Needleless sampling type urinary catheterization device
By setting movable parts and flexible sheets in the self-controlled drainage pipeline of the catheter, the problem of urine entering the metering box during the siphon structure drainage process is solved, and higher metering accuracy and reliability are achieved.
Patent Information
- Application Number
- CN202510255009.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2045-03-05
AI Technical Summary
During the siphon structure discharge process, the urine in the patient's body will also be discharged through the siphon structure after entering the metering box, resulting in a gap between the liquid discharged multiple times, affecting the accuracy of the metering.
A needle-free sampling catheter is designed. By setting movable parts in the self-controlled drainage pipeline, the movable parts are driven to seal the catheter by using the force generated by the flow of liquid, reducing the amount of urine entering the metering box, and using the flexible sheet to seal the inner tube with the gravity of urine, improving the liquid level and metering accuracy.
It effectively reduces the amount of urine entering the metering box under siphon state, reduces the gap between the discharged liquids multiple times, and improves the accuracy and reliability of the metering.
Smart Images

Figure CN120094002A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of medical devices, in particular to a needle-free sampling type urinary catheterization device. Background Art
[0002] A drainage bag generally refers to a transparent plastic bag at the end of the drainage tube that is used to hold the drained fluid after surgery, during which bleeding, fluid accumulation, etc. deep inside the body or in a local area need to be drained out using a tube.
[0003] In order to achieve the metering function, current urinary catheterization drainage belts will have a metering box between the catheter and the liquid storage bag (because the liquid storage bag is usually a soft bag, inaccurate metering may occur). The metering box is made of a hard transparent material, and there are scale lines on the surface of the metering box, and the amount of liquid can be known through the scale lines. However, the capacity of the metering box is usually 500ML. When the liquid in the metering box exceeds 500ML, the excess liquid will automatically flow into the liquid storage bag through the pipeline. Therefore, when it is necessary to observe the liquid volume for a long time, it is necessary to record the liquid volume in the metering box before the liquid reaches the rated capacity, and then pour the liquid in the metering box into the liquid storage bag, thereby entering the metering stage again.
[0004] To prevent excess liquid from automatically flowing into the liquid storage bag. In the related art, a siphon structure is set in the metering box, and the siphon structure is used to automatically and quantitatively discharge the liquid in the metering box. In this way, the nursing staff only needs to know the number of automatic quantitative discharges to calculate the amount of liquid. However, the amount of urine produced is determined by the patient's drinking situation at the time, that is, the amount of urine produced is irregular. When the liquid in the metering box is discharged through the siphon structure, if the urine in the patient's body enters the metering box at this time, this part of the urine will also be directly discharged through the siphon structure, which can easily lead to differences in the amount of liquid discharged by multiple siphons. Summary of the invention
[0005] The object of the present invention is to provide a needle-free sampling urinary catheterization device to solve the problems raised in the above-mentioned background technology.
[0006] To achieve the above-mentioned purpose, a needle-free sampling catheterization device is provided, comprising a catheter, a metering box and a liquid storage bag; one end of the catheter is connected to the metering box, the metering box is connected to the liquid storage bag through a through pipe arranged at the bottom, and a first vent hole is arranged on the side wall of the metering box; an automatic drainage pipeline connected to the through pipe is arranged in the metering box, and the automatic drainage pipeline uses the siphon principle to discharge the liquid in the metering box through the through pipe into the liquid storage bag; and the automatic drainage pipeline is located below the catheter, and a movable part is arranged at the top of the automatic drainage pipeline corresponding to the catheter; in the siphon state, the movable part uses the force of the liquid in the siphon process to block the catheter; The automatic liquid discharge pipeline comprises an outer tube and an inner tube, the upper and lower ends of the outer tube and the inner tube are both in a through-state, and the movable part is fixedly arranged on the top of the outer tube to seal the top of the outer tube; The outer tube, the inner tube and the movable part together form a self-controlled liquid discharge pipeline, so as to discharge the liquid in the metering box into the liquid storage bag through the through pipe by utilizing the siphon principle.
[0007] As a further improvement of the technical solution, the height of the outer tube is higher than the height of the inner tube, and the diameter of the inner tube is smaller than the diameter of the outer tube, so that a flow cavity is formed between the outer ring of the inner tube and the inner ring of the outer tube; The inner tube is communicated with the through tube, and a through opening is arranged between the bottom end of the outer tube and the inner wall of the bottom of the conduit.
[0008] As a further improvement of the technical solution, the movable member is a flexible sheet fixedly arranged on the top of the outer tube and sealing the top of the outer tube; in a normal state, the middle part of the flexible sheet is concave downward, thereby invading the flow cavity; The concave part of the flexible sheet is located directly below the catheter. When the liquid in the flow cavity flows, the force generated by the liquid flow pushes the concave part of the flexible sheet upward, so that the pushed part of the flexible sheet blocks the bottom end of the catheter.
[0009] As a further improvement of the technical solution, the distance between the bottom end of the conduit and the depression of the flexible sheet is smaller than the distance that the flexible sheet is pushed upward by the liquid.
[0010] As a further improvement of the technical solution, the thickness of the flexible sheet is between 0.02 mm and 0.1 mm.
[0011] As a further improvement of the present technical solution, an upper stopper is fixedly provided at the top of the recessed part of the flexible sheet, and the outer diameter of the top of the upper stopper is consistent with the inner diameter of the catheter; when the flexible sheet is pushed upward, the flexible sheet drives the upper stopper to move upward and insert into the bottom end of the catheter to seal the bottom end of the catheter.
[0012] As a further improvement of the present technical solution, the recessed portion of the flexible sheet is used to collect the liquid discharged from the catheter, and when the flexible sheet is in a recessed state, the recessed portion of the flexible sheet fits against the top of the inner tube, so as to utilize the gravity of the liquid on the top of the flexible sheet to seal the top of the inner tube, and when the liquid level in the metering box reaches a corresponding height, the flexible sheet utilizes the buoyancy of the liquid to separate from the inner tube.
[0013] As a further improvement of the present technical solution, a lower stopper is fixedly provided at the bottom of the flexible sheet, the outer diameter of the bottom end of the lower stopper is consistent with the inner diameter of the inner tube, and the bottom end of the lower stopper is in a conical state. When the flexible sheet is in a recessed state, the lower stopper is in the inner tube; a support ring is provided in the middle of the outer ring of the flexible sheet, and the support ring is a hollow structure.
[0014] As a further improvement of the technical solution, a booster rod is fixedly provided on the outer ring of the flexible sheet, and the bottom end of the booster rod extends into the flow cavity, and the liquid flowing in the flow cavity provides power for the upward deformation of the flexible sheet.
[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. In the needle-free sampling catheterization device, a movable part is arranged in the automatic drainage pipeline, and the force generated by the flow of liquid in the automatic drainage pipeline is used to drive the movable part, forcing the movable part to temporarily block the catheter, thereby reducing the liquid discharged from the patient's body into the metering box during the siphon state, and reducing the difference between the liquid amounts discharged multiple times.
[0016] 2. In the needle-free sampling catheterization device, the flexible sheet in the concave state can use the gravity of urine to block the inner tube, thereby increasing the amount of liquid before the siphon effect occurs, avoiding partial urine discharge through the inner tube when the urine flow in the catheter is small, and reducing the error of multiple discharges. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 The structure of the automatic liquid discharge pipeline of the present invention is shown in FIG. Figure 1 ; Figure 3 The structure of the automatic liquid discharge pipeline of the present invention is shown in FIG. Figure 2 ; Figure 4 It is a schematic diagram of the state of the flexible sheet of the present invention; Figure 5 It is a structural schematic diagram of the upper stopper of the present invention; Figure 6 It is a state schematic diagram of the upper stopper of the present invention; Figure 7 It is a structural schematic diagram of the lower stopper of the present invention; Figure 8 The state diagram of the lower stopper of the present invention is shown in FIG. Figure 1 ; Fig. 9 The state diagram of the lower stopper of the present invention is shown in FIG. Figure 2 ; Fig.10 It is a structural schematic diagram of the power assist rod of the present invention.
[0018] The meaning of each number in the figure is: 100, catheter; 101, connector; 102, sampling port; 103, pipe cap; 104, pipe clamp; 110, metering box; 111, first vent hole; 112, through pipe; 113, connecting plate; 120, automatic drainage pipeline; 121, outer tube; 122, inner tube; 123, flow cavity; 124, through port; 130, flexible sheet; 131, upper block; 132, lower block; 133, support ring; 134, booster rod; 200, liquid storage bag; 201, cross valve; 202, second vent hole; 203, check valve. DETAILED DESCRIPTION
[0019] The following will be combined with the accompanying drawings in the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.
[0020] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the referred device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present invention.
[0021] In addition, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more of the features. In the description of the present invention, the meaning of "plurality" is two or more, unless otherwise clearly and specifically defined.
[0022] In the related art, a Chinese patent with a publication number of CN104771794B discloses a disposable automatic precision metering drainage bag. This patent uses a siphon structure to achieve automatic quantitative discharge of the liquid in the metering box 110. Then the number of times the liquid is automatically discharged is calculated by the amount of liquid in the liquid storage bag 200, and the final urine volume is obtained by calculating the number of times and the amount of discharge each time. However, this patent also has the above-mentioned problem, that is, during the automatic quantitative discharge process, the catheter 100 is not blocked, which easily causes the urine just discharged from the patient's body to mix with the liquid in the siphoning work, so that the urine just discharged is discharged under the siphoning action, resulting in the amount of liquid discharged this time being higher than the amount of liquid discharged at other times.
[0023] To this end, the present invention provides a needle-free sampling catheterization device, see Figure 1 As shown, it includes three parts: a catheter 100, a metering box 110 (made of a hard transparent material) and a liquid storage bag 200. Figure 1 The direction shown in FIG. 1 is taken as the standard, one end of the conduit 100 is connected to the top of the metering box 110, and the metering box 110 is connected to the liquid storage bag 200 through the through pipe 112 at the bottom. At the same time, the side walls of the liquid storage bag 200 and the side walls of the metering box 110 are both provided with filters for balancing the air pressure between the inside and outside of the liquid storage bag 200 and the metering box 110. The position of the filter is shown in FIG. Figure 1 As shown, the filter located on the side wall of the metering box 110 is the first vent 111, and the filter located on the side wall of the liquid storage bag 200 is the second vent 202. In addition, a cross valve 201 for discharging the liquid in the liquid storage bag 200 is provided at the bottom of the liquid storage bag 200, and a check valve 203 for preventing the liquid from entering the through pipe 112 is provided inside.
[0024] It should be understood that the structures of the cross valve 201 and the check valve 203 belong to the prior art, and the same or similar structures are generally provided in current flow diverters, so they will not be described in detail here.
[0025] In addition, the metering box 110 and the liquid storage bag 200 are fixedly connected via a connecting plate 113, which can withstand the pulling force applied by the liquid storage bag 200 to the metering box 110, thereby preventing the through tube 112 from detaching from the liquid storage bag 200 when the amount of liquid in the liquid storage bag 200 is large.
[0026] During urinary catheterization, the catheter 100 is first connected to the urinary catheter on the patient's body, and the urine in the patient's body flows into the metering box 110 through the urinary catheter and the catheter 100, and then is quantitatively discharged into the through pipe 112 through the automatic drainage pipeline 120 (described in detail below) in the catheter 100, so that the urine enters the liquid storage bag 200 through the through pipe 112. When the urine in the liquid storage bag 200 needs to be discharged, the cross valve 201 only needs to be opened.
[0027] At the same time, the side wall of the metering box 110 is provided with scale lines, and the capacity displayed by the scale lines corresponds to the capacity quantitatively discharged by the automatic liquid discharge pipeline 120. That is, the maximum capacity that can be accommodated before the siphon effect is formed is the capacity displayed by the scale lines, or the rated capacity of the metering box 110.
[0028] In addition, the side wall of the liquid storage bag 200 is also provided with scale lines. The capacity displayed by the scale lines of the liquid storage bag 200 is a multiple of the automatic discharge capacity of the metering box 110. Because it is a quantitative automatic discharge, under normal circumstances, the amount of liquid in the liquid storage bag 200 is a multiple of the quantitative automatic discharge amount of the metering box 110. The scale value of the liquid storage bag 200 corresponds to the liquid automatically and quantitatively discharged each time, which is convenient for observing and recording the number of automatic discharges and the total amount of liquid.
[0029] The urinary catheter device of the present invention is also equipped with a needle-free sampling connector to achieve urine sampling in a needle-free environment. Figure 1 As shown, the needleless sampling connector includes a connector 101 connected to one end of a catheter 100, a sampling port 102 is provided on the outer ring of the connector 101, and a plug for controlling the opening and closing of the sampling port 102 is provided at the sampling port 102. In addition, in order to prevent the flow of urine, a tube clamp 104 is provided on the outside of the catheter 100. Before sampling, the connector 101 is connected to the urinary catheter on the patient's body, and the catheter 100 is clamped by the tube clamp 104 for 10 to 15 minutes or until a sufficient amount of sampled urine is visible in the sampling window. Then open the sampling port 102, sterilize the sampling port 102, and then insert the syringe into the sampling port 102 to slowly extract the urine sample. After the sampling is completed, remove the syringe from the sampling port 102 and reopen the tube clamp 104.
[0030] It should be understood that a tube cap 103 may also be provided at the end of the connector 101. The tube cap 103 is sleeved on the outside of the connector 101 to seal the connector 101, thereby preventing the urinary catheterization device of the present invention from being contaminated before use.
[0031] It should be noted that the present invention does not improve the structure of the needleless sampling connector, which has been in the public domain and is already in practical use, so it will not be described in detail here. The specific structure can be referred to, for example, the Chinese patent with announcement number CN202342258U.
[0032] like Figure 2As shown, the metering box 110 is provided with an automatic drainage pipeline 120 connected with the through pipe 112. The automatic drainage pipeline 120 uses the siphon principle to discharge the liquid in the metering box 110 into the liquid storage bag 200 through the through pipe 112; and the automatic drainage pipeline 120 is located below the catheter 100, and a movable part is provided at the top of the automatic drainage pipeline 120 corresponding to the position of the catheter 100; in the siphon state, the movable part uses the force of the liquid in the siphon process to block the catheter 100.
[0033] That is to say, by setting a movable part in the automatic drainage pipeline 120, the force generated by the flow of liquid in the automatic drainage pipeline 120 is used to drive the movable part, forcing the movable part to temporarily block the catheter 100, thereby reducing the liquid discharged from the patient's body into the metering box 110 during the siphon state, and reducing the difference between the liquid amounts discharged multiple times.
[0034] like Figure 2 and Figure 3 As shown, the self-controlled liquid discharge pipeline 120 includes an outer tube 121 and an inner tube 122, and the upper and lower ends of the outer tube 121 and the inner tube 122 are both in a through state, and the movable part is fixedly arranged on the top of the outer tube 121 to seal the top of the outer tube 121. In this way, the outer tube 121, the inner tube 122 and the movable part together constitute the self-controlled liquid discharge pipeline 120, so that the liquid in the metering box 110 is discharged into the liquid storage bag 200 through the through tube 112 by using the siphon principle. Among them, the height of the outer tube 121 is higher than the height of the inner tube 122, and the diameter of the inner tube 122 is smaller than the diameter of the outer tube 121. In this way, a flow cavity 123 is formed between the outer circle of the inner tube 122 and the inner circle of the outer tube 121. In addition, the inner tube 122 is connected to the through tube 112, and a through port 124 is set between the bottom end of the outer tube 121 and the inner wall of the bottom of the catheter 100.
[0035] In this way, after the liquid enters the metering box 110 through the catheter 100, the liquid in the catheter 100 gradually increases during the accumulation process. When the liquid in the catheter 100 is higher than the top height of the inner tube 122, the liquid is discharged through the inner tube 122, and negative pressure is generated during the discharge process, so that the liquid in the metering box 110 is sucked into the inner tube 122 through the port 124 and the flow cavity 123, and then flows into the liquid storage bag 200 through the inner tube 122.
[0036] In some embodiments, Figure 2 and Figure 3As shown, the movable part is a flexible sheet 130 fixedly arranged at the top of the outer tube 121 and sealing the top of the outer tube 121. The flexible sheet 130 is preferably made of waterproof plastic or rubber material, and the thickness is preferably between 0.02mm and 0.1mm (specific reference can be made to the thickness of plastic bags and balloons). In addition, the cross-section of the flexible sheet 130 under normal conditions is in a "V" shape, that is, the middle part of the flexible sheet 130 is concave downward (also referred to as a concave state), thereby invading the flow cavity 123; and the concave part of the flexible sheet 130 is located directly below the catheter 100. When the liquid in the flow cavity 123 flows, the force generated by the liquid flow pushes the concave part of the flexible sheet 130 upward, so that the part of the flexible sheet 130 that is pushed blocks the bottom end of the catheter 100. Among them, the distance between the bottom end of the catheter 100 and the concave part of the flexible sheet 130 is less than the distance that the flexible sheet 130 is pushed upward by the liquid.
[0037] Combination Figure 4 The dotted line portion in the figure is the state before the flexible sheet 130 is pushed. When the siphon begins, the liquid in the flow chamber 123 will flow in the direction of the arrow, and continue to flow to the top of the inner tube 122, and finally fall into the inner tube 122. In the process of the liquid flowing to the top of the inner tube 122, the thrust generated by the liquid flow will prop up the flexible sheet 130, that is, drive the recessed part of the flexible sheet 130 to deform upward. In this way, the upward deformation of the recessed part of the flexible sheet 130 can block the bottom of the metering box 110, so that during the siphoning process, the urine in the catheter 100 will not flow into the metering box 110. When the siphon ends, the thrust of the liquid on the flexible sheet 130 disappears, and the urine in the catheter 100 presses the flexible sheet 130 downward to reset by its own gravity, and at this time the bottom end of the catheter 100 is opened.
[0038] Furthermore, in order to improve the blocking effect on the bottom of the catheter 100. Figure 5 and Figure 6 As shown, an upper stopper 131 is fixedly arranged at the top of the concave part of the flexible sheet 130, and the outer diameter of the top of the upper stopper 131 is consistent with the inner diameter of the catheter 100, and the top of the upper stopper 131 is a conical structure (to facilitate the insertion of the upper stopper 131 into the catheter 100). In this way, when the flexible sheet 130 is pushed upward, the flexible sheet 130 drives the upper stopper 131 to move upward and insert into the bottom end of the catheter 100, thereby blocking the bottom end of the catheter 100; when the liquid stops pushing the flexible sheet 130, the flexible sheet 130 is reset downward by the gravity of the upper stopper 131 or the gravity of the urine in the catheter 100.
[0039] When the flow rate of urine is low, the liquid level in the metering box 110 rises slowly, so that when the liquid level is slightly higher than the top of the inner tube 122, the liquid will be discharged directly through the inner tube 122. Since the flow rate of urine discharged through the catheter 100 is low, the liquid cannot fill the inner tube 122, making it difficult to form a siphon effect. To this end: In other implementations, the concave portion of the flexible sheet 130 is used to collect the liquid discharged from the catheter 100, and when the flexible sheet 130 is in the concave state, the concave portion of the flexible sheet 130 fits against the top of the inner tube 122, so as to block the top of the inner tube 122 by the gravity of the liquid on the top of the flexible sheet 130, and when the liquid level in the metering box 110 reaches a corresponding height, the flexible sheet 130 uses the buoyancy of the liquid to separate from the inner tube 122. In this way, the liquid level in the metering box 110 can be increased before the siphon effect occurs.
[0040] Working principle: Before the siphon effect occurs, the flexible sheet 130 will not be pushed by the liquid. Since the flexible sheet 130 is located below the catheter 100, the urine falling through the catheter 100 will first fill the "V"-shaped flexible sheet 130, and then the excess urine will overflow into the metering box 110. In this way, due to the presence of urine, the gravity of the urine will be applied to the top of the flexible sheet 130, so that the concave part of the flexible sheet 130 will be against the top of the inner tube 122. At this time, Figure 8 As shown, when the liquid level is slightly higher than the height of the inner tube 122, due to the small contact area of the liquid on the flexible sheet 130, the gravity of the urine on the top of the flexible sheet 130 overcomes the buoyancy of the flexible sheet 130. At this time, the flexible sheet 130 continues to block the top of the inner tube 122, and no siphon effect will occur.
[0041] When the liquid level in the metering box 110 continues to rise, Fig. 9 As shown, the contact area between the liquid surface and the bottom of the flexible sheet 130 becomes larger, so the buoyancy of the flexible sheet 130 becomes larger, so that the flexible sheet 130 overcomes the weight of the urine on the top. At this time, the bottom of the flexible sheet 130 will be lifted by the liquid in the metering box 110. At this time, a gap is generated between the bottom of the flexible sheet 130 and the top of the inner tube 122, so the liquid begins to be discharged through the inner tube 122, and then a siphon effect is generated. At the moment of liquid discharge, the liquid pushes the flexible sheet 130 through the inclined surface at the bottom of the flexible sheet 130, so that the concave part of the flexible sheet 130 is deformed upward. Then during the siphon process, the liquid flowing in the flow cavity 123 continues to prop up the flexible sheet 130.
[0042] In order to improve the plugging effect on the top of the inner tube 122. Figure 7-Figure 10As shown, a lower stopper 132 is fixedly provided at the bottom of the flexible sheet 130, the outer diameter of the bottom end of the lower stopper 132 is consistent with the inner diameter of the inner tube 122, and the bottom end of the lower stopper 132 is in a conical state. When the flexible sheet 130 is in a recessed state, the lower stopper 132 is in the inner tube 122; a support ring 133 is provided in the middle of the outer ring of the flexible sheet 130, and the support ring 133 is a hollow structure.
[0043] First, Figure 8 As shown, when the liquid height does not exceed the support ring 133, the buoyancy of the flexible sheet 130 is small, and the bottom of the flexible sheet 130 will not produce a large displacement. At this time, the lower block 132 is still in the inner tube 122. When the liquid height exceeds the support ring 133, since the support ring 133 is a hollow material, the support ring 133 will be subject to the buoyancy of the liquid, thereby driving the flexible sheet 130 to deform upward. At the same time, coupled with the buoyancy of the flexible sheet 130 itself, the lower block 132 will move upward and detach from the top of the inner tube 122. At the moment when the lower block 132 detaches from the top of the inner tube 122, the liquid in the metering box 110 pushes the lower block 132 upward through the inclined surface at the bottom end of the lower block 132. At this time, the lower block 132 drives the flexible sheet 130 to deform upward, so that the flexible sheet 130 blocks the bottom end of the catheter 100.
[0044] It can be seen that the flexible sheet 130 in the recessed state can use the gravity of urine to block the inner tube 122, thereby increasing the amount of liquid before the siphon effect occurs, avoiding partial urine discharge through the inner tube 122 when the urine flow in the catheter 100 is small, and reducing the error of multiple discharges.
[0045] Furthermore, in order to increase the thrust exerted by the liquid on the flexible sheet 130 during the flow process, a booster rod 134 is fixedly provided on the outer ring of the flexible sheet 130, and the bottom end of the booster rod 134 extends into the flow cavity 123. In this way, when the liquid in the flow cavity 123 flows toward the top of the inner tube 122, the flowing liquid will impact the booster rod 134 upward, so that the booster rod 134 drives the flexible sheet 130 to deform upward, thereby improving the efficiency and stability of the upward deformation of the concave part of the flexible sheet 130.
[0046] Furthermore, the top end of the outer tube 121 is preferably trumpet-shaped, so that a larger area of the flexible sheet 130 can be provided, thereby collecting more urine and improving the stability of the flexible sheet 130 when the urine fluid actuates the depression.
[0047] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the present invention and are not intended to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention. The scope of protection of the present invention is defined by the attached claims and their equivalents.
Claims
1. A needleless sampling urinary catheterization device, comprising a catheter (100), a metering box (110) and a liquid storage bag (200); one end of the catheter (100) is connected to the metering box (110), the metering box (110) is connected to the liquid storage bag (200) via a through pipe (112) arranged at the bottom, and a first vent hole (111) is arranged on a side wall of the metering box (110); the characteristics are: An automatic liquid discharge pipeline (120) connected to the through pipe (112) is arranged in the metering box (110); the automatic liquid discharge pipeline (120) uses the siphon principle to discharge the liquid in the metering box (110) into the liquid storage bag (200) through the through pipe (112); and the automatic liquid discharge pipeline (120) is located below the catheter (100); a movable part is arranged at the top of the automatic liquid discharge pipeline (120) corresponding to the catheter (100); in the siphon state, the movable part uses the force of the liquid in the siphon process to block the catheter (100); The automatic liquid discharge pipeline (120) comprises an outer tube (121) and an inner tube (122), the upper and lower ends of the outer tube (121) and the inner tube (122) are both in a through-state, and the movable part is fixedly arranged on the top of the outer tube (121) to seal the top of the outer tube (121); The outer tube (121), the inner tube (122) and the movable part together form an automatic liquid discharge pipeline (120) for discharging the liquid in the metering box (110) into the liquid storage bag (200) through the through tube (112) by utilizing the siphon principle.
2. The needle-free sampling urinary catheterization device according to claim 1, characterized in that: The height of the outer tube (121) is higher than the height of the inner tube (122), and the diameter of the inner tube (122) is smaller than the diameter of the outer tube (121), so that a flow cavity (123) is formed between the outer circle of the inner tube (122) and the inner circle of the outer tube (121); The inner tube (122) is in communication with the through tube (112), and a through opening (124) is provided between the bottom end of the outer tube (121) and the inner wall of the bottom of the conduit (100).
3. The needle-free sampling urinary catheterization device according to claim 1, characterized in that: The movable member is a flexible sheet (130) fixedly arranged on the top end of the outer tube (121) and sealing the top end of the outer tube (121); in a normal state, the middle portion of the flexible sheet (130) is recessed downward, thereby invading the flow cavity (123); The recessed portion of the flexible sheet (130) is located directly below the conduit (100); when the liquid in the flow cavity (123) flows, the force generated by the liquid flow pushes the recessed portion of the flexible sheet (130) upwards, so that the pushed portion of the flexible sheet (130) blocks the bottom end of the conduit (100).
4. The needle-free sampling urinary catheterization device according to claim 3, characterized in that: The distance between the bottom end of the conduit (100) and the depression of the flexible sheet (130) is smaller than the distance that the flexible sheet (130) is pushed upward by the liquid.
5. The needle-free sampling urinary catheterization device according to claim 3, characterized in that: The thickness of the flexible sheet (130) is between 0.02 mm and 0.1 mm.
6. The needle-free sampling urinary catheterization device according to claim 3, characterized in that: An upper stopper (131) is fixedly arranged at the top of the recessed portion of the flexible sheet (130), and the outer diameter of the top end of the upper stopper (131) is consistent with the inner diameter of the catheter (100); when the flexible sheet (130) is pushed upward, the flexible sheet (130) drives the upper stopper (131) to move upward and insert into the bottom end of the catheter (100), thereby blocking the bottom end of the catheter (100).
7. The needle-free sampling urinary catheterization device according to claim 3, characterized in that: The recessed portion of the flexible sheet (130) is used to collect liquid discharged from the catheter (100), and when the flexible sheet (130) is in a recessed state, the recessed portion of the flexible sheet (130) fits against the top of the inner tube (122), so as to block the top of the inner tube (122) by utilizing the gravity of the liquid on the top of the flexible sheet (130), and when the liquid level in the metering box (110) reaches a corresponding height, the flexible sheet (130) separates from the inner tube (122) by utilizing the buoyancy of the liquid.
8. The needle-free sampling urinary catheterization device according to claim 7, characterized in that: A lower stopper (132) is fixedly arranged at the bottom of the flexible sheet (130); the outer diameter of the bottom end of the lower stopper (132) is consistent with the inner diameter of the inner tube (122), and the bottom end of the lower stopper (132) is in a conical state; when the flexible sheet (130) is in a recessed state, the lower stopper (132) is located inside the inner tube (122); a support ring (133) is provided in the middle of the outer ring of the flexible sheet (130); the support ring (133) is a hollow structure.
9. The needle-free sampling urinary catheterization device according to claim 3, characterized in that: The outer ring of the flexible sheet (130) is fixedly provided with a booster rod (134), the bottom end of the booster rod (134) extends into the flow cavity (123), and the liquid flowing in the flow cavity (123) provides power for the upward deformation of the flexible sheet (130).
Citation Information
Patent Citations
Disposable self-controlled precision metering drainage bag
CN104771794B
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