Equipment belt structure for assembled ward
By using installation units that snap onto the wall in prefabricated wards, combined with locking and adjustment units, the structural damage and low installation efficiency caused by traditional drilling are solved, achieving efficient and safe equipment installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI XIANGSHAN CONSTR DESIGN CO LTD
- Filing Date
- 2025-05-30
- Publication Date
- 2026-05-26
AI Technical Summary
In prefabricated wards, traditional equipment installation methods involve drilling holes in the walls, which damages the structural integrity of the prefabricated walls and results in low installation efficiency.
The system employs a snap-fit connection between the installation unit and the wall. The installation unit and the main unit are detachably snap-fitted together, and the main unit's movement is restricted by a locking unit. The hook unit and adjustment unit work together to achieve flexible adjustment of the hanging bottle.
It avoids structural damage to prefabricated walls, simplifies the installation process, improves construction efficiency, meets the infusion needs of different patients, and facilitates operation by medical staff.
Smart Images

Figure CN224269677U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of prefabricated ward facilities, and in particular to an equipment belt structure for prefabricated wards. Background Technology
[0002] Prefabricated hospital wards are an innovative achievement in the field of medical architecture, bringing a new revolution to medical space construction with their modular design and industrialized production advantages. The core of this approach lies in the pre-production and assembly of components such as walls, floors, ceilings, and water and electricity pipelines for the ward units in the factory, which are then transported to the site and rapidly assembled using precise connection technology.
[0003] These prefabricated wards are highly efficient to construct, significantly shortening the construction period compared to traditional methods. They can rapidly respond to medical needs in emergencies, such as quickly expanding isolation wards during pandemics. Standardized production ensures consistent quality, with excellent sound insulation, fire resistance, and moisture resistance, creating a safe and comfortable treatment environment for patients. The internal functional areas are rationally divided, with integrated installation of various medical facilities and living equipment, from treatment areas to rest areas, facilitating work for medical staff and ease of use for patients. Furthermore, these prefabricated wards are detachable and reusable, allowing for flexible layout adjustments or relocation to meet changing needs, effectively reducing medical construction costs and combining practicality with economy.
[0004] Traditionally, when installing equipment belts in prefabricated wards, the method involves drilling holes in the wall and fixing the equipment belts with bolts. This not only damages the structural integrity of the prefabricated walls of the prefabricated ward and affects the wall performance, but also results in low installation efficiency.
[0005] Currently, no effective solutions have been proposed for the problems of drilling holes in walls, which damages the structural integrity of prefabricated walls in modular wards, and the low installation efficiency in related technologies. Utility Model Content
[0006] The purpose of this utility model is to address the shortcomings of existing technologies by providing an equipment belt structure for prefabricated wards, thereby solving the problems of wall drilling that damages the structural integrity of prefabricated walls and low installation efficiency in related technologies.
[0007] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0008] An equipment belt structure for prefabricated hospital wards includes:
[0009] The installation unit is mounted on and connected to the wall.
[0010] A main body unit, which is detachably disposed at the end of the mounting unit;
[0011] A locking unit is detachably disposed inside the main body unit and abuts against the mounting unit to restrict the movement of the main body unit;
[0012] A hook unit is disposed at the top of the main body unit and is used to reciprocate along the length of the main body unit and to hang the hanging bottle;
[0013] An adjustment unit is provided at the top of the main body unit and is detachably connected to the hook unit, for driving the hook unit to reciprocate along the length of the main body unit.
[0014] In some embodiments, the mounting unit includes:
[0015] The mounting element is disposed on the wall surface, and the main body unit is provided at the end of the mounting element and connected to the wall surface;
[0016] The first docking element is disposed at the end of the mounting element and engages with the main body unit and abuts against the locking unit;
[0017] A first support element is disposed at the bottom end of the mounting element and abuts against the main body unit.
[0018] In some embodiments, the main body unit includes:
[0019] The main body component is detachably disposed at the end of the mounting unit, and the hook unit is disposed at the top end of the main body component;
[0020] The second docking element is disposed at the end of the main body element, and the locking unit is disposed on the inner side of the second docking element and engages with the mounting unit.
[0021] A through-slot element is disposed on the side of the main body element and communicates with the second docking element, for the locking unit to pass through;
[0022] A first sliding element is disposed at the top of the main body element and is slidably connected to the adjustment unit.
[0023] In some embodiments, the main body unit further includes:
[0024] A first rotating element is disposed inside the first sliding element and is rotatably connected to the adjusting unit;
[0025] At least one first connecting element is disposed inside the through slot element and is connected to a bolt.
[0026] In some embodiments, the locking unit includes:
[0027] A first locking element is detachably disposed on the inner side of the main body unit and abuts against the mounting unit to restrict the movement of the main body unit;
[0028] A second locking element is disposed on the side of the first locking element and connected to the first locking element.
[0029] In some embodiments, the locking unit further includes:
[0030] At least one second connecting element is provided through the second locking element for a bolt to pass through.
[0031] In some embodiments, the hook unit includes:
[0032] The second support element is disposed at the top of the main body unit and is detachably connected to the adjustment unit, and is used to reciprocate along the length direction of the main body unit under the action of the adjustment unit.
[0033] At least one hook element is provided at the top of the second support element and connected to the second support element, for hanging the bottle and reciprocating along the length direction of the main body unit under the action of the second support element.
[0034] In some embodiments, the hook unit further includes:
[0035] The third connecting element is disposed at the bottom end of the second supporting element and is detachably connected to the adjusting unit.
[0036] In some embodiments, the adjustment unit includes:
[0037] The second sliding element is slidably disposed at the top end of the main body unit, and the top end of the second sliding element is provided with the hook unit for reciprocating along the length direction of the main body unit;
[0038] The second rotating element is rotatably connected to the second sliding element and the main body unit, and is used to drive the second sliding element to reciprocate along the length direction of the main body unit.
[0039] A control element is disposed at the end of the second rotating element and connected to the second rotating element, for driving the second rotating element to rotate circumferentially along the second rotating element.
[0040] In some embodiments, the adjustment unit further includes:
[0041] A fourth connecting element is disposed through the second sliding element and is rotatably connected to the second rotating element;
[0042] A fifth connecting element is disposed at the top of the second sliding element and is detachably connected to the hook unit.
[0043] The present invention adopts the above technical solution and has the following technical effects compared with the prior art:
[0044] This utility model discloses an equipment belt structure for prefabricated wards. After the installation unit is connected to the wall, it is linked to the main unit via a snap-fit method, replacing traditional drilling and bolt fixing. This avoids damage to the prefabricated wall structure, preserves the integrity of the wall, and leverages the advantages of prefabricated construction. It also simplifies the installation process and improves construction efficiency. A locking unit restricts the movement of the main unit, preventing the equipment belt from loosening or shifting due to external impacts, ensuring safety. The hook unit, in conjunction with the adjustment unit, overcomes the limitation of fixed intravenous drip suspension positions. The adjustment unit can flexibly adjust the lateral position of the hook unit according to the patient's actual needs and changes in bed position, meeting the infusion needs of different patients and facilitating operation by medical staff. Attached Figure Description
[0045] Figure 1 This is a three-dimensional structural diagram of the equipment belt structure according to an embodiment of the present utility model;
[0046] Figure 2 This is an exploded view of the device with a structure according to an embodiment of the present utility model;
[0047] Figure 3 This is a cross-sectional view of the device belt structure according to an embodiment of the present utility model;
[0048] Figure 4 This is a three-dimensional structural diagram of the installation unit according to an embodiment of the present utility model;
[0049] Figure 5a This is a partial enlarged view of the main body unit according to an embodiment of the present utility model;
[0050] Figure 5b This is a cross-sectional view of the main body unit according to an embodiment of the present utility model;
[0051] Figure 6This is a three-dimensional structural schematic diagram of the locking unit according to an embodiment of the present utility model;
[0052] Figure 7 This is a three-dimensional structural diagram of the hook unit according to an embodiment of the present utility model;
[0053] Figure 8a This is a partial structural schematic diagram (a) of the adjustment unit according to an embodiment of the present utility model;
[0054] Figure 8b This is a partial structural schematic diagram (II) of the adjustment unit according to an embodiment of the present utility model.
[0055] The reference numerals in the accompanying drawings are: 10, mounting unit; 11, mounting element; 12, first docking element; 13, first supporting element;
[0056] 20. Main body unit; 21. Main body element; 22. Second docking element; 23. Through groove element; 24. First sliding element; 25. First rotating element; 26. First connecting element;
[0057] 30. Locking unit; 31. First locking element; 32. Second locking element; 33. Second connecting element;
[0058] 40. Hook unit; 41. Second support element; 42. Hook element; 43. Third connecting element;
[0059] 50. Adjustment unit; 51. Second sliding element; 52. Second rotating element; 53. Control element; 54. Fourth connecting element; 55. Fifth connecting element. Detailed Implementation
[0060] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0061] It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0062] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, but this is not intended to limit the present invention.
[0063] An illustrative embodiment of this utility model, such as Figure 1 , Figure 2 , Figure 3As shown, an equipment belt structure for a prefabricated ward includes an installation unit 10, a main body unit 20, a locking unit 30, a hook unit 40, and an adjustment unit 50. The installation unit 10 is mounted on and connected to the wall. The main body unit 20 is detachably mounted at the end of the installation unit 10. The locking unit 30 is detachably mounted inside the main body unit 20 and abuts against the installation unit 10 to restrict movement of the main body unit 20. The hook unit 40 is located at the top of the main body unit 20 and is used for reciprocating movement along the length of the main body unit 20 and for holding intravenous drips. The adjustment unit 50 is located at the top of the main body unit 20 and is detachably connected to the hook unit 40, used to drive the hook unit 40 to reciprocate along the length of the main body unit 20.
[0064] like Figure 4 As shown, the mounting unit 10 includes a mounting element 11, a first docking element 12, and a first supporting element 13. The mounting element 11 is disposed on the wall surface, and a main body unit 20 is disposed at one end of the mounting element 11 and connected to the wall surface. The first docking element 12 is disposed at the end of the mounting element 11, engages with the main body unit 20, and abuts against the locking unit 30. The first supporting element 13 is disposed at the bottom end of the mounting element 11 and abuts against the main body unit 20.
[0065] The cross-section of mounting element 11 is rectangular.
[0066] In some of these embodiments, the mounting element 11 is fixedly connected to the wall, including but not limited to being integrally formed.
[0067] In some of these embodiments, the mounting element 11 is made of metal.
[0068] In some of these embodiments, mounting element 11 is a mounting plate.
[0069] The first docking element 12 has an L-shaped cross-section. Specifically, the first docking element 12 includes a first docking plate and a second docking plate. The first docking plate is disposed at the end of the mounting element 11 and is engaged with the main body unit 20 and abuts against the locking unit 30; the second docking plate is disposed at the end of the first docking plate and is engaged with the main body unit 20 and abuts against the locking unit 30.
[0070] The dimensions of the first mating plate are matched with the dimensions of the mounting element 11. Generally, the length of the first mating plate is equal to the length of the mounting element 11, the width of the first mating plate is greater than the width of the mounting element 11, and the height of the first mating plate is less than the height of the mounting element 11.
[0071] The dimensions of the second mating plate are matched with the dimensions of the mounting element 11. Generally, the length of the second mating plate is equal to the length of the mounting element 11, the width of the second mating plate is greater than the width of the mounting element 11, and the height of the second mating plate is less than the height of the mounting element 11.
[0072] The dimensions of the second mating plate match those of the first mating plate. Generally, the length of the second mating plate is equal to the length of the first mating plate, the width of the second mating plate is equal to the width of the first mating plate, and the height of the second mating plate is greater than the height of the first mating plate.
[0073] In some of these embodiments, the first docking element 12 is fixedly connected to the mounting element 11, including but not limited to integral molding.
[0074] In some of these embodiments, the first docking element 12 is made of metal.
[0075] The cross-section of the first support element 13 is rectangular.
[0076] The dimensions of the first support element 13 are matched with the dimensions of the mounting element 11. Generally, the length of the first support element 13 is equal to the length of the mounting element 11, the width of the first support element 13 is greater than the width of the mounting element 11, and the height of the first support element 13 is less than the height of the mounting element 11.
[0077] In some of these embodiments, the first support element 13 is fixedly connected to the mounting element 11, including but not limited to integral molding.
[0078] In some of these embodiments, the first support element 13 is made of metal.
[0079] In some of these embodiments, the first support element 13 is a support plate.
[0080] like Figure 5a , Figure 5b As shown, the main body unit 20 includes a main body element 21, a second docking element 22, a through groove element 23, and a first sliding element 24. The main body element 21 is detachably disposed at the end of the mounting unit 10, and a hook unit 40 is provided at the top of the main body element 21. The second docking element 22 is disposed at the end of the main body element 21, and a locking unit 30 is provided on the inner side of the second docking element 22, engaging with the mounting unit 10. The through groove element 23 is disposed on the side of the main body element 21 and communicates with the second docking element 22, allowing the locking unit 30 to pass through. The first sliding element 24 is disposed at the top of the main body element 21 and is slidably connected to the adjustment unit 50.
[0081] Specifically, the main body element 21 is detachably disposed at the end of the mounting element 11, and the bottom end of the main body element 21 abuts against the top end of the first support element 13; the second docking element 22 is engaged with the first docking element 12.
[0082] More specifically, the second docking element 22 is engaged with the first docking plate and the second docking plate respectively.
[0083] The cross-section of the main component 21 is rectangular.
[0084] The dimensions of the main body element 21 match the dimensions of the mounting element 11. Generally, the length of the main body element 21 is greater than the length of the mounting element 11, the width of the main body element 21 is greater than the width of the mounting element 11, and the height of the main body element 21 is greater than the height of the mounting element 11.
[0085] In some of these embodiments, the main component 21 is made of aluminum alloy.
[0086] In some of these embodiments, the main component 21 is a device strip.
[0087] The second docking element 22 has an L-shaped cross-section. Specifically, the second docking element 22 includes a first docking groove and a second docking groove. The first docking groove is located at the end of the main body element 21 and is connected to the through groove element 23, and is engaged with the first docking plate; the second docking groove is located inside the first docking groove and is connected to the through groove element 23, and is engaged with the second docking plate.
[0088] The dimensions of the first mating groove match the dimensions of the main body component 21. Generally, the length of the first mating groove is less than the length of the main body component 21, the width of the first mating groove is less than the width of the main body component 21, and the height of the first mating groove is less than the height of the main body component 21.
[0089] The dimensions of the first mating groove match the dimensions of the first mating element 12. Generally, the length of the first mating groove is equal to the length of the first mating plate, the width of the first mating groove is equal to the width of the first mating plate, and the height of the first mating groove is greater than the height of the first mating plate.
[0090] The dimensions of the second mating groove match the dimensions of the main component 21. Generally, the length of the second mating groove is less than the length of the main component 21, the width of the second mating groove is less than the width of the main component 21, and the height of the second mating groove is less than the height of the main component 21.
[0091] The dimensions of the second mating groove match the dimensions of the first mating element 12. Generally, the length of the second mating groove is equal to the length of the second mating plate, the width of the second mating groove is equal to the width of the second mating plate, and the height of the first mating groove is greater than the height of the second mating plate.
[0092] The dimensions of the second mating groove match those of the first mating groove. Generally, the length of the second mating groove is equal to the length of the first mating groove, the width of the second mating groove is equal to the width of the first mating groove, and the height of the second mating groove is greater than the height of the first mating groove.
[0093] The sum of the width of the second docking groove and the width of the first docking groove is equal to the sum of the width of the first docking plate and the width of the second docking plate.
[0094] The cross-section of the through-slot element 23 is rectangular.
[0095] The dimensions of the through-slot element 23 match the dimensions of the main body element 21. Generally, the length of the through-slot element 23 is less than the width of the main body element 21, the width of the through-slot element 23 is less than the length of the main body element 21, and the height of the through-slot element 23 is less than the height of the main body element 21.
[0096] The dimensions of the through-slot element 23 are matched with the dimensions of the second mating element 22. Generally, the length of the through-slot element 23 is greater than the width of the first mating groove, the width of the through-slot element 23 is less than the length of the first mating groove, and the height of the through-slot element 23 is less than the height of the first mating groove.
[0097] The length of the through slot element 23 is greater than the sum of the widths of the first docking slot and the second docking slot.
[0098] In some of these embodiments, the slot element 23 is a slot.
[0099] The first sliding element 24 has a convex cross-section. Specifically, the first sliding element 24 includes a first sliding groove and a second sliding groove. The first sliding groove is located at the top of the main body element 21 and is slidably connected to the adjustment unit 50; the second sliding groove is located at the bottom of the first sliding groove and is slidably connected to the adjustment unit 50.
[0100] The dimensions of the first sliding groove are matched with the dimensions of the main body element 21. Generally, the length of the first sliding groove is less than the length of the main body element 21, the width of the first sliding groove is less than the width of the main body element 21, and the height of the first sliding groove is less than the height of the main body element 21.
[0101] The dimensions of the second sliding groove are matched with the dimensions of the main component 21. Generally, the length of the second sliding groove is less than the length of the main component 21, the width of the second sliding groove is less than the width of the main component 21, and the height of the second sliding groove is less than the height of the main component 21.
[0102] The dimensions of the second sliding groove match those of the first sliding groove. Generally, the length of the second sliding groove is equal to the length of the first sliding groove, the width of the second sliding groove is greater than the width of the first sliding groove, and the height of the second sliding groove is greater than the height of the first sliding groove.
[0103] Furthermore, the main body unit 20 also includes a first rotating element 25 and at least one first connecting element 26. The first rotating element 25 is disposed inside the first sliding element 24 and is rotatably connected to the adjusting unit 50; the first connecting element 26 is disposed inside the through slot element 23 and is connected to a bolt.
[0104] Specifically, the first rotating element 25 is disposed inside the second sliding groove.
[0105] The cross-section of the first rotating element 25 is circular.
[0106] The dimensions of the first rotating element 25 are matched with the dimensions of the first sliding element 24. Generally, the radial dimension of the first rotating element 25 is smaller than the width and height of the second sliding groove, and the axial dimension of the first rotating element 25 is smaller than the length of the second sliding groove.
[0107] In some of these embodiments, the first rotating element 25 is a rotating hole.
[0108] The cross-section of the first connecting element 26 is circular.
[0109] The dimensions of the first connecting element 26 are matched with the dimensions of the through slot element 23. Generally, the radial dimension of the first connecting element 26 is smaller than the length and height of the through slot element 23.
[0110] The dimensions of the first connecting element 26 are matched with the dimensions of the main body element 21. Generally, the axial dimension of the first connecting element 26 is smaller than the length of the main body element 21.
[0111] In some embodiments, there are multiple first connecting elements 26, which are arranged along the height direction of the through slot element 23.
[0112] In some embodiments, a first connecting element 26 is disposed above the through slot element 23 and a first connecting element 26 is disposed below the through slot element 23.
[0113] In some of these embodiments, the first connecting element 26 is a first threaded hole.
[0114] like Figure 6As shown, the locking unit 30 includes a first locking element 31 and a second locking element 32. The first locking element 31 is detachably disposed inside the main body unit 20 and abuts against the mounting unit 10 to restrict the movement of the main body unit 20; the second locking element 32 is disposed on the side of the first locking element 31 and is connected to the first locking element 31.
[0115] Specifically, the first locking element 31 is detachably disposed inside the second docking element 22, and the top end of the first locking element 31 abuts against the bottom end of the first docking element 12; the second locking element 32 is located inside the through groove element 23.
[0116] More specifically, the first locking element 31 is detachably disposed inside the first docking groove and the second docking groove, and the top end of the first locking element 31 abuts against the bottom end of the first docking plate and the second docking plate, respectively.
[0117] The first locking element 31 has a rectangular cross-section.
[0118] The dimensions of the first locking element 31 are matched with the dimensions of the second mating element 22. Generally, the length of the first locking element 31 is not greater than the length of the first mating groove (second mating groove), the width of the first locking element 31 is equal to the sum of the width of the first mating groove and the width of the second mating groove, and the height of the first locking element 31 is less than the height of the first mating groove (second mating groove).
[0119] Wherein, the sum of the height of the first locking element 31 and the height of the first docking plate is equal to the height of the first docking groove; the sum of the height of the first locking element 31 and the height of the second docking plate is equal to the height of the second docking groove.
[0120] In some of these embodiments, the first locking element 31 is made of metal.
[0121] In some of these embodiments, the first locking element 31 is a first locking plate.
[0122] The second locking element 32 has a rectangular cross-section.
[0123] The dimensions of the second locking element 32 are matched with the dimensions of the first locking element 31. Generally, the length of the second locking element 32 is greater than the width of the first locking element 31, the width of the second locking element 32 is less than the length of the first locking element 31, and the height of the second locking element 32 is equal to the height of the first locking element 31.
[0124] The dimensions of the second locking element 32 are matched with the dimensions of the through slot element 23. Generally, the length of the second locking element 32 is equal to the length of the through slot element 23, the width of the second locking element 32 is equal to the width of the through slot element 23, and the height of the second locking element 32 is equal to the height of the through slot element 23.
[0125] In some embodiments, the second locking element 32 is fixedly connected to the first locking element 31, including but not limited to being integrally formed.
[0126] In some of these embodiments, the second locking element 32 is made of metal.
[0127] In some of these embodiments, the second locking element 32 is a second locking plate.
[0128] Furthermore, the locking unit 30 also includes at least one second connecting element 33. The second connecting element 33 is disposed through the second locking element 32 for a bolt to pass through.
[0129] Specifically, the second connecting element 33 corresponds to (is connected to) the first connecting element 26.
[0130] The cross-section of the second connecting element 33 is circular.
[0131] The dimensions of the second connecting element 33 are matched with the dimensions of the second locking element 32. Generally, the radial dimension of the second connecting element 33 is smaller than the length and height of the second locking element 32, and the axial dimension of the second connecting element 33 is equal to the width of the second locking element 32.
[0132] The dimensions of the second connecting element 33 are matched with the dimensions of the first connecting element 26. Generally, the radial dimension of the second connecting element 33 is equal to the radial dimension of the first connecting element 26.
[0133] The number of second connecting elements 33 matches the number of first connecting elements 26. Generally, the number of second connecting elements 33 is equal to the number of first connecting elements 26.
[0134] In some embodiments, there are multiple second connecting elements 33, which are arranged along the height direction of the second locking element 32.
[0135] In some embodiments, a second connecting element 33 is disposed above the second locking element 32 and a second connecting element 33 is disposed below the second locking element 32.
[0136] In some of these embodiments, the second connecting element 33 is a through hole.
[0137] like Figure 7As shown, the hook unit 40 includes a second support element 41 and at least one hook element 42. The second support element 41 is disposed at the top of the main body unit 20 and detachably connected to the adjustment unit 50, for reciprocating movement along the length of the main body unit 20 under the action of the adjustment unit 50. The hook element 42 is disposed at the top of the second support element 41 and connected to the second support element 41, for hanging the bottle and reciprocating movement along the length of the main body unit 20 under the action of the second support element 41.
[0138] Specifically, the second support element 41 is disposed at the top of the main body element 21.
[0139] The cross-section of the second support element 41 is circular.
[0140] The dimensions of the second support element 41 are matched with the dimensions of the main body element 21. Generally, the radial dimension of the second support element 41 is smaller than the length and width of the main body element 21, and the axial dimension of the second support element 41 is larger than the height of the main body element 21.
[0141] In some of these embodiments, the second support element 41 is made of metal.
[0142] In some of these embodiments, the second support element 41 is a support rod.
[0143] The cross-section of the hook element 42 is circular.
[0144] The dimensions of the hook element 42 are matched with the dimensions of the second support element 41. Generally, the radial dimension of the hook element 42 is smaller than the radial dimension of the second support element 41.
[0145] In some embodiments, there are several hook elements 42, which are arranged at equal intervals along the circumference of the second support element 41.
[0146] In some embodiments, the hook element 42 is fixedly connected to the second support element 41, including but not limited to welding.
[0147] In some of these embodiments, the hook element 42 is made of metal.
[0148] In some of these embodiments, hook element 42 is a hook.
[0149] Furthermore, the hook unit 40 also includes a third connecting element 43. The third connecting element 43 is disposed at the bottom end of the second support element 41 and is detachably connected to the adjustment unit 50.
[0150] The dimensions of the third connecting element 43 are matched with the dimensions of the second supporting element 41. Generally, the axial dimension of the third connecting element 43 is smaller than the axial dimension of the second supporting element 41.
[0151] In some of these embodiments, the third connecting element 43 is a threaded tooth.
[0152] like Figure 8a , Figure 8b As shown, the adjustment unit 50 includes a second sliding element 51, a second rotating element 52, and a control element 53. The second sliding element 51 is slidably disposed at the top of the main body unit 20, and a hook unit 40 is provided at the top of the second sliding element 51 for reciprocating movement along the length of the main body unit 20. The second rotating element 52 is rotatably connected to both the second sliding element 51 and the main body unit 20, and is used to drive the second sliding element 51 to reciprocate along the length of the main body unit 20. The control element 53 is disposed at the end of the second rotating element 52 and connected to the second rotating element 52, and is used to drive the second rotating element 52 to rotate circumferentially.
[0153] Specifically, the second sliding element 51 is slidably disposed on the first sliding element 24, and the top end of the second sliding element 51 is provided with a second support element 41; the second rotating element 52 is rotatably connected to the first rotating element 25 and is located inside the first sliding element 24.
[0154] More specifically, the second sliding element 51 is slidably disposed in the first sliding groove and the second sliding groove; the second rotating element 52 is located inside the second sliding groove.
[0155] The cross-section of the second sliding element 51 is convex. Specifically, the second sliding element 51 includes a first sliding block and a second sliding block. The top end of the first sliding block is provided with a second support element 41 and is slidably connected to the first sliding groove; the second sliding block is disposed at the bottom end of the first sliding block and is rotatably connected to the second rotating element 52 and slidably connected to the second sliding groove.
[0156] The dimensions of the first sliding block are matched with the dimensions of the first sliding element 24. Generally, the length of the first sliding block is less than the length of the first sliding groove, the width of the first sliding block is equal to the width of the first sliding groove, and the height of the first sliding block is equal to the height of the first sliding groove.
[0157] The dimensions of the first sliding block are matched with the dimensions of the second support element 41. Generally, the length and width of the first sliding block are greater than the radial dimension of the second support element 41.
[0158] The dimensions of the second sliding block match the dimensions of the first sliding element 24. Generally, the length of the second sliding block is less than the length of the second sliding groove, the width of the second sliding block is equal to the width of the second sliding groove, and the height of the second sliding block is equal to the height of the second sliding groove.
[0159] The dimensions of the second slider are matched with those of the first slider. Generally, the length of the second slider is equal to the length of the first slider, the width of the second slider is greater than the width of the first slider, and the height of the second slider is greater than the height of the first slider.
[0160] In some of these embodiments, the second sliding element 51 is made of metal.
[0161] The cross-section of the second rotating element 52 is circular.
[0162] The dimensions of the second rotating element 52 are matched with the dimensions of the first rotating element 25. Generally, the radial dimension of the second rotating element 52 is equal to the radial dimension of the first rotating element 25, and the axial dimension of the second rotating element 52 is greater than the axial dimension of the first rotating element 25.
[0163] The dimensions of the second rotating element 52 are matched with the dimensions of the second sliding element 51. Generally, the radial dimension of the second rotating element 52 is smaller than the width and height of the second sliding block, and the axial dimension of the second rotating element 52 is larger than the length of the second sliding block.
[0164] The dimensions of the second rotating element 52 are matched with the dimensions of the first sliding element 24. Generally, the axial dimension of the second rotating element 52 is greater than the length of the second sliding groove.
[0165] The axial dimension of the second rotating element 52 is greater than the sum of the length of the second sliding groove and the axial dimension of the first rotating element 25.
[0166] In some embodiments, the second rotating element 52 and the first rotating element 25 are rotatably connected without separation. For example, the second rotating element 52 and the first rotating element 25 are connected via a bearing housing.
[0167] In some of these embodiments, the second rotating element 52 is made of metal.
[0168] In some of these embodiments, the second rotating element 52 is a lead screw.
[0169] In some embodiments, the control element 53 includes a connecting plate and a control handle. A first end of the connecting plate is connected to an end of the second rotating element 52; the control handle is located at a second end of the connecting plate and is used to drive the second rotating element 52 to rotate circumferentially along the first rotating element 25 via the connecting plate.
[0170] The dimensions of the connecting plate are matched with the dimensions of the second rotating element 52. Generally, the radial dimension of the connecting plate is larger than the radial dimension of the second rotating element 52, and the axial dimension of the connecting plate is smaller than the axial dimension of the second rotating element 52.
[0171] The dimensions of the control handle are matched with the dimensions of the connecting plate. Generally, the radial dimension of the control handle is smaller than the radial dimension of the connecting plate, and the axial dimension of the control handle is larger than the axial dimension of the connecting plate.
[0172] In some embodiments, the control element 53 is fixedly connected to the second rotating element 52, including but not limited to bolted connections.
[0173] In some of these embodiments, the control element 53 is made of metal.
[0174] Furthermore, the adjustment unit 50 also includes a fourth connecting element 54 and a fifth connecting element 55. The fourth connecting element 54 passes through the second sliding element 51 and is rotatably connected to the second rotating element 52; the fifth connecting element 55 is disposed at the top end of the second sliding element 51 and is detachably connected to the hook unit 40.
[0175] Specifically, the fourth connecting element 54 passes through the second sliding block and is threadedly connected to the second rotating element 52; the fifth connecting element 55 is located at the top of the first sliding block and is threadedly connected to the third connecting element 43.
[0176] The cross-section of the fourth connecting element 54 is circular.
[0177] The dimensions of the fourth connecting element 54 are matched with the dimensions of the second sliding element 51. Generally, the radial dimension of the fourth connecting element 54 is smaller than the width and height of the second sliding block, and the axial dimension of the fourth connecting element 54 is equal to the length of the second sliding block.
[0178] The dimensions of the fourth connecting element 54 are matched with the dimensions of the second rotating element 52. Generally, the radial dimension of the fourth connecting element 54 is equal to the radial dimension of the second rotating element 52.
[0179] In some of these embodiments, the fourth connecting element 54 is a second threaded hole.
[0180] The fifth connecting element 55 has a circular cross-section.
[0181] The dimensions of the fifth connecting element 55 are matched with the dimensions of the second sliding element 51. Generally, the radial dimension of the fifth connecting element 55 is smaller than the length and width of the first sliding block, and the axial dimension of the fifth connecting element 55 is equal to the height of the first sliding block.
[0182] The dimensions of the fifth connecting element 55 match those of the third connecting element 43. Generally, the axial dimension of the fifth connecting element 55 is not less than the axial dimension of the third connecting element 43.
[0183] In some of these embodiments, the fifth connecting element 55 is a third threaded hole.
[0184] The method of using this utility model is as follows:
[0185] (I) Installation Operation
[0186] Place the main component 21 at the front end of the mounting component 11;
[0187] During the process, the second docking element 22 is engaged with the first docking element 12, and the bottom end of the main body element 21 abuts against the top end of the first support element 13.
[0188] The first locking element 31 is placed in the second docking element 22 through the through slot element 23;
[0189] During the process, the top end of the first locking element 31 abuts against the bottom end of the first docking element 12, and the second locking element 32 is placed in the through groove element 23;
[0190] The bolt is threaded through the second connecting element 33 and connected to the first connecting element 26 until it is tightened.
[0191] (II) Adjustment Operation
[0192] By twisting the second rotating element 52 with the control element 53, the second rotating element 52 is rotated around the circumference of the first rotating element 25. The second rotating element 52 drives the second sliding element 51 to move along the length of the first sliding element 24. The second sliding element 51 drives the second support element 41 to move accordingly, thereby adjusting the position of the hook element 42.
[0193] The advantages of this invention are as follows: After the installation unit is connected to the wall, it is linked to the main unit via a snap-fit method, replacing traditional drilling and bolt fixing. This avoids damage to the prefabricated wall structure, preserves the integrity of the wall, and leverages the advantages of prefabricated buildings. It also simplifies the installation process and improves construction efficiency. The locking unit restricts the movement of the main unit, preventing equipment loosening and displacement due to external impacts, ensuring safety. The hook unit, in conjunction with the adjustment unit, overcomes the limitation of fixed intravenous drip suspension positions. The adjustment unit allows for flexible adjustment of the hook unit's lateral position according to the patient's actual needs and changes in bed position, meeting the infusion needs of different patients and facilitating operation by medical staff.
[0194] The above description is only a preferred embodiment of the present utility model and does not limit the implementation method and protection scope of the present utility model. Those skilled in the art should realize that all solutions obtained by equivalent substitutions and obvious changes made based on the description and illustrations of the present utility model should be included within the protection scope of the present utility model.
Claims
1. An equipment belt structure for a prefabricated hospital room, characterized by include: The mounting unit is disposed on the wall and connected to the wall; A main body unit, which is detachably disposed at the end of the mounting unit; A locking unit is detachably disposed inside the main body unit and abuts against the mounting unit to restrict the movement of the main body unit; A hook unit is disposed at the top of the main body unit and is used to reciprocate along the length of the main body unit and to hang the hanging bottle; An adjustment unit is provided at the top of the main body unit and is detachably connected to the hook unit, for driving the hook unit to reciprocate along the length of the main body unit.
2. The device tape structure of claim 1, wherein, The installation unit includes: The mounting element is disposed on the wall surface, and the main body unit is provided at the end of the mounting element and connected to the wall surface; The first docking element is disposed at the end of the mounting element and engages with the main body unit and abuts against the locking unit; A first support element is disposed at the bottom end of the mounting element and abuts against the main body unit.
3. The equipment belt structure according to claim 1, characterized in that, The main body unit includes: The main body component is detachably disposed at the end of the mounting unit, and the hook unit is disposed at the top end of the main body component; The second docking element is disposed at the end of the main body element, and the locking unit is disposed on the inner side of the second docking element and engages with the mounting unit. A through-slot element is disposed on the side of the main body element and communicates with the second docking element, for the locking unit to pass through; A first sliding element is disposed at the top of the main body element and is slidably connected to the adjustment unit.
4. The equipment belt structure according to claim 3, characterized in that, The main body unit also includes: A first rotating element is disposed inside the first sliding element and is rotatably connected to the adjusting unit; At least one first connecting element is disposed inside the through slot element and is connected to a bolt.
5. The equipment belt structure according to claim 1, characterized in that, The locking unit includes: A first locking element is detachably disposed on the inner side of the main body unit and abuts against the mounting unit to restrict the movement of the main body unit; A second locking element is disposed on the side of the first locking element and connected to the first locking element.
6. The equipment belt structure according to claim 5, characterized in that, The locking unit further includes: At least one second connecting element is provided through the second locking element for a bolt to pass through.
7. The equipment belt structure according to claim 1, characterized in that, The hook unit includes: The second support element is disposed at the top of the main body unit and is detachably connected to the adjustment unit, and is used to reciprocate along the length direction of the main body unit under the action of the adjustment unit. At least one hook element is provided at the top of the second support element and connected to the second support element, for hanging the bottle and reciprocating along the length direction of the main body unit under the action of the second support element.
8. The equipment belt structure according to claim 7, characterized in that, The hook unit also includes: The third connecting element is disposed at the bottom end of the second supporting element and is detachably connected to the adjusting unit.
9. The equipment belt structure according to claim 1, characterized in that, The adjustment unit includes: The second sliding element is slidably disposed at the top end of the main body unit, and the top end of the second sliding element is provided with the hook unit for reciprocating along the length direction of the main body unit; The second rotating element is rotatably connected to the second sliding element and the main body unit, and is used to drive the second sliding element to reciprocate along the length direction of the main body unit. A control element is disposed at the end of the second rotating element and connected to the second rotating element, for driving the second rotating element to rotate circumferentially along the second rotating element.
10. The equipment belt structure according to claim 9, characterized in that, The adjustment unit further includes: A fourth connecting element is disposed through the second sliding element and is rotatably connected to the second rotating element; A fifth connecting element is disposed at the top of the second sliding element and is detachably connected to the hook unit.