A mobile high-pathogenic respiratory infectious disease specimen sampling table
By designing a mobile sampling station for highly pathogenic respiratory infectious diseases, and using a two-way valve tube to connect the sampling bottle, rapid gas collection and precise control are achieved. This solves the problem that existing equipment cannot accurately control the collection volume and virus spread, and improves the portability and safety of the sampling equipment.
Patent Information
- Application Number
- CN202510034881.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-09
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2045-01-09
AI Technical Summary
Existing specimen sampling equipment cannot accurately control the amount collected during sampling, and it is easy for viruses to spread through droplets, contact, aerosols, etc., posing a safety hazard.
A mobile sampling station for highly pathogenic respiratory infectious diseases was designed, comprising a sampling storage platform, an isolation door, a specimen collection mechanism, an anti-tipping mechanism, and a support mechanism. A bidirectional valve tube is used to connect the sampling bottle to achieve rapid gas collection and precise control. The anti-tipping mechanism ensures the stability of the sampling bottle, and the support mechanism facilitates movement and height adjustment.
It enables precise control of the sampling volume, avoids the spread of the virus, and improves the portability and safety of the sampling equipment.
Smart Images

Figure CN119924894B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of specimen sampling equipment, and particularly relates to a mobile high-pathogenic respiratory infectious disease specimen sampling table. BACKGROUND
[0002] Common types of respiratory infectious diseases include influenza, measles, chickenpox, rubella, meningitis, mumps, and tuberculosis. In recent years, new high-pathogenic respiratory infectious diseases such as COVID-19, MERS, and SARS have occurred. The specimen collection of infected persons of these high-pathogenic respiratory infectious diseases requires higher protection levels for workers, and once infected, the burden of the disease is heavier and more likely to lead to transmission and epidemic.
[0003] In related technologies, in the prevention and control of new high-pathogenic respiratory infectious diseases such as COVID-19, MERS, and SARS, viral detection of suspicious cases and key populations is crucial, and specimen sampling equipment is needed during detection.
[0004] Although there are many specimen sampling devices at present, there are still some problems. For example, most of the current specimen sampling devices are composed of a sampling table and a sampling bottle. This sampling structure is not suitable for peacetime and wartime scenes. Moreover, the sampling table is mostly large in size, and the bottom is not equipped with a roller structure. During sampling, multiple people are needed to carry it to the designated location. Meanwhile, the safety protection of the sampling bottle is not high. Since the sampling bottle is mostly a slender structure, the stability of the sampling bottle is insufficient during sampling. When subjected to external forces or other forces, such as vibration, the sampling bottle is prone to tipping over, which is not only easy to damage but also inconvenient to carry and move. If the stability of the sampling bottle needs to be maintained, a bracket device that cooperates with the sampling bottle needs to be additionally provided. This not only makes the operation cumbersome but also further increases the difficulty of carrying. During sampling, the sampling bottle is taken out of the sampling table, and specimen sampling is completed by the patient exhaling into the sampling bottle. Although this sampling method can achieve specimen sampling, during exhalation, on the one hand, the amount of specimen gas cannot be directly observed, and accurate control cannot be achieved. On the other hand, some gas escapes during exhalation, which leads to the spread of the virus through droplets, contact, and aerosols, thereby causing the virus to further spread, which poses a great safety hazard. Therefore, a mobile high-pathogenic respiratory infectious disease specimen sampling table is urgently needed to solve this problem. SUMMARY
[0005] The application provides a mobile high-pathogenic respiratory infectious disease specimen sampling table, aiming to solve the problem that the current sampling table cannot accurately control the collection amount during sampling and is prone to cause the virus to spread through droplets, contact, aerosol and other modes, thereby causing further spread of the virus.
[0006] The application is implemented as follows: a mobile high-pathogenic respiratory infectious disease specimen sampling table, comprising a sampling storage table, an isolation door, a specimen collection mechanism, an anti-toppling mechanism and a supporting mechanism, wherein the sampling storage table is internally provided with a cavity, the isolation door is arranged at the front end of the cavity of the sampling storage table;
[0007] The specimen collection mechanism is used for sampling the virus, and is arranged on the sampling storage table, and comprises sampling bottles, bidirectional valve pipes, cover plates, butt joint pipes, limiting discs, first non-return heads, first pressure springs, second non-return heads, second pressure springs and non-return beads.
[0008] The sampling bottles are arranged in multiple numbers and placed in the cavity of the sampling storage table, the cover plates are connected to the top of the sampling bottles, the butt joint pipes are connected to the bottom of the side walls of the sampling bottles, the bidirectional valve pipes are arranged in multiple numbers and arranged at the shaft center of the cover plates and between the butt joint pipes of two adjacent sampling bottles, the limiting discs are arranged at one end inside the bidirectional valve pipes, the first non-return heads are arranged inside the bidirectional valve pipes and abut against one end of the bidirectional valve pipes away from the limiting discs, the first pressure springs are arranged between the limiting discs and the first non-return heads, the second non-return heads are slidingly connected in the first non-return heads, the second pressure springs are arranged in the internal cavities of the first non-return heads, one end of the second pressure springs abuts against the second non-return heads, and the other end abuts against the first non-return heads, and the non-return beads are slidingly connected in the first non-return heads and abut against one end of the first non-return heads.
[0009] Two sampling bottles constitute a group and are connected through the bidirectional valve pipes, one of the sampling bottles is empty, and the other sampling bottle is filled with liquid.
[0010] Preferably, the anti-toppling mechanism comprises a sliding groove, a clamping block, a linkage rod and a stabilizing rod, the sliding groove is concave arranged on the outer wall of the sampling bottle, the clamping block is slidingly connected in the sliding groove, one end of the linkage rod and the stabilizing rod are rotationally connected with each other, the other end of the linkage rod is rotationally connected with the clamping block, and the other end of the stabilizing rod is rotationally connected at the bottom end of the sliding groove.
[0011] Preferably, a reset spring is arranged in the sliding groove, one end of the reset spring is abutted with the clamping block, and the other end of the reset spring is abutted with the top end of the sliding groove.
[0012] Preferably, an adjusting ring is slidingly arranged outside the sampling bottle, and the adjusting ring is fixedly connected with the clamping block.
[0013] Preferably, a screw hole is arranged through the adjusting ring, a locking screw is screwed and connected in the screw hole, and one end of the locking screw is abutted with the sampling bottle.
[0014] Preferably, the supporting mechanism comprises a base, a first supporting rod, a second supporting rod, a threaded cylinder and a threaded rod, the first supporting rod is fixed on the base, one end of the second supporting rod is slidingly connected with the first supporting rod, and the other end of the second supporting rod is fixed with the sampling storage table, the threaded cylinder is fixed at the bottom center of the sampling storage table, the threaded rod is rotationally connected at the top center of the base, and the threaded rod is threadedly matched in the threaded cylinder.
[0015] Preferably, the supporting mechanism further comprises a driven bevel gear, a driving bevel gear and a rocker arm, the driven bevel gear is coaxially fixed on the threaded rod, the rocker arm is rotationally connected on one side of the base, and the driving bevel gear is coaxially fixed on one end of the rocker arm and engaged with the driven bevel gear.
[0016] Preferably, an observation window is arranged on the sampling storage table, a scale line is arranged on the observation window, and a one-way valve pipe of the cover plate is connected with a disposable sampling tube.
[0017] Preferably, rollers are arranged at the four corners of the bottom of the base.
[0018] Compared with the prior art, the embodiments of the present application have the following beneficial effects:
[0019] 1. The sampling structure is formed by combining two sampling bottles in the specimen collection mechanism and connecting them through a two-way valve tube. During sampling, the sampling station can pressurize the liquid into the other sampling bottle by blowing air into the bottle containing the liquid. This enables rapid collection and sampling of the gas and allows for direct observation of the sample collection volume, achieving precise control. At the same time, the combination of the first and second check valve heads in the two-way valve tube forms a two-way check valve structure, which effectively prevents the sample from escaping from the sampling bottle and causing the virus to spread, thus eliminating safety hazards.
[0020] 2. By utilizing the anti-tipping mechanism, the sampling bottle can move the locking block during collection, causing the linkage rod and stabilizing rod to unfold in conjunction, thereby forming a stable support structure and preventing the sampling bottle from tipping over. At the same time, by making the stabilizing rod and the sampling bottle an integrated connection structure, the stability of the sampling bottle is effectively increased, and the need for additional support equipment to support the sampling bottle during sampling is eliminated, greatly increasing portability.
[0021] 3. By utilizing the support mechanism, the rotation of the threaded rod causes the threaded cylinder to move in tandem, thereby enabling rapid adjustment of the distance between the sampling storage platform and the base. This allows the sampling storage platform to be quickly adjusted to an appropriate height for sampling operations, making the device suitable for both peacetime and wartime scenarios. Furthermore, the rollers allow the sampling platform to be quickly moved to a suitable position for use, further improving its portability. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall external structure of the present invention;
[0023] Figure 2 This is a schematic diagram of the support mechanism structure of the present invention;
[0024] Figure 3 This is a schematic diagram of the sampling bottle and its connection structure of the present invention;
[0025] Figure 4 This is a schematic diagram of the anti-tipping mechanism of the present invention;
[0026] Figure 5 This is a schematic diagram of the cross-sectional structure of the bidirectional valve tube of the present invention;
[0027] In the diagram: 1. Sampling storage platform; 2. Isolation door; 3. Specimen collection mechanism; 31. Sampling bottle; 32. Two-way valve tube; 33. Cover plate; 34. Connecting tube; 35. Limiting plate; 36. First check valve head; 37. First pressure spring; 38. Second check valve head; 39. Second pressure spring; 310. Check ball; 4. Anti-tipping mechanism; 41. Slide groove; 42. Locking block; 43. Linkage rod; 44. Stabilizing rod; 45. Reset spring; 46. Adjusting ring; 47. Locking screw; 5. Support mechanism; 51. Base; 52. First support rod; 53. Second support rod; 54. Threaded cylinder; 55. Threaded rod; 56. Driven bevel gear; 57. Driving bevel gear; 58. Rocker arm; 6. Observation window; 7. Disposable sampling tube; 8. Roller. Detailed Implementation
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs; the terminology used herein in the specification of the application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application; the terms "comprising" and "having," and any variations thereof, in the specification, claims, and foregoing drawings of this application are intended to cover non-exclusive inclusion. The terms "first," "second," etc., in the specification, claims, or foregoing drawings of this application are used to distinguish different objects, not to describe a particular order.
[0029] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0030] This invention provides a mobile specimen sampling station for highly pathogenic respiratory infectious diseases, such as... Figures 1-5 As shown, it includes: sampling storage platform 1, isolation door 2, specimen collection mechanism 3, anti-tipping mechanism 4 and support mechanism 5. The sampling storage platform 1 has an internal cavity, and the isolation door 2 is located at the front end of the cavity of the sampling storage platform 1.
[0031] The specimen collection mechanism 3 is used for sampling viruses, and the specimen collection mechanism 3 is arranged on the sampling storage table 1. The specimen collection mechanism 3 comprises sampling bottles 31, bidirectional valve pipes 32, cover plates 33, docking pipes 34, limiting discs 35, first non-return heads 36, first pressure springs 37, second non-return heads 38, second pressure springs 39 and non-return beads 310. The sampling bottles 31 are arranged in plurality and placed in the cavities of the sampling storage table 1. The cover plates 33 are connected to the top of the sampling bottles 31. The docking pipes 34 are connected to the bottom of the side walls of the sampling bottles 31. The bidirectional valve pipes 32 are arranged in plurality and arranged at the shaft centers of the cover plates 33 and between the docking pipes 34 of the adjacent two sampling bottles 31. The limiting discs 35 are arranged at one end inside the bidirectional valve pipes 32. The first non-return heads 36 are arranged inside the bidirectional valve pipes 32 and abut one end of the bidirectional valve pipes 32 away from the limiting discs 35. The first pressure springs 37 are arranged between the limiting discs 35 and the first non-return heads 36. The second non-return heads 38 are slidingly connected inside the first non-return heads 36. The second pressure springs 39 are arranged in the internal cavities of the first non-return heads 36, and one end of the second pressure springs 39 abuts the second non-return heads 38 and the other end abuts the first non-return heads 36. The non-return beads 310 are slidingly connected inside the first non-return heads 36 and abut one end of the first non-return heads 36. Two sampling bottles 31 constitute a group and are connected through the bidirectional valve pipes 32, and one of the sampling bottles 31 is empty and the other is filled with liquid.
[0032] The anti-toppling mechanism 4 is arranged on the sampling bottle 31 and is used for placing the sampling bottle 31 to prevent toppling. The anti-toppling mechanism 4 comprises sliding grooves 41, clamping blocks 42, linkage rods 43 and stabilizing rods 44. The sliding grooves 41 are concavely arranged on the outer walls of the sampling bottles 31. The clamping blocks 42 are slidingly clamped in the sliding grooves 41. One end of the linkage rods 43 and the stabilizing rods 44 are rotationally connected with each other. The other end of the linkage rods 43 is rotationally connected with the clamping blocks 42. The other end of the stabilizing rods 44 is rotationally connected to the bottom end of the sliding grooves 41.
[0033] The supporting mechanism 5 is used for supporting the sampling storage table 1 and is arranged at the bottom of the sampling storage table 1. The supporting mechanism 5 comprises a base 51, first supporting rods 52, second supporting rods 53, a threaded cylinder 54 and a threaded rod 55. The first supporting rods 52 are fixed on the base 51. One end of the second supporting rods 53 is slidingly connected with the first supporting rods 52, and the other end is fixed with the sampling storage table 1. The threaded cylinder 54 is fixed at the bottom center of the sampling storage table 1. The threaded rod 55 is rotationally connected at the top center of the base 51 and is threadedly fitted in the threaded cylinder 54.
[0034] It should be noted that, since the current sampling table adopts the way of exhalation for sampling, during the process of exhalation, on the one hand, the gas volume of the sample cannot be directly observed and cannot be accurately controlled, on the other hand, part of the gas will escape during exhalation, leading to the spread of the virus through droplets, contact, aerosol and other ways, and further leading to the further spread of the virus, which has great safety hazards. In order to solve this problem, the specimen collection mechanism 3, the anti-toppling mechanism 4 and the supporting mechanism 5 are arranged in the present scheme, the two sampling bottles 31 in the specimen collection mechanism 3 are combined to form a sampling structure, and are connected through the bidirectional valve pipe 32, so that the sampling table can blow gas into the sampling bottle 31 storing liquid during sampling, and then press the liquid into the other sampling bottle 31, thereby realizing rapid collection and sampling of gas, and directly observing the collection amount of the sample, realizing accurate control, and at the same time, the first check head 36 and the second check head 38 in the bidirectional valve pipe 32 are combined to form a bidirectional check structure, thereby effectively avoiding the spread of the virus caused by the escape of the sample in the sampling bottle 31 during sampling, and eliminating the safety hazards;
[0035] The arrangement of the anti-toppling mechanism 4 enables the sampling bottle 31 to be expanded through the movement of the clamping block 42 to drive the linkage rod 43 and the stabilizing rod 44, thereby forming a stable support structure, so as to avoid the situation of the sampling bottle 31 toppling over;
[0036] The arrangement of the supporting mechanism 5 enables the threaded rod 55 to be screwed with the threaded cylinder 54 through rotation, thereby enabling the distance between the sampling storage table 1 and the base 51 to be quickly adjusted, and thereby enabling the sampling storage table 1 to be quickly adjusted to an appropriate height for sampling operation according to actual conditions.
[0037] Specifically, in the embodiment, the scheme mainly comprises a sampling storage platform 1, an isolation door 2, a specimen sampling mechanism 3, an anti-toppling mechanism 4, a supporting mechanism 5, an observation window 6, a disposable sampling tube 7 and a roller 8. In use, the sampling platform is first moved to a proper height, then the threaded cylinder 54 is screwed to adjust the sampling storage platform 1 to a proper height, then the sampling bottles 31 are taken out from the sampling storage platform 1, then the linkage rods 43 and the stabilizing rods 44 are controlled to be unfolded, then the adjacent two sampling bottles 31 are screwed with the butt joint pipes 34 through the two-way valve pipes 32, thereby forming an integral whole, and one of the sampling bottles 31 is filled with liquid, and the disposable sampling tube 7 is connected to the sampling bottle 31 filled with liquid, and the sampling can be started. In the sampling, the patient blows air into the disposable sampling tube 7, the air enters the sampling bottle 31 through the two-way valve pipe 32, and the liquid in the sampling bottle 31 is pressed into the other sampling bottle 31, thereby completing the sampling operation, and the first check valve 36 and the second check valve 38 prevent the liquid in the other sampling bottle 31 from flowing into the sampling bottle 31 filled with specimen, and also prevent the gas in the sampling bottle 31 filled with specimen from escaping.
[0038] As shown in the further preferred embodiment of the present application, Figures 1-5 a screw hole is formed in the center of the cover plate 33, the inner wall of the butt joint pipe 34 is provided with threads, and the outer wall of the two-way valve pipe 32 is provided with two groups of reverse threads, and the two-way valve pipe 32 is screwed with the cover plate 33 and the butt joint pipe 34.
[0039] In the embodiment, the two-way valve pipe 32 can be quickly connected and separated with the cover plate 33 and the butt joint pipe 34 through the threads.
[0040] As shown in the further preferred embodiment of the present application, Figures 1-5 a reset spring 45 is arranged in the sliding groove 41, one end of the reset spring 45 abuts against the clamping block 42, and the other end abuts against the top end of the sliding groove 41.
[0041] In the embodiment, the reset spring 45 pushes the clamping block 42, thereby enabling the linkage rods 43 and the stabilizing rods 44 to be quickly unfolded to form a stable support structure.
[0042] As shown in the further preferred embodiment of the present application, Figures 1-5 the outer part of the sampling bottle 31 is sleeved with an adjusting ring 46, and the adjusting ring 46 is connected and fixed with the clamping block 42.
[0043] In the embodiment, the adjusting ring 46 enables the plurality of clamping blocks 42 to be synchronously linked.
[0044] As shown in the further preferred embodiment of the present application, Figures 1-5As shown, screw holes are arranged through the adjusting ring 46, and locking screws 47 are screwed in the screw holes, and one end of the locking screws 47 abuts against the sampling bottle 31.
[0045] In the embodiment, the adjusting ring 46 is positioned by the locking screws 47, so as to realize the positioning effect on the position of the clamping block 42.
[0046] In the further preferred embodiment of the present application, as shown in the drawings, Figures 1-5 As shown, the supporting mechanism 5 further comprises a driven bevel gear 56, a driving bevel gear 57 and a rocker arm 58, the driven bevel gear 56 is coaxially fixed on the threaded rod 55, the rocker arm 58 is rotationally connected on one side of the base 51, and the driving bevel gear 57 is coaxially fixed on one end of the rocker arm 58 and meshes with the driven bevel gear 56.
[0047] In the embodiment, the driving bevel gear 57 is driven to rotate by the rocker arm 58, so as to drive the driven bevel gear 56 to mesh and rotate synchronously by the driven bevel gear 56.
[0048] In the further preferred embodiment of the present application, as shown in the drawings, Figures 1-5 As shown, the sampling storage table 1 is provided with an observation window 6, and the observation window 6 is provided with scale lines, and the one-way valve pipe 32 of the cover plate 33 is connected with a disposable sampling pipe 7.
[0049] In the embodiment, the disposable sampling pipe 7 is used to guide the gas, so as to avoid the gas from escaping, and the amount of the collected gas can be directly observed through the observation window 6.
[0050] In the further preferred embodiment of the present application, as shown in the drawings, Figures 1-5 As shown, the bottom of the base 51 is provided with rollers 8 at four corners.
[0051] In the embodiment, the rollers 8 can be used to quickly move the sampling table to a proper position for use.
[0052] It should be noted that, for the foregoing embodiments, in order to simply describe, they are all expressed as a series of action combinations, but those skilled in the art should know that the present application is not limited by the action sequence described, because according to the present application, some steps can be performed in other sequence or simultaneously. Secondly, those skilled in the art should know that the embodiments described in the specification all belong to preferred embodiments, and the actions and modules involved are not necessarily necessary for the present application.
[0053] In several embodiments provided by the present application, it should be understood that the disclosed apparatus can be implemented in other manners. For example, the division of the apparatus embodiments described above is merely illustrative, and the division of the units can be different, for example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the display or discussion of the coupling or communication connection between the units can be indirect coupling or communication connection through some interfaces, or direct coupling or communication connection between the units, which can be electrical, mechanical or other forms.
[0054] The units described as separate components above can or can not be physically separate, and the components shown as units can or can not be physical units, i.e., can be located in one place or distributed on multiple network units. Part or all of the units can be selected according to actual needs to achieve the purpose of the embodiment.
[0055] The above embodiments are only used to illustrate the technical solutions of the present application, and not to limit the protection scope of the application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments. Based on these embodiments, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application. Although the present application has been described in detail with reference to the above embodiments, those skilled in the art can still combine, add, delete or make other adjustments to the features of the embodiments of the present application according to the circumstances without conflict and without creative labor, so as to obtain different, but essentially not deviating from the concept of the present application, other technical solutions. These technical solutions also belong to the scope of the present application.
Claims
1. A mobile high pathogenic respiratory infectious disease specimen sampling station, characterized in that, Include: Sampling storage platform (1), isolation door (2), specimen collection mechanism (3), anti-toppling mechanism (4) and support mechanism (5), the inside of the sampling storage platform (1) is provided with a cavity, the isolation door (2) is arranged at the front end of the cavity of the sampling storage platform (1); The specimen collection mechanism (3) is used for sampling virus, and the specimen collection mechanism (3) is arranged on the sampling storage platform (1), the specimen collection mechanism (3) includes sampling bottles (31), bidirectional valve pipes (32), cover plates (33), docking pipes (34), limiting discs (35), first non-return heads (36), first pressure springs (37), second non-return heads (38), second pressure springs (39) and non-return beads (310), the sampling bottles (31) are provided with a plurality of and placed in the cavity of the sampling storage platform (1), the cover plates (33) are connected at the top of the sampling bottles (31), the docking pipes (34) are connected at the sidewall bottom of the sampling bottles (31), the bidirectional valve pipes (32) are provided with a plurality of, and a plurality of the bidirectional valve pipes (32) are respectively arranged at the axis of the cover plate (33) and between the docking pipes (34) of adjacent two sampling bottles (31), the limiting discs (35) are arranged at one end inside the bidirectional valve pipe (32), the first non-return head (36) is arranged inside the bidirectional valve pipe (32) and abuts away from the limiting disc (35) one end in the bidirectional valve pipe (32), the first pressure spring (37) is arranged between the limiting disc (35) and the first non-return head (36), the second non-return head (38) is slidably connected in the first non-return head (36), the second pressure spring (39) is arranged in the internal cavity of the first non-return head (36), one end of the second pressure spring (39) abuts with the second non-return head (38), the other end abuts with the first non-return head (36), the non-return bead (310) is slidably connected in the first non-return head (36) and abuts at one end of the first non-return head (36), two combination of the sampling bottles (31) constitute a group, and are connected through the bidirectional valve pipe (32), and one of the sampling bottles (31) is empty, and the other sampling bottle (31) is filled with liquid; The anti-toppling mechanism (4) is arranged on the sampling bottle (31), and it is used for placing the sampling bottle (31) to pour, the support mechanism (5) is used for supporting the sampling storage platform (1) and is arranged at the bottom of the sampling storage platform (1).
2. The mobile high pathogenic respiratory disease specimen collection table of claim 1, wherein, Screw holes are provided through the center of the cover plate (33), the inner wall of the docking pipe (34) is provided with a thread, the outer wall of the bidirectional valve pipe (32) is provided with two groups of reverse threads, the bidirectional valve pipe (32) is screwed with the cover plate (33) and the docking pipe (34).
3. The mobile high pathogenic respiratory disease specimen collection station of claim 1, wherein, The anti-toppling mechanism (4) comprises a chute (41), a clamping block (42), a linkage rod (43) and a stabilizing rod (44), the chute (41) is concave arranged on the outer wall of the sampling bottle (31), the clamping block (42) is slidingly connected in the chute (41), one end of the linkage rod (43) and the stabilizing rod (44) is rotatably connected with each other, the other end of the linkage rod (43) is rotatably connected with the clamping block (42), and the other end of the stabilizing rod (44) is rotatably connected at the bottom end of the chute (41).
4. The mobile high-consequence respiratory disease specimen collection table of claim 3, wherein, The chute (41) is provided with a reset spring (45) inside, one end of the reset spring (45) abuts against the clamping block (42), and the other end abuts against the top end of the chute (41).
5. The mobile high pathogenic respiratory disease specimen collection station of claim 3, wherein, The outer part of the sampling bottle (31) is slidingly sleeved with an adjusting ring (46), and the adjusting ring (46) is fixedly connected with the clamping block (42).
6. The mobile high-consequence respiratory disease specimen collection table of claim 5, wherein, A screw hole is formed through the adjusting ring (46), and a locking screw (47) is screwed and connected in the screw hole, one end of the locking screw (47) abuts against the sampling bottle (31).
7. The mobile high-consequence respiratory disease specimen collection table of claim 1, wherein, The supporting mechanism (5) comprises a base (51), a first supporting rod (52), a second supporting rod (53), a threaded cylinder (54) and a threaded rod (55), the first supporting rod (52) is fixed on the base (51), one end of the second supporting rod (53) is slidingly connected with the first supporting rod (52), the other end is fixed with the sampling storage table (1), the threaded cylinder (54) is fixed at the bottom center of the sampling storage table (1), the threaded rod (55) is rotatably connected at the top center of the base (51), and the threaded rod (55) is threadedly matched in the threaded cylinder (54).
8. The mobile high-consequence respiratory disease specimen collection table of claim 7, wherein, The supporting mechanism (5) further comprises a driven bevel gear (56), a driving bevel gear (57) and a rocker arm (58), the driven bevel gear (56) is coaxially fixed on the threaded rod (55), the rocker arm (58) is rotatably connected on one side of the base (51), and the driving bevel gear (57) is coaxially fixed on one end of the rocker arm (58) and meshes with the driven bevel gear (56).
9. The mobile high-consequence respiratory disease specimen collection table of claim 1, wherein, An observation window (6) is arranged on the sampling storage table (1), and a scale line is arranged on the observation window (6), and a one-way valve pipe (32) of the cover plate (33) is connected with a disposable sampling tube (7).
10. The mobile high-consequence respiratory disease specimen collection table of claim 7, wherein, Rollers (8) are arranged at the bottom corners of the base (51).
Citation Information
Patent Citations
Movable highly pathogenic respiratory infectious disease specimen sampling table
CN112869779A
Waste liquid treatment device for breathing machine drainage tube
CN219558393U