding elements 232, that is, the first connecting elements 233 and the third sliding elements 232 correspond one to one.
[0099] The size of the first connecting element 233 matches the size of the third sliding element 232. Generally, the radial size of the first connecting element 233 is smaller than the radial size of the third sliding element 232.
[0100] In some embodiments, the cross section of the first connecting element 233 is circular.
[0101] In some of the embodiments, the first connecting element 233 includes but is not limited to a threaded hole.
[0102] In some of the embodiments, the connection method between the holding element 234 and the second sliding element 231 includes but is not limited to integral molding, screw connection, and clamping.
[0103] The size of the gripping element 234 matches the size of the cavity element 212. Generally, the radial dimension of the gripping element 234 is greater than the thickness of the cavity element 212.
[0104] The size of the gripping element 234 matches the size of the base element 211. Generally, the radial dimension of the gripping element 234 is smaller than the distance from the front side of the front plate to the rear side of the rear plate.
[0105] In some of the embodiments, the gripping element 234 includes but is not limited to a handle or the like.
[0106] like Figure 5 As shown, the first storage unit 240 includes a plurality of first storage elements 241. The plurality of first storage elements 241 are spaced apart on the outer side of the bottom plate unit 210 and are spaced apart from the first sliding unit 220, respectively. The ends of the first storage elements 241 protrude from the outer side of the bottom plate unit 210 and are used to hang and store the fire hose.
[0107] Specifically, a plurality of first receiving elements 241 are disposed at intervals on the outer side surface of the bottom plate element 211 , and are respectively disposed at intervals with corresponding first sliding elements 221 , and ends of the first receiving elements 241 are protruded from the outer side surface of the bottom plate element 211 .
[0108] More specifically, a plurality of first receiving elements 241 are disposed at intervals on the front plate, and ends of the first receiving elements 241 are disposed protruding from the front plate.
[0109] The first receiving elements 241 are disposed on the front plate at intervals along the horizontal direction.
[0110] The axial direction of the first receiving element 241 is arranged along the horizontal direction.
[0111] In some of the embodiments, the connection method between the first storage element 241 and the front plate includes but is not limited to integral molding, screw connection, welding, etc.
[0112] The number of the first receiving elements 241 matches the number of the first sliding elements 221. Generally, the number of the first receiving elements 241 is equal to the number of the first sliding elements 221, that is, the first receiving elements 241 correspond to the first sliding elements 221 one by one.
[0113] The size of the first receiving element 241 matches the size of the first sliding element 221. Generally, the radial size of the first receiving element 241 is smaller than the distance between two adjacent first sliding elements 221.
[0114] In some of the embodiments, the cross-section of the first receiving element 241 includes but is not limited to a circle.
[0115] In some embodiments, the first storage element 241 is a hanging rod.
[0116] Furthermore, the first storage unit 240 further includes a plurality of reinforcing elements 242 . The plurality of reinforcing elements 242 are disposed at the bottom of the corresponding first storage element 241 and connected to the bottom plate unit 210 to support the first storage element 241 .
[0117] Specifically, several reinforcement elements 242 are connected to the base element 211 .
[0118] More specifically, a number of reinforcement elements 242 are connected to the front plate.
[0119] In some of the embodiments, the connection method between the reinforcing element 242 and the bottom plate element 211 and the first receiving element 241 includes but is not limited to welding.
[0120] The number of the reinforcing elements 242 matches the number of the first receiving elements 241. Generally, the number of the reinforcing elements 242 is equal to the number of the first receiving elements 241, that is, the reinforcing elements 242 correspond to the first receiving elements 241 one by one.
[0121] In some of the embodiments, the angle between the reinforcing element 242 and the first receiving element 241 is an acute angle.
[0122] In some of the embodiments, the reinforcing elements 242 include but are not limited to diagonal braces and the like.
[0123] like Figure 6As shown, the second storage unit 250 includes a plurality of second storage elements 251 and a plurality of second connection elements 252. The plurality of second storage elements 251 are disposed at the outer end of the second sliding unit 230, and the ends of the second storage elements 251 protrude from the outer side surface of the bottom plate unit 210, and are used to assist in storing the fire hose; the plurality of second connection elements 252 are respectively disposed at the corresponding second storage elements 251, and are detachably connected to the second sliding unit 230.
[0124] Specifically, a plurality of second receiving elements 251 are disposed at the outer end of the third sliding element 232 , and the end of the second receiving element 251 is protruded from the outer side surface of the bottom plate element 211 ; and a plurality of second connecting elements 252 are detachably connected to the corresponding first connecting elements 233 .
[0125] The number of the second receiving elements 251 matches the number of the third sliding elements 232. Generally, the number of the second receiving elements 251 is equal to the number of the third sliding elements 232, that is, the second receiving elements 251 correspond to the third sliding elements 232 one by one.
[0126] The size of the second receiving element 251 matches the size of the first receiving element 241. Generally, the radial size of the second receiving element 251 is smaller than the distance between two adjacent first receiving elements 241, and the axial size of the second receiving element 251 is not smaller than the axial size of the first receiving element 241.
[0127] In some of the embodiments, the cross-section of the second receiving element 251 includes but is not limited to a circle.
[0128] In some embodiments, the second receiving element 251 is a limiting rod.
[0129] In some embodiments, the second connecting element 252 and the second receiving element 251 are integrally formed.
[0130] The number of the second connecting elements 252 matches the number of the second receiving elements 251. Generally, the number of the second connecting elements 252 is equal to the number of the second receiving elements 251, that is, the second connecting elements 252 correspond to the second receiving elements 251 one by one.
[0131] The size of the second connecting element 252 matches the size of the locking element 213. Generally, the radial size of the second connecting element 252 is equal to the radial size of the locking element 213.
[0132] In some of the embodiments, the second connecting element 252 includes, but is not limited to, a threaded rod.
[0133] The method of using the utility model is as follows:
[0134] After selecting the number of the second receiving elements 251 as required, the second receiving elements 251 are installed on the third sliding element 232 ;
[0135] Slide the second sliding element 231 and the third sliding element 232 from the bottom of the bottom plate element 211 into the cavity element 212 and the first sliding element 221 respectively, until the position of the third sliding element 232 is higher than the first receiving element 241;
[0136] Fold the fire hose as needed, and place the middle area of the fire hose horizontally between the first storage element 241 and the second storage element 251;
[0137] Push the holding element 234 to slide downward, and the second storage element 251 drives the fire hose to fold downward until the second sliding element 231 slides to the bottom of the bottom plate element 211;
[0138] After the second sliding element 231 and the third sliding element 232 are separated from the bottom plate element 211 and the first sliding element 221, they are stored in one side of the fire hydrant housing.
[0139] The advantage of the utility model is that by alternately arranging the first storage unit and the slidable second storage unit, the fire hose can be quickly stored, while avoiding the situation where the inconsistent drooping length during manual storage leads to insufficient storage space, thereby solving the problem of time-consuming storage of fire hoses in small fire hydrant boxes.
[0140] Example 2
[0141] This embodiment is a supplementary embodiment of Embodiment 1.
[0142] like Figure 7 As shown, the fire hose storage structure 200 further includes a support unit 260. The support unit 260 is disposed at the bottom of the bottom plate unit 210 and is detachably connected to the bottom plate unit 210 to prevent the bottom plate unit 210 from being deformed.
[0143] like Figure 8 As shown, the bottom plate unit 210 further includes a locking element 213. The locking element 213 is disposed on a side of the bottom plate unit 210 and is detachably connected to the supporting unit 260.
[0144] Specifically, the locking element 213 is provided at the bottom of the side portion of the base element 211 .
[0145] More specifically, the locking element 213 is disposed at the bottom of the side panel, the side of the front panel, or the side of the rear panel.
[0146] In some of the embodiments, the connection method between the locking element 213 and the base element 211 includes but is not limited to screw connection.
[0147] In some embodiments, there are two locking elements 213 , which are respectively disposed at the bottom of two sides of the bottom plate element 211 .
[0148] In some embodiments, the locking element 213 includes but is not limited to an elastic buckle.
[0149] like Fig. 9 As shown, the support unit 260 includes a support element 261, a plurality of first limiting elements 262 and a second limiting element 263. The support element 261 is detachably disposed at the bottom of the bottom plate unit 210 to prevent the bottom plate unit 210 from deforming; the plurality of first limiting elements 262 are disposed at intervals on the support element 261 and are slidably connected to the first sliding unit 220; the second limiting element 263 is disposed at the bottom of the support element 261 and abuts against the bottom of the bottom plate unit 210.
[0150] Specifically, the support element 261 is detachably arranged at the bottom of the cavity element 212 to prevent the bottom plate element 211 from deforming; a plurality of first limiting elements 262 are respectively slidably connected to the corresponding first sliding elements 221; and the second limiting element 263 abuts against the bottom of the bottom plate element 211.
[0151] More specifically, the second limiting element 263 abuts against the bottom of the front plate and the bottom of the rear plate respectively.
[0152] The size of the support element 261 matches the size of the cavity element 212. Generally, the thickness of the support element 261 is equal to the thickness of the cavity element 212, and the height of the support element 261 is less than the height of the cavity element 212.
[0153] In some of the embodiments, the cross-section of the support element 261 is rectangular.
[0154] The first limiting elements 262 are disposed at intervals on the side surfaces of the supporting element 261 along the horizontal direction.
[0155] In some embodiments, the first limiting element 262 and the supporting element 261 are integrally formed.
[0156] The number of the first limiting elements 262 matches the number of the first sliding elements 221. Generally, the number of the first limiting elements 262 is equal to the number of the first sliding elements 221, that is, the first limiting elements 262 correspond to the first sliding elements 221 one by one.
[0157] The size of the first limiting element 262 matches the size of the first sliding element 221. Generally, the radial size of the first limiting element 262 is equal to the radial size of the first sliding element 221, and the axial size of the first limiting element 262 is smaller than the axial size of the first sliding element 221.
[0158] The size of the first limiting element 262 matches the size of the supporting element 261. Generally, the axial size of the first limiting element 262 is not greater than the height of the supporting element 261.
[0159] The size of the first limiting element 262 matches the size of the bottom plate element 211. Generally, the thickness of the first limiting element 262 is not greater than the thickness of the front plate.
[0160] In some of the embodiments, the first limiting element 262 is a limiting block.
[0161] In some of the embodiments, the second limiting element 263 is integrally formed with the supporting element 261 and the first limiting element 262 .
[0162] The size of the second limiting element 263 matches the size of the supporting element 261. Generally, the thickness of the second limiting element 263 is greater than the thickness of the supporting element 261.
[0163] The size of the second limiting element 263 matches the size of the bottom plate element 211. Generally, the thickness of the second limiting element 263 is not greater than the distance from the side of the front plate to the side of the rear plate.
[0164] In some of the embodiments, the second limiting element 263 is a limiting plate.
[0165] The method of using this embodiment is as follows:
[0166] The steps for storing the fire hose are the same as those in Example 1;
[0167] The supporting element 261 and the first limiting element 262 are respectively inserted into the cavity element 212 and the first sliding element 221 , and fixed by the locking element 213 to prevent the lower part of the bottom plate element 211 from being deformed.
[0168] The advantage of this embodiment is that, by providing the support unit, the bottom of the bottom plate unit can be prevented from being deformed due to external force, thereby extending the service life of the storage structure.
[0169] Example 3
[0170] This embodiment relates to a fire hydrant box of the utility model.
[0171] like Fig.10As shown, a fire hydrant box is used in a building, comprising a fire hydrant box 100 and a fire hose storage structure 200 as described in Embodiments 1 and 2. The fire hose storage structure 200 is arranged inside the fire hydrant box 100, and a bottom plate unit 210 of the fire hose storage structure 200 is connected to the fire hydrant box 100.
[0172] Specifically, the fire hydrant box 100 is connected to the bottom plate element 211 .
[0173] In some of the embodiments, the fire hydrant box 100 is detachably connected to the base plate element 211, including but not limited to screw connection and clamping.
[0174] The method of using this embodiment is as follows:
[0175] After the fire hose is stored in a relatively open area, the storage device is placed inside the fire hydrant box 100 .
[0176] The advantage of this embodiment is that the fire hydrant box and the storage device are designed to be detachable, which facilitates the operation of storing the fire hose.
[0177] The above description is only a preferred embodiment of the present invention, and does not limit the implementation mode and protection scope of the present invention. For those skilled in the art, it should be aware that all solutions obtained by equivalent substitutions and obvious changes made using the description and illustrations of the present invention should be included in the protection scope of the present invention.
Claims
1. A fire hose storage structure for a building fire hydrant box, characterized in that: include: A bottom plate unit, wherein the bottom plate unit is arranged inside the fire hydrant box, and a cavity element is arranged inside the bottom plate unit; A first sliding unit, the first sliding unit is arranged on the outer side of the bottom plate unit and communicated with the cavity element of the bottom plate unit; a second sliding unit, the second sliding unit being arranged inside the cavity element of the bottom plate unit and being slidably connected to the first sliding unit, and the second sliding unit being capable of reciprocating up and down along the first sliding unit; A first storage unit, the first storage unit is arranged on the outer side of the bottom plate unit and is spaced apart from the first sliding unit, an end of the first storage unit protrudes from the outer side of the bottom plate unit and is used to hang and store a fire hose; The second storage unit is arranged at the outer end of the second sliding unit and is detachably connected to the second sliding unit. The end of the second storage unit protrudes from the outer side surface of the bottom plate unit and is used to assist in storing the fire hose.
2. A fire hose storage structure according to claim 1, characterized in that: The base plate unit comprises: A bottom plate element, the first sliding unit and the first receiving unit are arranged at intervals on the outer side of the bottom plate element; A cavity element is disposed inside the bottom plate element and communicated with the first sliding unit. The second sliding unit is disposed inside the cavity element.
3. A fire hose storage structure according to claim 1, characterized in that: The first sliding unit comprises: A plurality of first sliding elements are arranged at intervals on the outer side of the bottom plate unit and communicated with the cavity element of the bottom plate unit. The first sliding elements are slidably connected with the second sliding units.
4. A fire hose storage structure according to claim 1, characterized in that: The second sliding unit comprises: a second sliding element, which is disposed inside the cavity element of the bottom plate unit and can reciprocate up and down along the cavity element; a plurality of third sliding elements, which are arranged at intervals on the outer side of the second sliding element and are slidably connected to the first sliding unit; A plurality of first connecting elements, wherein the plurality of first connecting elements are disposed on corresponding third sliding elements and are detachably connected to the second storage units; A holding element is arranged on a side of the second sliding element and is located outside the bottom plate unit.
5. The fire hose storage structure according to claim 1, characterized in that: The first storage unit comprises: A plurality of first storage elements are arranged at intervals on the outer side surface of the base unit and are respectively arranged at intervals with the first sliding units. The ends of the first storage elements protrude from the outer side surface of the base unit and are used to hang and store fire hoses.
6. A fire hose storage structure according to claim 5, characterized in that: The first storage unit further includes: A plurality of reinforcing elements are arranged at the bottom of the corresponding first receiving elements and connected to the bottom plate unit to support the first receiving elements.
7. A fire hose storage structure according to claim 1, characterized in that: The second storage unit comprises: A plurality of second storage elements, wherein the plurality of second storage elements are disposed at the outer ends of the second sliding unit, and the ends of the second storage elements are disposed protruding from the outer side surfaces of the bottom plate unit, and are used to assist in storing fire hoses; A plurality of second connecting elements are respectively disposed on corresponding second receiving elements and are detachably connected to the second sliding units.
8. The fire hose storage structure according to claim 1, characterized in that: Also includes: A support unit is arranged at the bottom of the base unit and is detachably connected to the base unit to prevent the base unit from being deformed.
9. A fire hose storage structure according to claim 8, characterized in that: The base plate unit also includes: a locking element, the locking element being disposed at the bottom of the base unit and being detachably connected to the supporting unit; and / or The support unit comprises: A supporting element, which is detachably disposed at the bottom of the base plate unit and is used to prevent the base plate unit from being deformed; A plurality of first limiting elements, which are arranged at intervals on the supporting element and are slidably connected to the first sliding unit; A second limiting element, wherein the second limiting element is disposed at the bottom of the supporting element and abuts against the bottom of the bottom plate unit.
10. A fire hydrant box, used in a building, characterized in that: include: fire hydrant box; According to the fire hose storage structure as described in any one of claims 1 to 9, the fire hose storage structure is arranged inside the fire hydrant box, and the bottom plate unit of the fire hose storage structure is connected to the fire hydrant box.