Remotely adjustable drainage tube fixing sleeve clamp
The double-layer cylindrical sleeve and the airbag fixation device controlled by a remote control solve the problems of unstable fixation of the drainage tube and rigid fixation restricting patient activities, and realize the tightness adjustment and convenient operation of the drainage tube.
Patent Information
- Application Number
- CN202111026475.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-09-02
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2041-09-02
AI Technical Summary
Existing drainage tube fixing devices are unstable and prone to slipping, and the rigid fixation restricts patient movement, causing inconvenience.
It adopts the form of a double-layer cylindrical sleeve, and the inflation and deflation of the first and second air bags are controlled by a remote control to fix the bed sheet and drainage tube respectively to achieve tightness adjustment.
The drainage tube can slide freely in the fixing device, which is convenient for the patient to move, reduces the inconvenience caused by rigid fixation, and improves the convenience of operation.
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Figure CN113648512B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of medical nursing equipment, and in particular relates to a drainage tube fixing sleeve clamp that can be adjusted remotely. Background Art
[0002] A drainage tube is a medical device used in clinical surgery to remove pus, blood, and fluids that accumulate between tissues or within body cavities, thereby preventing postoperative infection and promoting wound healing. Numerous types of surgical drainage tubes are used clinically, including those for urinary catheterization and wound treatment. They are also used in the chest, brain, gastrointestinal, and biliary tracts. Surgical drainage aims to remove pus, blood, and fluids that accumulate between tissues or within body cavities, thereby preventing postoperative infection and impairing wound healing.
[0003] In daily nursing, drainage tubes are mostly scattered among patients, beds, and instruments, which causes great inconvenience to nursing work. At the same time, the scattered arrangement makes it easy to pull and drag the drainage tubes during daily activities, causing the drainage tubes to deviate from their original working state, causing unnecessary trouble, and in severe cases, may even cause secondary injuries to the patients. At present, in order to arrange and fix the drainage tubes, medical staff generally use things like clips to fix the drainage tubes on the sheets of the beds. However, such clips are not specially used for clamping and fixing drainage tubes. On the one hand, there is a problem of unstable clamping and easy slipping. On the other hand, such clips are rigidly fixed and have no room for movement. When the patient needs to turn over or perform minor activities, the range of movement of the drainage tube will be limited, thereby limiting the patient's activities and causing inconvenience. Summary of the Invention
[0004] In order to achieve the above technical effects, the present invention has designed a remotely adjustable drainage tube fixing sleeve clamp, which adopts the form of a double-layer cylindrical sleeve to relatively fix the drainage tube and the bed sheet. The two layers of cylindrical sleeves clamp the bed sheet and the drainage tube respectively to achieve their separate fixation. Compared with the traditional clamping form, the drainage tube can be adjusted in tightness while the entire device is fixed to the bed sheet, so that it can slide freely in the fixing device, which is convenient for the patient to turn over or perform other physical activities without being restricted by the rigid fixation of the drainage tube. The daily life of the patient with the drainage tube is convenient; at the same time, the tightness of the double-layer cylindrical sleeve of the device can be automatically adjusted and can be remotely operated by a remote control. When the patient controls the clamping part of the drainage tube to loosen it by the remote control, the drainage tube can be easily pulled out during physical activities without having to operate it with bare hands, making the clamping and loosening process of the entire drainage tube more convenient and faster, which helps the patient to operate the drainage tube when alone.
[0005] In order to achieve the above technical effects, the present invention is implemented through the following technical solutions: a remotely adjustable drainage tube fixing sleeve clamp, characterized in that it includes: a first shell, a first airbag, a first arc clamp, a second arc clamp, a second shell, a second airbag, and a remote control;
[0006] The second shell is detachably engaged with the inner cavity of the first shell, the first airbag and the first arc clamping plate and the second arc clamping plate are fixedly placed in the inner cavity of the first shell from bottom to top, the second airbag is fixedly placed in the inner cavity of the second shell, and the drainage tube is flexibly pressed and fixed. A sheet is pressed and fixed between the outer wall of the first shell and the inner cavity of the second shell. The first shell is equipped with a first micro air pump, a second micro air pump and a control module. The first micro air pump and the second micro air pump are respectively connected to the first airbag and the second airbag through the first air duct and the second air duct. The remote control is wirelessly connected to the control module to transmit information to control the first micro air pump and the second micro air pump to inflate and deflate the first airbag and the second airbag;
[0007] Furthermore, the first shell and the second shell are both in the shape of an incompletely enclosed cylinder, the upper edges of both sides of the first shell are in an "S" shape and are fixedly provided with a first magnet layer, the upper portion of the second shell is in an outwardly flipped form, its edge is in an "S" shape and is fixedly provided with a second magnet layer, the first magnet layer and the second magnet layer are mutually adsorbed and detachably connected to the edge positions of the first shell and the second shell, and the main body of the first shell is detachably sleeved in the inner cavity of the second shell;
[0008] Furthermore, the first airbag is fixedly connected to the inner cavity of the first shell, and the first arc clamping plate and the second arc clamping plate are fixedly connected to the two sides of the inner side of the first airbag respectively. The first airbag supports the first arc clamping plate and the second arc clamping plate, and presses the quilt against the outer wall of the second shell after being inflated.
[0009] Furthermore, the first micro air pump, the second micro air pump and the control module are all fixedly connected to the outside of the first housing;
[0010] Furthermore, the second micro air pump is fixedly provided with a threaded connection port;
[0011] Furthermore, one end of the first air guide tube is fixedly connected to the first micro air pump, and the other end is fixed to the first air bag; one end of the second air guide tube is fixedly connected to the second air bag, and the other end is fixedly provided with a threaded connection cap, which is detachably connected to the connection port of the second micro air pump;
[0012] Furthermore, a throttle valve is fixedly provided in each of the first air duct and the second air duct;
[0013] Furthermore, the remote control is fixedly provided with a control button on the outside, and a first micro-processing module, a first battery module, and an infrared transmitting module on the inside. A second micro-processing module, a second battery module, and an infrared receiving module are fixedly provided inside the control module. The infrared transmitting module transmits a signal, which is received by the infrared receiving module, thereby wirelessly connecting the remote control and the control module.
[0014] Another object of the present invention is to provide a method for using a remotely adjustable drainage tube fixing sleeve clamp:
[0015] First, place the first shell at the bottom of the side edge of the quilt.
[0016] The sheet is attached to the inner wall of the first shell.
[0017] Place the second shell on the bed sheet, and insert one end of the first shell into the inner cavity of the first shell to a suitable position.
[0018] The edges of the first shell and the second shell are attached and locked to each other.
[0019] The drainage tube is placed in the inner cavity of the second shell.
[0020] First, the throttle valve is controlled to open by pressing a control button of the remote controller, and the first micro air pump is controlled to work to inflate the first airbag, and then the throttle valve is closed to clamp the bed sheet.
[0021] Then, the throttle valve is controlled to open through the control button of the remote controller, and the second micro air pump is controlled to work to inflate the second airbag, and then the throttle valve is closed and the drainage tube is clamped.
[0022] If the drainage tube needs to be pulled, the throttle valve is opened by pressing the control button of the remote controller, and the first micro air pump is controlled to stop working, so that the second air bag is deflated.
[0023] After use, the throttle valve is controlled to open by the control button of the remote controller, and the first micro air pump and the second micro air pump are controlled to stop working, so that the first air bag and the second air bag are deflated.
[0024] Remove the drainage tube, disassemble the second shell, and take out the first shell.
[0025] The beneficial effects of the present invention are:
[0026] The device uses a double-layer cylindrical sleeve to relatively fix the drainage tube and the bed sheet. The two layers of cylindrical sleeves clamp the bed sheet and the drainage tube respectively, realizing their separate fixation. Compared with the traditional clamping method, the tightness of the drainage tube can be adjusted while the entire device is fixed to the bed sheet, so that it can slide freely within the fixing device. This is convenient for patients to turn over or perform other physical activities without being restricted by the rigid fixation of the drainage tube. It provides convenience for the daily life of patients with indwelling drainage tubes.
[0027] The tightness of the double-layer cylindrical sleeve of the device can be automatically adjusted and can be remotely operated by a remote control. When the patient controls the relaxation of the clamping part of the drainage tube by the remote control, the drainage tube can be easily pulled out during physical activities without manual operation, making the entire clamping and loosening process of the drainage tube more convenient and faster, which helps the patient to operate the drainage tube when alone. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0029] Figure 1 It is a schematic diagram of the overall structure of a drainage tube fixing sleeve clamp that can be adjusted remotely;
[0030] Figure 2 It is a side view of a remotely adjustable drainage tube fixing cannula clamp;
[0031] Figure 3 It is a partial structural diagram of a drainage tube fixing sleeve clamp that can be adjusted remotely;
[0032] Figure 4 It is a partial structural diagram of a drainage tube fixing sleeve clamp that can be adjusted remotely;
[0033] Figure 5 This is a schematic diagram of a control module and accessory structure of a drainage tube fixing sleeve clamp that can be adjusted remotely;
[0034] Figure 6 This is a schematic diagram of the internal structure of a remote control for a drainage tube fixing sleeve clamp that can be adjusted remotely;
[0035] Figure 7 It is attached Figure 2 A partial enlarged schematic diagram of the middle portion 9;
[0036] Figure 8 It is a schematic diagram of the overall structure of a drainage tube fixing sleeve clamp that can be adjusted remotely;
[0037] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0038] First shell, 101-second micro air pump, 102-first micro air pump, 103-control module, 104-connecting port, 105-first air duct, 106-infrared receiving module, 107-second microprocessor, 108-second battery module, 109-first magnet layer, 2-first air bag, 3-first arc splint, 4-second arc splint, 5-second shell, 501-second magnet layer, 6-second air bag, 601-second air duct, 602-threaded connection cap, 7-remote control, 701-control button, 702-first microprocessor module, 703-first battery module, 704-infrared transmitting module, 8-drainage tube, 10-bed sheet. DETAILED DESCRIPTION
[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention. Example 1
[0040] See Figures 1 to 8 As shown, a remotely adjustable drainage tube fixing sleeve clamp is characterized by comprising: a first shell 1, a first airbag 2, a first arc clamp 3, a second arc clamp 4, a second shell 5, a second airbag 6, and a remote control 7;
[0041] The second shell 5 is detachably engaged with the inner cavity of the first shell 1, the first airbag 2 and the first arc splint 3 and the second arc splint 4 are fixed in the inner cavity of the first shell 1 from bottom to top, the second airbag 6 is fixed in the inner cavity of the second shell 5, and the drainage tube is flexibly pressed and fixed. The sheet 10 is pressed and fixed between the outer wall of the first shell 1 and the inner cavity of the second shell 5. The first shell 1 is equipped with a first micro air pump 102, a second micro air pump 101 and a control module 103. The first micro air pump 102 and the second micro air pump 101 are connected to the first airbag 2 and the second airbag 6 respectively through the first air duct 105 and the second air duct 601. The remote control 7 is wirelessly connected to the control module 103 to transmit signals The first micro air pump 102 and the second micro air pump 101 are used to inflate and deflate the first airbag 2 and the second airbag 6. The device adopts a double-layer cylindrical sleeve to relatively fix the drainage tube and the bed sheet, that is, the first shell 1 and the second shell 5 cooperate to clamp the bed sheet 10, and the second shell 5 clamps the drainage tube 8, which can realize the separate fixation of the bed sheet 10 and the drainage tube 8. Compared with the traditional clamping form, the drainage tube 8 can be adjusted in tightness while the entire device is fixed to the bed sheet 10, so that it can slide freely in the fixing device, which is convenient for the patient to turn over or perform other physical activities without being restricted in the range of movement by the rigid fixation of the drainage tube 8, thereby providing convenience for the daily life of patients with the drainage tube 8 indwelling.
[0042] The first shell 1 and the second shell 5 are both in the shape of an incompletely enclosed cylinder. The upper edges of both sides of the first shell 1 are "S"-shaped and fixedly provided with a first magnet layer 109. The upper portion of the second shell 5 is in an outwardly flipped form, and its edges are "S"-shaped and fixedly provided with a second magnet layer 501. The first magnet layer 109 and the second magnet layer 501 are mutually adsorbed and detachably connected to the edge positions of the first shell 1 and the second shell 2. In actual use, the first magnet layer 109 and the second magnet layer 501 are located between them and extend outward. The main body of the first shell 1 is detachably sleeved within the inner cavity of the second shell 2.
[0043] The first airbag 2 is fixedly connected to the inner cavity of the first shell 1, and the first arc splint 3 and the second arc splint 4 are respectively fixedly connected to the two sides of the inner side of the first airbag 2. The first airbag 2 supports the first arc splint 3 and the second arc splint 4. After inflation, the first arc splint 3 and the second arc splint 4 are tightly attached to the outer wall of the second shell 2 under the action of the air pressure elastic force, so as to fix the relative position between the device and the sheet;
[0044] The first micro air pump 102, the second micro air pump 101 and the control module 103 are all fixedly connected to the outside of the first housing 1;
[0045] The second micro air pump 101 is fixedly provided with a threaded connection port 104;
[0046] One end of the first air guide tube 105 is fixedly connected to the first micro air pump 102, and the other end is fixed to the first air bag 2. One end of the second air guide tube 601 is fixedly connected to the second air bag 6, and the other end is fixedly provided with a threaded connection cap 602, which is detachably connected to the connection port 104 of the second micro air pump 101, so as to facilitate the assembly of the first shell 1 and the second shell 5 when the device is assembled and used;
[0047] The first air duct 105 and the second air duct 601 are both fixed with throttle valves to control the opening and closing of the inflation and deflation passages of the first airbag 2 and the second airbag 6;
[0048] The remote control 7 is fixedly provided with a control button 701 on the outside, and a first micro-processing module 702, a first battery module 703, and an infrared transmitting module 704 are fixedly provided on the inside. The control module 103 is fixedly provided with a second micro-processing module 107, a second battery module 108, and an infrared receiving module 106. The infrared transmitting module 704 transmits a signal, which is received by the infrared receiving module 106, wirelessly connecting the remote control 7 and the control module 103. The remote control 7 transmits a signal, the control module receives and analyzes the signal, and ultimately controls the operation of the electrical components of the device. Example 2
[0049] Another embodiment of the present invention is a remotely adjustable drainage tube fixing sleeve clamp. The working principle is as follows:
[0050] First, the first micro air pump 102, the second micro air pump 101, and the throttle valve are all electrically connected to the control module 103 and controlled by the control module 103; in actual use, press the control button 701 to transmit instructions to the remote control 7, the first microprocessor 702 in the remote control 7 receives the signal, parses the signal, and controls the infrared transmitting module 704 to transmit a wireless signal, the wireless signal is received by the infrared receiving module 106 of the control module 103, and the signal is transmitted to the second microprocessing unit 107, the second microprocessing unit 107 parses the signal, and sends an execution instruction to the first micro air pump 102, the second micro air pump 101, and the throttle valve; when it is necessary to tighten the first arc splint 3 and the second arc splint 4 in the inner cavity of the first shell 1, press the control button 701, and the second microprocessing unit 107 controls the first air guide The throttle valve in the tube 105 is opened, controlling the first micro air pump 102 to inflate the first air bag 2, and then closing the throttle valve, tightening the first arc splint 3 and the second arc splint 4 to clamp the sheet; otherwise, the throttle valve in the first air guide tube 105 is opened, controlling the first micro air pump 102 to stop working, deflating the first air bag 2, and releasing the sheet 10 with the first arc splint 3 and the second arc splint 4; when it is necessary to clamp the drainage tube 8, the control button 701 is pressed, and the second microprocessor 107 controls the throttle valve in the second air guide tube 601 to open, controlling the second micro air pump 101 to inflate the second air bag 6, and then closing the throttle valve, and the second air bag 6 flexibly clamps the drainage tube 8; otherwise, the throttle valve in the second air guide tube 601 is opened, controlling the second micro air pump 101 to stop working, deflating the second air bag 6, and releasing the drainage tube 8. Example 3
[0051] Another embodiment of the present invention is a specific method for using a remotely adjustable drainage tube fixing sleeve clamp:
[0052] 1. First, place the first shell 1 at the bottom of the side edge of the bed sheet 10.
[0053] 2. Attach the sheet 10 to the inner wall of the first shell 1 .
[0054] 3. Place the second shell 5 on the top of the bed sheet 10 and insert one end of the first shell 1 into the inner cavity of the first shell 1 to a suitable position.
[0055] 4. Attach and engage the edges of the first shell 1 and the second shell 5 to each other.
[0056] 5. Place the drainage tube 8 in the inner cavity of the second shell 5.
[0057] 6. First, use the control button 701 of the remote controller 7 to control the throttle valve to open, control the first micro air pump 102 to work to inflate the first airbag 2, and then close the throttle valve to clamp the bed sheet 10.
[0058] 7. Then, through the control button 701 of the remote controller 7, the throttle valve is controlled to open, and the second micro air pump 101 is controlled to work to inflate the second airbag 6, and then the throttle valve is closed and the drainage tube 8 is clamped.
[0059] 8. If the drainage tube 8 needs to be pulled, the control button 701 of the remote controller 7 is used to control the throttle valve to open and the first micro air pump 102 to stop working, thereby deflation of the second airbag 6.
[0060] 9. After use, the throttle valve is opened by pressing the control button 701 of the remote controller 7, and the first micro air pump 102 and the second micro air pump 101 are stopped, so that the first air bag 2 and the second air bag 6 are deflated.
[0061] 10. Remove the drainage tube 8, disassemble the second shell 5, and take out the first shell 1.
[0062] In summary, 1. The device uses a double-layer cylindrical sleeve to relatively fix the drainage tube and the bed sheet. The two layers of cylindrical sleeves clamp the bed sheet and the drainage tube respectively to achieve separate fixation. Compared with the traditional clamping form, the drainage tube can be adjusted in tightness while the entire device is fixed to the bed sheet, so that it can slide freely in the fixing device, which is convenient for the patient to turn over or perform other physical activities without being restricted by the rigid fixation of the drainage tube. It provides convenience for the daily life of patients with indwelling drainage tubes.
[0063] 2. The tightness of the double-layer cylindrical sleeve of the device can be automatically adjusted and can be remotely operated by a remote control. When the patient controls the clamping part of the drainage tube to relax through the remote control, the drainage tube can be easily pulled out during physical activities without manual operation, making the clamping and loosening process of the entire drainage tube more convenient and faster, which helps patients operate the drainage tube when they are alone.
[0064] Throughout this specification, references to terms such as "one embodiment," "example," or "specific example" indicate that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0065] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A remotely adjustable drainage tube fixing sleeve clamp, characterized in that: include: A first housing, a first airbag, a first arc splint, a second arc splint, a second housing, a second airbag, and a remote controller; The second shell is detachably engaged with the inner cavity of the first shell, the first airbag and the first arc clamping plate and the second arc clamping plate are fixedly placed in the inner cavity of the first shell from bottom to top, the second airbag is fixedly placed in the inner cavity of the second shell, and the drainage tube is flexibly pressed and fixed. A sheet is pressed and fixed between the outer wall of the first shell and the inner cavity of the second shell. The first shell is equipped with a first micro air pump, a second micro air pump and a control module. The first micro air pump and the second micro air pump are respectively connected to the first airbag and the second airbag through the first air duct and the second air duct. The remote control is wirelessly connected to the control module to transmit information to control the first micro air pump and the second micro air pump to inflate and deflate the first airbag and the second airbag; The first shell and the second shell are both in the shape of an incompletely enclosed cylinder. The upper edges of both sides of the first shell are "S"-shaped and fixed with a first magnet layer. The upper portion of the second shell is in an outwardly flipped form, and its edges are "S"-shaped and fixed with a second magnet layer. The first magnet layer and the second magnet layer are mutually adsorbed and detachably connected at the edges of the first shell and the second shell. The main body of the first shell is detachably sleeved on the inner cavity of the second shell. The first airbag is fixedly connected to the inner cavity of the first shell, and the first arc clamping plate and the second arc clamping plate are respectively fixedly connected to the two sides of the inner side of the first airbag. The first airbag supports the first arc clamping plate and the second arc clamping plate, and presses the quilt against the outer wall of the second shell after being inflated. The first micro air pump, the second micro air pump and the control module are all fixedly connected to the outside of the first housing; The second micro air pump is fixedly provided with a threaded connection port; One end of the first air guide tube is fixedly connected to the first micro air pump, and the other end is fixed to the first air bag. One end of the second air guide tube is fixedly connected to the second air bag, and the other end is fixedly provided with a threaded connection cap, which is detachably connected to the connection port of the second micro air pump. A throttle valve is fixedly provided in each of the first air guide pipe and the second air guide pipe; The remote control is fixedly provided with a control button on the outside, and a first microprocessor module, a first battery module, and an infrared transmitting module on the inside. The control module is fixedly provided with a second microprocessor module, a second battery module, and an infrared receiving module. The infrared transmitting module transmits a signal, which is received by the infrared receiving module, thereby wirelessly connecting the remote control and the control module.
2. The method for using the remotely adjustable drainage tube fixing sleeve clamp according to claim 1, characterized in that ; (1) Place the first shell at the bottom of the quilt edge; (2) attaching the sheet to the inner wall of the first shell; (3) Place the second shell on the top of the bed sheet and insert one end of the first shell into the inner cavity of the first shell to a suitable position; (4) Attaching and engaging the edges of the first shell and the second shell; (5) placing the drainage tube in the inner cavity of the second shell; (6) First, the throttle valve is opened by pressing the control button of the remote control, and the first micro air pump is controlled to work to inflate the first airbag, and then the throttle valve is closed to clamp the bed sheet; (7) Then, by pressing the control button of the remote control, the throttle valve is controlled to open, the second micro air pump is controlled to work to inflate the second airbag, and then the throttle valve is closed and the drainage tube is clamped; (8) If the drainage tube needs to be pulled, the throttle valve is opened by pressing the control button of the remote controller, and the first micro air pump is stopped, causing the second airbag to deflate; (9) After use, the throttle valve is opened by pressing the control button on the remote control, and the first micro air pump and the second micro air pump are stopped, so that the first air bag and the second air bag are deflated; (10) Remove the drainage tube, disassemble the second shell, and take out the first shell.
Citation Information
Patent Citations
Mattress and bed sheet combined structure
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