Flushing fluid container
By setting up the main cover, separate cover and multiple plug structures in the flushing liquid container, the interface is aseptic, and the problem of flushing liquid contamination is solved, and the multiple use of flushing liquid and the heating efficiency is improved, reducing waste and cost.
Patent Information
- Application Number
- CN202510722276.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2025-08-29
Smart Images

Figure CN120550243A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical devices, and in particular to a flushing liquid container. Background Art
[0002] During medical treatment, doctors often use irrigation devices to locally irrigate the treatment area to provide a clear field of vision, facilitating effective disease detection and precise treatment. The irrigation fluid used in these devices is typically placed in a sealed container and heated before use to align it with human body temperature.
[0003] Currently, sealed containers used to hold flushing fluids are often quite large, often holding enough fluid for multiple days of use. However, since the container's plug must be removed to connect the flushing device to the container each time, the flushing fluid inside is susceptible to contamination. Consequently, any unused flushing fluid cannot be used the next day, limiting the number of times a bottle of flushing fluid can be used. This results in significant waste and increases medical costs. Summary of the Invention
[0004] The present invention provides a flushing liquid container, which is used to solve the problem that the flushing liquid used in the current diagnosis and treatment process is easily contaminated, which limits the number of times the flushing liquid in the flushing liquid container can be used and causes flushing liquid waste.
[0005] The present invention provides a flushing liquid container, comprising: A main body, provided with a receiving cavity and an opening, wherein the opening is communicated with the receiving cavity; A main cover is provided on the opening, and a first receiving groove and a second receiving groove are provided on the main cover, wherein the first receiving groove is provided with an interface communicating with the receiving cavity; a plurality of plugs, one of which is detachably connected to the interface, and the other plugs are detachably disposed in the second receiving groove, the plugs being used to seal the interface; a first sub-cover, which is disposed on the first receiving groove; The second sub-cover is arranged on the second receiving groove.
[0006] According to a flushing liquid container provided by the present invention, the main cover is further provided with an air hole, the air hole is communicated with the accommodating cavity, and the air hole is sealed with a cover body.
[0007] According to the flushing liquid container provided by the present invention, the air hole is provided in the first containing groove, and the cover body is the first sub-cover.
[0008] A flushing liquid container according to the present invention further includes: The filter element is arranged at the air hole and is used for allowing gas to pass through and preventing liquid from passing through.
[0009] A flushing liquid container according to the present invention further includes: A pressure plate, a groove is provided on the side of the main cover facing the accommodating cavity, the air hole is provided at the bottom of the groove, the filter element covers the groove and is pressed between the pressure plate and the main cover, and there is a gap between the filter element and the bottom of the groove.
[0010] According to a flushing liquid container provided by the present invention, the main body includes a body and a heat conducting plate, the bottom of the body is provided with a hollow area, and the heat conducting plate is embedded in the bottom of the body and closes the hollow area.
[0011] According to the flushing liquid container provided by the present invention, the heat conducting sheet is a metal sheet.
[0012] A flushing liquid container according to the present invention further includes: The ball is provided with a third receiving groove on the main cover, and the third receiving groove is located in the first receiving groove. The ball is accommodated in the third receiving groove. The interface is provided at the groove mouth of the third receiving groove and limits the ball in the third receiving groove. The bottom of the third receiving groove is provided with a through hole connected to the receiving cavity; the ball can block the through hole under the action of gravity, and open the through hole under the suction action at the interface.
[0013] According to a flushing liquid container provided by the present invention, the bottom of the third receiving groove is a conical surface, the large diameter end of the conical surface is close to the interface relative to the small diameter end, the through hole is provided at the small diameter end, and the ball is a spherical structure adapted to the conical surface.
[0014] According to the flushing liquid container provided by the present invention, the axis of the interface is eccentrically arranged relative to the axis of the conical surface.
[0015] The flushing liquid container provided by the present invention is provided with a main cover, a first sub-cover, and a second sub-cover. A first receiving groove and a second receiving groove are provided on the main cover. An interface is provided in the first receiving groove, a plug is detachably connected to the interface, the first receiving groove is sealed by the first sub-cover, and multiple plugs are detachably provided in the second receiving groove, and the second receiving groove is sealed by the second sub-cover, thereby ensuring that the interface and the multiple plugs are in a sterile state. If the flushing liquid in the container is not used up on the same day, the sterile plug in the second receiving groove can be used to seal the interface, thereby avoiding the problem of the flushing liquid in the container being contaminated by using the old plug. The excess flushing liquid can be used again the next day, thereby increasing the number of times the flushing liquid in the container can be used and avoiding the problem of flushing liquid waste. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction is given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0017] Figure 1 It is a structural schematic diagram of the flushing liquid container provided by the present invention.
[0018] Figure 2 This is one of the exploded structural diagrams of the flushing liquid container provided by the present invention.
[0019] Figure 3 This is one of the cross-sectional views of the flushing liquid container provided by the present invention.
[0020] Figure 4 This is the second cross-sectional view of the flushing liquid container provided by the present invention.
[0021] Figure 5 This is the second schematic diagram of the explosion structure of the flushing liquid container provided by the present invention.
[0022] Figure 6 This is the third cross-sectional view of the flushing liquid container provided by the present invention.
[0023] Reference numerals: 1. Main body; 10. Accommodating cavity; 11. Main body; 111. Bottom wall; 12. Heat conducting plate; 121. Heat conducting portion; 122. Connecting portion; 13. Through hole; 2. Main cover; 21. First accommodating groove; 22. Second accommodating groove; 23. Interface; 24. Air hole; 25. Mounting seat; 261. First annular protrusion; 262. Second annular protrusion; 27. Groove; 28. Third accommodating groove; 29. Tube; 31. First sub-cover; 32. Second sub-cover; 4. Plug; 51. First sealing ring; 52. Second sealing ring; 53. Third sealing ring; 61. Filter element; 62. Press plate; 7. Temperature sensing sleeve; 8. Magnetic stirring bar; 9. Ball bearing. DETAILED DESCRIPTION
[0024] To make the objectives, technical solutions, and advantages of the present invention more clear, the technical solutions of the present invention will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention.
[0025] In the description of the embodiments of the present invention, it should be noted that, unless otherwise expressly specified and limited, the terms "first" and "second" are for the purpose of clearly illustrating the numbering of product components and do not represent any substantial difference. The terms "installed", "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium, or it can be internal communication between two components. For ordinary technicians in this field, the specific meanings of the above terms in the embodiments of the present invention can be understood according to the specific circumstances. In addition, the meaning of "multiple" is two or more.
[0026] The following combination Figures 1-6 The irrigation fluid container of the present invention is described.
[0027] like Figure 1-Figure 3 As shown, the flushing liquid container provided by the embodiment of the present invention includes a main body 1, a main cover 2, a first sub-cover 31, a second sub-cover 32 and a plurality of plugs 4. The main body 1 is provided with a accommodating cavity 10 and an opening, and the opening is connected to the accommodating cavity 10. The main cover 2 is provided on the opening. A first accommodating groove 21 and a second accommodating groove 22 are provided on the main cover 2, and an interface 23 communicating with the accommodating cavity 10 is provided in the first accommodating groove 21. One of the plugs 4 is detachably connected to the interface 23, and the other plugs 4 are detachably arranged in the second accommodating groove 22, and the plugs 4 are used to block the interface 23. The first sub-cover 31 is provided on the first accommodating groove 21. The second sub-cover 32 is provided on the second accommodating groove 22.
[0028] Among them, the accommodating chamber 10 of the main body 1 is used to accommodate flushing liquid. The opening can be provided at the top or side of the main body 1, the main cover 2 is provided on the opening, and the first sub-cover 31 is provided in the first accommodating groove 21, so as to achieve sealing of the accommodating chamber 10. The interface 23 provided in the first accommodating groove 21 of the main cover 2 is used to connect external equipment, so that the external equipment is connected to the accommodating chamber 10. During production, the first sub-cover 31 is opened, the interface 23 is connected to the filling machine, and flushing liquid is poured into the accommodating chamber 10 through the filling machine. After the filling is completed, the first sub-cover 31 is covered, and the flushing liquid container is placed in a high-temperature sterilization device for high-temperature sterilization. When in use, the flushing device is connected through the interface 23, and the flushing liquid is extracted from the accommodating chamber 10 to achieve the flushing operation.
[0029] The first sub-cover 31, a sealing cap, is positioned within the first receiving slot 21, creating a sealed first receiving space between the first sub-cover 31 and the main cover 2. The interface 23 is positioned within this first receiving space to ensure sterility. A removable plug 4 is attached to the interface 23 to seal it when not connected to an external device. The second sub-cover 32, a sealing cap, is positioned within the second receiving slot 22, creating a sealed second receiving space between the second sub-cover 32 and the main cover 2. Multiple plugs 4 are positioned within this second receiving space to ensure sterility. The plugs 4 within the second receiving slot 22 serve as backup plugs.
[0030] When using the flushing liquid in the flushing liquid container for the first time, open the first sub-cover 31, remove and discard the plug 4 on the interface 23, and connect the flushing device to the interface 23 to start flushing. If the flushing liquid in the flushing liquid container is not used up that day, after removing the flushing device, open the second sub-cover 32, remove a plug 4 from the second receiving tank 22, and install it on the interface 23 in the first receiving tank 21 to seal the interface 23. Then, replace the first and second sub-covers 31 and 32 and wait for use the next day. This can avoid the problem of contamination of the interface 23 caused by the use of the old plug 4.
[0031] The number of plugs 4 in the second receiving tank 22 can be determined according to the volume of the container. The larger the volume of the container, the larger the capacity of the flushing liquid it can accommodate and the more times it can be used, so a larger number of plugs 4 should be set accordingly. Figure 2 As shown in FIG, a plug 4 is provided on the interface 23 in the first receiving groove 21, and three spare plugs 4 are provided in the second receiving groove 22. Optionally, the plug 4 is a Luer plug 4.
[0032] The flushing liquid container provided by the embodiment of the present invention is provided with a main cover 2, a first sub-cover 31 and a second sub-cover 32. A first receiving groove 21 and a second receiving groove 22 are provided on the main cover 2. An interface 23 is provided in the first receiving groove 21. A plug 4 is detachably connected to the interface 23. The first receiving groove 21 is sealed by the first sub-cover 31. Multiple plugs 4 are detachably provided in the second receiving groove 22. The second receiving groove 22 is sealed by the second sub-cover 32, thereby ensuring that the interface 23 and the multiple plugs 4 are in a sterile state. If the flushing liquid in the container is not used up on the same day, the sterile plug 4 in the second receiving groove 22 can be used to seal the interface 23, thereby avoiding the problem of the flushing liquid in the container being contaminated by using the old plug 4. The excess flushing liquid can be used again the next day, increasing the number of times the flushing liquid in the container can be used and avoiding the problem of flushing liquid waste.
[0033] Alternatively, see Figure 3The second receiving groove 22 is provided with a plurality of mounting seats 25, the mounting seats 25 are protruding from the bottom of the second receiving groove 22, and the plurality of plugs 4 are detachably sleeved or threadedly connected to the mounting seats 25. Alternatively, the second receiving groove 22 is provided with a plurality of mounting grooves, and the plurality of plugs 4 are inserted into the mounting grooves in a one-to-one correspondence.
[0034] Alternatively, see Figure 3 The top surface of the main cover 2 is provided with a first annular protrusion 261 and a second annular protrusion 262. The first annular protrusion 261 surrounds the first receiving groove 21, and the second annular protrusion 262 surrounds the second receiving groove 22. The outer sides of the first and second annular protrusions 261 and 262 are provided with external threads, while the inner sides of the first and second sub-covers 31 and 32 are provided with internal threads. The first sub-cover 31 is threadedly connected to the first annular protrusion 261, and the second sub-cover 32 is threadedly connected to the second annular protrusion 262.
[0035] It should be noted that the first receiving groove 21 and the second receiving groove 22 may also be recessed in the top surface of the main cover 2. This embodiment does not limit the specific structural form of the first receiving groove 21 and the second receiving groove 22. The connection method between the main cover 2 and the main body 1, and the connection method between the first sub-cover 31 and the second sub-cover 32 and the main cover 2 are not limited to the above-mentioned threaded connection. For example, they can also be connected by a snap-fit connection.
[0036] Further, see Figure 5 A first sealing ring 51 is provided between the main cover 2 and the main body 1 to enhance the sealing between the main cover 2 and the main body 1. Figure 2 A second sealing ring 52 is provided between the first sub-cover 31 and the main cover 2 to strengthen the sealing between the first sub-cover 31 and the main cover 2, and a third sealing ring 53 is provided between the second sub-cover 32 and the main cover 2 to strengthen the sealing between the second sub-cover 32 and the main cover 2.
[0037] In this embodiment of the present invention, the main cover 2 further includes an air hole 24, which communicates with the accommodating chamber 10. A cover body seals the air hole 24. When the port 23 is connected to an external device, the cover body is opened, allowing the accommodating chamber 10 to communicate with the outside atmosphere through the air hole 24. This balances the internal and external pressures of the container and facilitates the absorption of the flushing liquid. When the port 23 is not connected to an external device, the cover body is attached to the main cover 2 to close the air hole 24.
[0038] The air hole 24 can be provided on the main cover 2 at a position outside the first receiving groove 21 and the second receiving groove 22, and the cover body is the third sub-cover. Figure 1 and Figure 2As shown, the air hole 24 is provided in the first receiving groove 21, and the cover is a first sub-cover 31. That is, the first sub-cover 31 is used to open and close both the air hole 24 and the interface 23. This eliminates the need for a separate cover to close the air hole 24, reduces the number of parts, simplifies the overall structure, and simplifies the operation of opening and closing the cover.
[0039] like Figure 3 and Figure 5 As shown, the flushing liquid container provided in the embodiment of the present invention further includes a filter element 61 . The filter element 61 is disposed at the air hole 24 to allow gas to pass through and prevent liquid from passing through.
[0040] It is understood that the filter element 61 is waterproof and breathable, allowing gas molecules to freely pass through its structural gaps while blocking liquid from passing through. Optionally, the filter element 61 is a micron-grade filter cotton.
[0041] When the air hole 24 is open, the filter 61 prevents the flushing liquid in the accommodating chamber 10 from leaking out of the air hole 24. It also filters air that enters the accommodating chamber 10 through the air hole 24, preventing contamination of the flushing liquid. In particular, when the air hole 24 and the interface 23 share the first sub-cover 31, the air hole 24 can be exposed to the outside for a long period of time during use of the interface 23, thus preventing contamination of the flushing liquid by external air.
[0042] Further, see Figure 3 and Figure 5 The flushing liquid container provided in this embodiment of the present invention further includes a pressing plate 62. A groove 27 is provided on the side of the main cover 2 facing the accommodating chamber 10. The air holes 24 are provided at the bottom of the groove 27. A filter 61 covers the groove 27 and is pressed between the pressing plate 62 and the main cover 2. A gap exists between the filter 61 and the bottom of the groove.
[0043] It is understood that the air hole 24 is provided at the bottom of the groove 27, and the area of the air hole 24 is smaller than the area of the groove 27. The filter element 61 covers the notch of the groove 27, so that a certain gap exists between the filter element 61 and the air hole 24, which increases the flow area of the filter element 61 and helps to reduce the airflow resistance.
[0044] The pressing plate 62 is provided with grid holes to connect the accommodating cavity 10 and the air hole 24. Optionally, the pressing plate 62 can be fixedly connected to the main cover 2 by ultrasonic plastic welding or hot pressing.
[0045] Specifically, the side of the main cover 2 facing the receiving slot is the inner surface of the main cover 2. A third annular protrusion is formed on the inner surface of the main cover 2, surrounding the air hole 24. The third annular protrusion forms a groove 27. A pressure plate 62 is pressed against the third annular protrusion, and the filter element 61 is compressed between the third annular protrusion and the pressure plate 62.
[0046] Furthermore, an annular step surface is provided on the inner side surface of the third annular protrusion, and the filter element 61 is adapted to the annular step surface. The pressure plate 62 abuts against the annular step, and the filter element 61 is pressed between the annular step surface and the pressure plate 62. In this way, the filter element 61 can be installed and positioned by the annular step surface, facilitating the installation of the filter element 61.
[0047] It should be noted that the groove 27 can also be recessed in the inner surface of the main cover 2 , and the inner side surface of the groove 27 is provided with an annular step surface, and the filter element 61 is pressed between the annular step surface and the pressure plate 62 .
[0048] In the embodiment of the present invention, the material used to make the main body 1 can be one or more of plastic, metal, ceramic or composite material.
[0049] like Figure 4 and Figure 5 As shown, in some embodiments of the present invention, the main body 1 includes a body 11 and a heat conducting plate 12 . A hollow area is provided at the bottom of the body 11 . The heat conducting plate 12 is embedded in the bottom of the body 11 and closes the hollow area.
[0050] It is understood that the body 11 has a bottom wall 111, a hollow area is provided in the bottom wall 111, and the heat conducting sheet 12 is embedded in the bottom wall 111. The body 11 and the heat conducting sheet 12 are made of different materials. The heat conducting sheet 12 has a higher thermal conductivity than the body 11.
[0051] Before using the flushing liquid, it must be heated to a specific temperature. To heat the container, place it in a heating device so that the bottom of the main body 1 contacts the heating surface of the device. Heat from the heating device is then transferred to the flushing liquid in the container through the bottom of the main body 1. This embodiment utilizes a heat conducting sheet 12 at the bottom of the main body 1 to facilitate rapid heat transfer to the flushing liquid, improving heating efficiency.
[0052] Optionally, the body 11 is a plastic part, the heat conducting sheet 12 is a metal sheet, and the heat conducting sheet 12 and the body 11 can be integrally formed by injection molding. Of course, the heat conducting sheet 12 is not limited to a metal sheet, for example, it can also be a structural member made of a material with good thermal conductivity such as ceramic or graphite.
[0053] Among them, the heat conducting sheet 12 has a heat conducting portion 121 and a connecting portion 122, and the connecting portion 122 is connected to the outer periphery of the heat conducting portion 121. The heat conducting portion 121 is flush with the bottom of the main body 11, so that the bottom surface of the main body 1 is flat. The connecting portion 122 is embedded in the main body 11 and can be connected to the main body 11 as a whole during the injection molding of the main body 11. Specifically, the connecting portion 122 includes a first ring portion and a second ring portion surrounding the outside of the heat conducting portion 121, the heat conducting portion 121 is flush with the outer wall surface of the bottom wall 111, the second ring portion is embedded in parallel inside the bottom wall 111 of the main body 11, and the first ring portion is connected between the heat conducting portion 121 and the second ring portion. In this way, a reliable connection between the heat conducting sheet 12 and the main body 11 can be guaranteed.
[0054] like Figure 6 As shown, the flushing liquid container provided in this embodiment of the present invention further includes a ball 9. The main cover 2 is further provided with a third receiving groove 28, which is located within the first receiving groove 21. The ball 9 is accommodated within the third receiving groove 28. The interface 23 is provided at the notch of the third receiving groove 28 and confines the ball 9 within the third receiving groove 28. The bottom of the third receiving groove 28 is provided with a through hole 13 that communicates with the receiving cavity 10. The ball 9 can block the through hole 13 under the action of gravity and open the through hole 13 under the suction action of the interface 23.
[0055] It is understood that the third receiving groove 28 is provided at the bottom of the first receiving groove 21, and the interface 23 is installed at the notch of the third receiving groove 28. The interface 23, the third receiving groove 28, the through hole 13, and the receiving chamber 10 are connected in sequence from top to bottom. The ball 9 has a certain amount of space for up and down movement within the third receiving groove 28. Optionally, the ball 9 is a steel ball. During product production and filling, when the solution is poured into the receiving chamber 10 through the interface 23, the ball 9 can open the through hole 13 under the impact of the liquid, allowing the solution to enter the receiving chamber 10 through the through hole 13.
[0056] When the interface 23 is not connected to a flushing device, the ball 9 rests on the bottom of the third receiving groove 28 under the action of gravity, thereby blocking the through-hole 13. When the interface 23 is connected to a flushing device, the flushing device generates a suction force at the interface 23. Under the action of this suction force, the ball 9 moves toward the notch of the third receiving groove 28, opening the through-hole and simultaneously drawing out the liquid from the receiving chamber 10. By providing the ball 9 in this embodiment, the liquid in the container can only be drawn out from the interior when in use. When not in use, the receiving chamber automatically closes, preventing external air and liquid from directly entering the receiving chamber 10 and causing contamination.
[0057] The interface 23 can be fixedly connected to the main cover 2 by ultrasonic welding. One end of the interface 23 is welded to the bottom of the first receiving groove 21, and the other end is used to connect to the plug 4.
[0058] Furthermore, the bottom of the third receiving groove 28 is a conical surface, with the larger diameter end of the cone closer to the interface 23 than the smaller diameter end. The through hole 13 is located at the smaller diameter end of the cone. The ball 9 is a spherical structure that fits within this conical surface. It is understood that the bottom of the third receiving groove 28 is funnel-shaped. When the suction force at the interface 23 disappears, the conical surface guides the ball 9 to the lowest part of the third receiving groove 28, and the outer surface of the ball 9 tightly fits the conical surface, achieving a seal.
[0059] Further, see Figure 6 The axis of the interface 23 is eccentrically arranged relative to the axis of the conical surface. Thus, during product production and filling, the injected solution can impact the ball 9 from the side, quickly opening the through hole 13. The through hole 13 remains open under the continuous impact, preventing the ball 9 from blocking the through hole 13 during the filling process, resulting in filling failure or low filling efficiency, and achieving high-speed filling.
[0060] like Figure 3 As shown, in this embodiment of the present invention, a temperature sensing sleeve rod 7 is provided at the bottom of the main body 1. The temperature sensing sleeve rod 7 is protruded in the accommodating cavity 10 and passes through the bottom of the main body 1. The temperature sensing sleeve rod 7 is provided with a temperature sensing cavity and an opening facing the outside of the main body 1. The temperature sensing sleeve rod 7 is used to be sleeved on the thermometer.
[0061] Specifically, the temperature sensing sleeve 7 is a cylindrical structural member with one end closed and the other end open. The temperature sensing sleeve 7 passes through the bottom of the main body 1, with the closed end protruding into the accommodating cavity 10, and the opening facing the outside of the main body 1. A temperature sensing cavity connected to the opening is provided in the temperature sensing sleeve 7. When the container is placed in the heating device for heating, the temperature sensing sleeve 7 is mounted on the thermometer, that is, the thermometer is located in the temperature sensing cavity, which is used to detect the temperature of the internal solution, realize the monitoring of the heating temperature and constant temperature control. Among them, the temperature sensing sleeve 7 can be made of metal, which is conducive to the thermometer to more accurately detect the temperature of the internal solution.
[0062] Further, if Figure 5 As shown, the bottom wall 111 of the body 11 is circular, and the outer contour of the heat conducting plate 12 includes an arc segment and a straight segment. The straight segment is connected between the two ends of the arc segment to form a "D" shape. The hollow area at the bottom of the body 11 has the same shape as the heat conducting plate 12. In this way, an area can be reserved on the bottom wall 111 on one side of the straight contour of the heat conducting plate 12 for installing the temperature sensing sleeve rod 7. In this way, the diameter of the arc segment can be set larger, which is conducive to increasing the area of the heat conducting plate 12. like Figure 3As shown, the flushing liquid container provided by the embodiment of the present invention also includes a magnetic stirrer 8, which is arranged in the receiving chamber 10. During the heating of the flushing liquid, the heating device generates a magnetic field. Under the action of the magnetic field, the magnetic stirrer 8 will rotate or swing at high speed, thereby stirring the flushing liquid in the container. This can increase the heating speed and at the same time evenly disperse the non-water-soluble substances in the flushing liquid.
[0063] When the magnetic stirrer is powered on, the magnetic field it generates penetrates the container wall and exerts a magnetic force on the magnetic stirrer 8 in the container. Under the influence of the magnetic field, the magnetic stirrer 8 rotates or swings at high speed, thereby mixing the liquid in the container.
[0064] like Figure 3 As shown, the flushing liquid container provided in this embodiment of the present invention further includes a tube body 29. A tube base is provided on one side of the main cover 2 near the accommodating chamber 10, and the tube base is connected to the interface 23. One end of the tube body 29 is sleeved with the tube base, and the other end of the tube body 29 extends to the bottom of the accommodating chamber 10.
[0065] The tube base and port 23 are coaxially arranged and interconnected. The tube body 29 can be a rigid PP tube and can be press-fitted onto the tube base with an interference fit. The tube body 29 extends from the tube base to the bottom of the accommodating chamber 10, with a gap between the tube body 29 and the bottom of the accommodating chamber 10. This ensures that the flushing device can completely drain the flushing fluid from the accommodating chamber 10.
[0066] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. A flushing liquid container, characterized in that: include: A main body, provided with a receiving cavity and an opening, wherein the opening is communicated with the receiving cavity; A main cover is provided on the opening, and a first receiving groove and a second receiving groove are provided on the main cover, wherein the first receiving groove is provided with an interface communicating with the receiving cavity; a plurality of plugs, one of which is detachably connected to the interface, and the other plugs are detachably disposed in the second receiving groove, the plugs being used to seal the interface; a first sub-cover, which is disposed on the first receiving groove; The second sub-cover is arranged on the second receiving groove.
2. The flushing liquid container according to claim 1, characterized in that The main cover is further provided with an air hole, which is communicated with the accommodating cavity, and a cover body is provided on the air hole sealing cover.
3. The flushing liquid container according to claim 2, characterized in that The air hole is arranged in the first receiving groove, and the cover body is the first sub-cover.
4. The flushing liquid container according to claim 2, characterized in that Also includes: The filter element is arranged at the air hole and is used for allowing gas to pass through and preventing liquid from passing through.
5. The flushing liquid container according to claim 4, characterized in that Also includes: A pressure plate, a groove is provided on the side of the main cover facing the accommodating cavity, the air hole is provided at the bottom of the groove, the filter element covers the groove and is pressed between the pressure plate and the main cover, and there is a gap between the filter element and the bottom of the groove.
6. The flushing liquid container according to claim 1, characterized in that The main body comprises a body and a heat conducting sheet. A hollow area is provided at the bottom of the body. The heat conducting sheet is embedded in the bottom of the body and closes the hollow area.
7. The flushing liquid container according to claim 6, characterized in that The heat conducting sheet is a metal sheet.
8. The flushing liquid container according to claim 1, characterized in that Also includes: The ball is provided with a third receiving groove on the main cover, and the third receiving groove is located in the first receiving groove. The ball is accommodated in the third receiving groove. The interface is provided at the groove mouth of the third receiving groove and limits the ball in the third receiving groove. The bottom of the third receiving groove is provided with a through hole connected to the receiving cavity; the ball can block the through hole under the action of gravity, and open the through hole under the suction action at the interface.
9. The flushing liquid container according to claim 8, characterized in that The bottom of the third accommodating groove is a conical surface, the large diameter end of the conical surface is closer to the interface than the small diameter end, the through hole is provided at the small diameter end, and the ball is a spherical structure adapted to the conical surface.
10. The flushing liquid container according to claim 9, characterized in that The axis of the interface is eccentrically arranged relative to the axis of the conical surface.