Reagent tube bracket and detection kit
By designing a reagent tube bracket made of flexible materials, the packaging and transportation problems of reagent tubes and detection chips in the formation analysis are solved, and the effects of stable support, safe transportation and cost control are achieved.
Patent Information
- Application Number
- CN202420464553.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-11
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-03-11
AI Technical Summary
In the analysis of the formation, how to effectively package and transport a wide variety of reagent tubes, detection chips and other components to avoid leakage and contamination, while reducing costs and management complexity.
A reagent tube carrier made of a flexible material is designed with a plurality of holes for receiving the reagent tube and at least one groove for receiving the detection chip device. The bracket is constructed by a base plate and a hole layer, providing stable support and adapts to different sizes of reagent tubes through large and small diameter holes.
It realizes stable support and safe transportation of reagent tubes and detection chip devices, reduces the risk of leakage and pollution during the detection process, simplifies management and cost control, and at the same time adapts to different types of detection needs.
Smart Images

Figure CN222956415U_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the technical field of formed component analysis and detection kits, and in particular relates to a reagent tube bracket for formed component microscopic detection, a detection kit, a detection chip device and a reagent kit. Background Art
[0002] There are many kinds of components needed in the analysis of formed elements, including reagents for containing detection reagents and chips for carrying detection suspensions. Most reagents are liquid and contained in reagent tubes, and different types of detection reagents are required for different detection items. The corresponding detection chips will be different depending on the type of reagent and the detection item. Reagents and chips also need special protection during transportation to prevent spillage and collision. How to package these various components in a suitable way to facilitate transportation and use is a technical problem to be solved.
[0003] During urine or blood testing, a bracket is needed to support the test tube to keep it upright. However, test samples often leak and contaminate the bracket, so a bracket with simple structure and low price is needed.
[0004] Paper packaging boxes are cheap and are generally used for disposable packaging products. In the application scenarios of formed element analysis, there are blood testing reagents, urine testing reagents, feces testing reagents, and chips with different numbers of detection channels. If a set of paper packaging boxes is made for each reagent or chip, the cost and management cost will be very high.
[0005] The detection chip for formed ingredients has a liquid inlet and an exhaust port, which need to be connected to the outside air. However, the internal detection cavity requires strict control of the entry of particles. Once particles enter, it will affect the test results. How to package the detection chip for formed ingredients is also a technical issue that needs to be considered. Summary of the invention
[0006] In the present application, the inventor proposes that a reagent tube holder can well place multiple test tubes, and a detection kit can match reagents and detection chip devices, which is convenient for use and transportation.
[0007] The technical solution of the present application is a reagent tube holder for microscopic detection of formed components. The reagent tube holder includes more than two holes, which are used to accommodate reagent tubes; the reagent tube holder includes at least one groove, which is used to accommodate a detection chip device; the reagent tube holder is made of a flexible material.
[0008] The above reagent tube holder includes any one of the following technical features: TA1: The above reagent tube holder includes a bottom plate and a hole layer, and the above holes are included on the hole layer. The above holes are through holes on the hole layer, and the bottom plate supports the bottom of the reagent tube; TA2: The above holes are blind holes; TA3: The above holes include large-diameter holes and small-diameter holes; the large-diameter holes are used to place large-diameter reagent tubes; the small-diameter holes are used to place small-diameter reagent tubes.
[0009] The above reagent tube holder includes any one of the following technical features: TB1: The above groove is located at the center position of the reagent tube holder; TB2: The above groove includes an upper opening part, a bottom support surface, and front and rear support walls; TB3: The above groove includes an upper opening part, a bottom support surface, front and rear support walls, and left and right support walls; TB4: The depth of the above groove is greater than the depth of the above holes.
[0010] The above reagent tube holder is made of any one of polyethylene foam, polyethylene foam cotton, polyurethane foam, polystyrene foam, cross-linked polyethylene foam, and polypropylene foam.
[0011] The technical solution of the present application can also be a detection kit for microscopic detection of formed elements, including the above reagent tube holder for microscopic detection of formed elements; at least one detection chip device; one surface of at least one detection chip device is placed close to the above reagent tube holder.
[0012] One surface of at least one detection chip device is close to the inner surface of the groove of the above reagent tube holder.
[0013] The above detection chip device includes a formed element detection chip and a chip package, and the above formed element detection chip is sealed in the chip package.
[0014] The above detection kit includes any one of the following technical features: TC1: The above formed element detection chip includes a detection channel, a liquid inlet, and an exhaust port; TC2: The thickness of the formed element detection chip is less than 20 millimeters; TC3: The above chip package is an aluminum foil sealed bag; TC4: The above chip package includes one or two prefabricated openings; TC5: The above formed element detection chip includes two or more detection channels, two liquid inlets or multiple liquid inlets; TC6: The formed element detection chip includes a single-channel formed element detection chip and a multi-channel formed element detection chip; TC7: The thickness of the formed element detection chip is less than 10 millimeters.
[0015] The above detection kit further includes reagent tubes; the number of the above reagent tubes corresponds to the number of holes on the reagent tube holder.
[0016] The above reagent tubes include large-diameter reagent tubes and small-diameter reagent tubes; the above holes include large-diameter holes and small-diameter holes; the size and quantity of the large-diameter reagent tubes correspond to the size and quantity of the large-diameter holes; the size and quantity of the small-diameter reagent tubes correspond to the size and quantity of the small-diameter holes.
[0017] The above detection kit includes 80 reagent tubes, and the reagent tube holder includes 80 holes; it also includes 40 detection chip devices; the above detection chip devices include formed element detection chips; each formed element detection chip includes two detection channels; the above reagent tubes include 40 staining dilution A reagent tubes and 40 staining dilution B reagent tubes.
[0018] The above detection kit includes 10 reagent tubes, and the reagent tube holder includes 10 holes; it includes 5 detection chip devices, and the above detection chip devices include formed element detection chips; each formed element detection chip includes two detection channels.
[0019] The above detection kit further includes a protective backing plate, which is placed on the above reagent tube holder to protect the top of the reagent tubes.
[0020] The above detection kit further includes a reagent kit for microscopic detection of formed elements, and the reagent kit is used to place the reagent tube holder.
[0021] The technical solution of the present application can also be a detection chip device for microscopic detection of formed elements, including a formed element detection chip and a chip package, and the above formed element detection chip is sealed in the chip package.
[0022] The formed element detection chip includes any of the following technical features: TF1: The formed element detection chip includes one detection channel, one liquid inlet and one exhaust port; TF2: The thickness of the formed element detection chip is less than 20 mm; TF3: The above chip package is an aluminum foil sealed bag; TF4: The above chip package includes one or two prefabricated openings; TF5: The above formed element detection chip includes two or more detection channels, two liquid inlets or multiple liquid inlets; TF6: The formed element detection chip includes a single-channel formed element detection chip and a multi-channel formed element detection chip; TF7: The thickness of the formed element detection chip is less than 10 mm.
[0023] The technical solution of the present application can also be a reagent kit for microscopic detection of formed elements, including a reagent kit main body and a label; the reagent kit main body is a rectangular paper box; a label area prompt pattern is set on the reagent kit main body; the label is pasted at the position indicated by the label area prompt pattern.
[0024] The above-mentioned kit includes any one of the following technical features: TE1: The prompt pattern in the label area is set on one surface of the kit body, and the label is pasted on the corresponding surface; TE2: The label is pasted on one or more adjacent surfaces; TE3: The prompt pattern in the label area is set on one surface or multiple surfaces of the kit body.
[0025] The technical effects of the above technical solution include: The holes are used to accommodate reagent tubes, and the grooves are used to accommodate the detection chip device, enabling the reagent tubes and the detection chip device to be packaged in a matching manner, which is convenient for use.
[0026] The technical effects of the above technical solution include: The bottom plate supports the bottom of the reagent tube, providing a more stable support for the reagent tube.
[0027] The technical effects of the above technical solution include: The holes are blind holes, and the bottom of the blind holes can provide a more stable support for the reagent tube.
[0028] The technical effects of the above technical solution include: The large-diameter holes and small-diameter holes facilitate the placement of reagent tubes with different apertures.
[0029] The technical effects of the above technical solution include: The groove is located at the center of the above-mentioned reagent tube bracket, facilitating the taking of the detection chip device.
[0030] The technical effects of the above technical solution include: The upper opening part of the groove, the support and clamping of the bottom support surface, the front and rear support walls, and the left and right support walls make the placement of the detection chip device safer.
[0031] The technical effects of the above technical solution include: The depth of the groove is greater than the depth of the hole, facilitating the insertion of a detection chip device with a larger size.
[0032] The technical effects of the above technical solution include: The reagent tube bracket is made of a flexible material, and the flexible material is used to protect the reagent tube and the detection chip device.
[0033] The technical effects of the above technical solution include: The reagent tube bracket protects the test tube during the transportation of the test tube. During use, it can directly serve as a test tube support bracket, saving costs. After use, it can be discarded together with the test tube, ensuring a clean and tidy detection environment.
[0034] The technical effects of the above technical solution include: In the detection kit, the reagent tube and the detection chip device can be set to match on the reagent tube bracket, which is convenient for use.
[0035] The technical effects of the above technical solution include: One surface of the detection chip device is close to the inner surface of the groove of the reagent tube bracket, and the detection chip device is placed inside the groove, which can protect the detection chip device from external extrusion and impact.
[0036] The technical effects of the above technical solution include: the formed element detection chip sealed in the chip package can maintain the cleanliness of the chip.
[0037] The technical effects of the above technical solution include: different types of formed element detection chips can be used in corresponding supporting ways, which is convenient for users.
[0038] The technical effects of the above technical solution include: the number of holes on the reagent tube bracket corresponds to the number of reagent tubes, and the number of reagent tubes corresponds to the number of detection chip devices; in the case of requiring double reagents, the number of reagent tubes is twice the number of detection chip devices. In the case of requiring single reagent, the number of reagent tubes is the same as the number of detection chip devices.
[0039] The technical effects of the above technical solution include: the protective backing plate is placed on the reagent tube bracket to protect the top of the reagent tube.
[0040] The technical effects of the above technical solution include: the kit main body and the label are separately arranged, which is convenient for printing the kit, can be matched with different reagent tubes, and the kit main body can be shared, reducing the printing cost.
[0041] The technical effects of the above technical solution include: the label identification is set on the adjacent surfaces of the kit main body, providing more space to display the label when one surface of the box is not enough for display; the labels on two different surfaces can display different contents respectively. BRIEF DESCRIPTION OF THE DRAWINGS
[0042] Figure 1 is one of the schematic structural diagrams of the reagent tube bracket;
[0043] Figure 2 is another schematic structural diagram of the reagent tube bracket;
[0044] Figure 3 is Figure 2 the cross-sectional schematic diagram of
[0045] Figure 4 is Figure 1 the cross-sectional schematic diagram of
[0046] Figure 5 is one of the schematic combined state diagrams of the detection kit;
[0047] Figure 6 is one of the schematic exploded state structural diagrams of the detection kit;
[0048] Figure 7 is another schematic exploded state structural diagram of the detection kit;
[0049] Figure 8 is another schematic exploded state structural diagram of the detection kit;
[0050] Figure 9 It is the second schematic diagram of the combined state structure of the detection kit;
[0051] Figure 10 It is the third schematic diagram of the disassembled state structure of the detection kit;
[0052] Figure 11 It is the fourth schematic diagram of the disassembled state structure of the detection kit;
[0053] Figure 12 It is the third schematic diagram of the combined state structure of the detection kit;
[0054] Figure 13 It is the fifth schematic diagram of the disassembled state structure of the detection kit;
[0055] Figure 14 It is the first schematic diagram of the disassembled state structure of the reagent kit;
[0056] Figure 15 It is the first schematic diagram of the combined state structure of the reagent kit;
[0057] Figure 16 It is the second schematic diagram of the combined state structure of the reagent kit, with the box lid open in the figure;
[0058] Figure 17 It is the schematic diagram of the formed element detection chip;
[0059] Figure 18 It is the second schematic diagram of the chip packaging;
[0060] Figure 19 It is the second schematic diagram of the chip packaging. Specific embodiments
[0061] The following further details the content of the present application in conjunction with the respective drawings. It should be noted that the following is a description of the preferred embodiments of the present invention and does not constitute any limitation to the present invention. The description of the preferred embodiments of the present invention is only for the illustration of the general principle of the present invention. The numbers such as "first", "second" and the combinations of letters and numbers such as "TA", "TB", "H" involved in the present invention are only for the convenience of description and do not represent the order relationship in time or space. The specific meanings of the combinations of letters and numbers "TA", "TB", "H" involved in the present invention are determined by the specific words they represent.
[0062] As Figure 1 , a reagent tube bracket is used for microscopic detection of formed elements 100. The reagent tube bracket includes two or more holes 110, and the holes 110 are used to accommodate reagent tubes 200; the reagent tube bracket 100 includes at least one groove 120, and the groove 120 is used to accommodate the detection chip device 300. The groove 120 is located at the central position of the reagent tube bracket 100;
[0063] As Figure 2 , the above-mentioned holes 110 include large-diameter holes 111 and small-diameter holes 112; the large-diameter holes 111 are used for placing large-diameter reagent tubes; the small-diameter holes 112 are used for placing small-diameter reagent tubes.
[0064] As Figure 3 , the above-mentioned reagent tube holder 100 includes a bottom plate 150 and a hole layer 160. The above-mentioned holes 110 are included on the hole layer 160. The above-mentioned holes 110 are through holes on the hole layer 160, and the bottom plate 150 supports the bottom of the reagent tube.
[0065] As Figure 4 , the holes 110 are blind holes; as Figure 4 , the depth of the groove is greater than the depth of the above-mentioned holes.
[0066] As Figure 1 and Figure 2 , and Figure 8 、 Figure 9 and Figure 10 , the groove 120 includes an upper opening part, a bottom support surface, and front and rear support walls.
[0067] As Figure 1 and Figure 2 , the groove 120 includes an upper opening part, a bottom support surface, front and rear support walls, and left and right support walls.
[0068] In embodiments not shown in some of the drawings, the above-mentioned reagent tube holder is made of a flexible material; or the reagent tube holder is made of any one of polyethylene foam, polyethylene foam cotton, polyurethane foam, polystyrene foam, cross-linked polyethylene foam, and polypropylene foam.
[0069] As Figure 5 and Figure 6 , a detection kit for microscopic detection of formed elements includes a reagent tube holder 100 and at least one detection chip device 300. One surface of at least one detection chip device 300 is close to the inner surface of the groove 120 of the above-mentioned reagent tube holder 100.
[0070] As Figures 11 to 13 , a detection kit for microscopic detection of formed elements, one surface of at least one detection chip device 300 is placed close to the above-mentioned reagent tube holder 100. As Figures 11 to 13 , the detection chip device 300 can be placed on one side of the reagent tube holder 100.
[0071] As Figure 5 and Figure 2, a detection kit for microscopic detection of formed elements, further comprising a reagent tube 200; the number of the reagent tubes 200 corresponds to the number of holes 110 on the reagent tube bracket 100. The reagent tubes include large-diameter reagent tubes and small-diameter reagent tubes; as Figure 2 and Figure 3 , the holes 110 include large-diameter holes 111 and small-diameter holes 112; the size and number of the large-diameter reagent tubes correspond to the size and number of the large-diameter holes; the size and number of the small-diameter reagent tubes correspond to the size and number of the small-diameter holes.
[0072] As Figure 5 and Figure 6 , it includes 80 reagent tubes, and the reagent tube bracket includes 80 holes; it further includes 40 detection chip devices; the detection chip devices include formed element detection chips; each formed element detection chip includes two detection channels; the reagent tubes include 40 staining dilution A reagent tubes and 40 staining dilution B reagent tubes.
[0073] As Figure 7 , a detection kit for microscopic detection of formed elements, further comprising a protection backing plate 500, which is placed on the reagent tube bracket 100 to protect the top of the reagent tube 200.
[0074] As Figure 8 and Figure 9 , and Figures 10 to 13 , a detection kit for microscopic detection of formed elements, includes 10 reagent tubes 200, and the reagent tube bracket 100 includes 10 holes; it includes 5 detection chip devices 300, the detection chip devices 300 include formed element detection chips; each formed element detection chip includes two detection channels.
[0075] As Figure 7 and Figure 8 , a detection kit for microscopic detection of formed elements, further comprises a reagent kit 600 for microscopic detection of formed elements, and the reagent kit 600 is used to place the reagent tube bracket 100.
[0076] As Figures 17 to 19 , a detection chip device 300 for microscopic detection of formed elements, includes a formed element detection chip 310 and a chip package 320, and the formed element detection chip 310 is sealed in the chip package 320. The detection chip device 300 includes a formed element detection chip and a chip package, and the formed element detection chip is sealed in the chip package. Figure 18 There is only one notch 321 on the chip package 320 of Figure 19 to facilitate opening the chip package.
[0077] As Figures 17 to 19 , the formed element detection chip includes a dual-channel formed element detection chip; the thickness of the formed element detection chip is less than 10 mm. In embodiments not shown in other figures, the formed element detection chip includes one detection channel, one liquid inlet, and one exhaust port. The thickness of the formed element detection chip is less than 20 mm. The above chip is packaged in an aluminum foil sealed bag; one or two prefabricated openings are included on the above chip package. The formed element detection chip includes two or more detection channels, two liquid inlets, or multiple liquid inlets. The formed element detection chip includes a single-channel formed element detection chip and a multi-channel formed element detection chip.
[0078] As Figures 14 to 16 , a kit 600 for microscopic detection of formed elements includes a kit main body 610 and a label 620; a label area prompt pattern 630 is provided on the kit main body; the label 620 is pasted at the position indicated by the label area prompt pattern 630. In embodiments not shown in some figures, the label area prompt pattern is provided on one surface of the kit main body, and the label is pasted on the corresponding surface; or the label is pasted on one or more adjacent surfaces; the label area prompt pattern is provided on one surface or multiple surfaces of the kit main body.
[0079] As Figures 14 to 16 , two label identifiers 632 in the label area prompt pattern 630 are provided on one surface A of the kit main body; the other two label identifiers 631 in the label area prompt pattern 630 are provided on another adjacent surface B of the kit main body; the label area enclosed by the label area prompt pattern 630 includes a part of surface A and a part of the adjacent surface B; the label 620 is taken as a whole, and a part of the label is pasted on surface A, and the other part of the label is pasted on surface B.
[0080] Although the present utility model is described and illustrated according to preferred embodiments and several alternative solutions, the utility model will not be limited by the specific descriptions in this specification. Other additional alternatives or equivalent components can also be used to practice the present utility model.
Claims
1. A reagent tube holder for microscopic detection of formed components, characterized in that: The reagent tube bracket includes two or more holes, and the holes are used to accommodate the reagent tubes; The reagent tube bracket includes at least one groove, and the groove is used to accommodate the detection chip device; The reagent tube bracket is made of flexible material.
2. The reagent tube bracket according to claim 1, characterized in that: Include any of the following technical features: TA1: The reagent tube bracket includes a bottom plate and a hole layer, the hole layer includes the holes, the holes are through holes on the hole layer, and the bottom plate supports the bottom of the reagent tube; TA2: The hole is a blind hole; TA3: The holes include large diameter holes and small diameter holes; The large diameter holes are used to place large diameter reagent tubes; Small diameter holes are used to accommodate small diameter reagent tubes.
3. The reagent tube bracket according to claim 1, characterized in that: Include any of the following technical features: TB1: the groove is located at the center of the reagent tube bracket; TB2: The groove includes an upper opening, a bottom support surface, and front and rear support walls; TB3: The groove includes an upper opening, a bottom support surface, front and rear support walls, and left and right support walls; TB4: The depth of the groove is greater than the depth of the hole.
4. The reagent tube bracket according to claim 1, characterized in that: The reagent tube bracket is made of any one of polyethylene foam, polyethylene foam cotton, polyurethane foam, polystyrene foam, cross-linked polyethylene foam and polypropylene foam.
5. A detection kit for microscopic detection of tangible components, characterized in that: A reagent tube holder comprising any one of claims 1 to 4, for microscopic detection of formed elements; At least one detection chip device; one surface of the at least one detection chip device is placed close to the reagent tube bracket.
6. The detection kit according to claim 5, characterized in that: One surface of at least one detection chip device is close to the inner surface of the groove of the reagent tube holder.
7. The detection kit according to claim 5, characterized in that: The detection chip device comprises a formed component detection chip and a chip package, wherein the formed component detection chip is sealed in the chip package.
8. The detection kit according to claim 7, characterized in that: Include any of the following technical features: TC1: The formed component detection chip includes a detection channel, a liquid inlet and an exhaust port; TC2: The thickness of the shaped component detection chip is less than 20 mm; TC3: The chip is packaged in an aluminum foil sealed bag; TC4: The chip package includes one or two prefabricated openings; TC5: The formed component detection chip includes two or more detection channels and two or more liquid inlets; TC6: Formed component detection chips include single-channel formed component detection chips and multi-channel formed component detection chips; TC7: The thickness of the tangible component detection chip is less than 10 mm.
9. The detection kit according to claim 5, characterized in that: Also included are reagent tubes; The number of the reagent tubes corresponds to the number of holes on the reagent tube bracket.
10. The detection kit according to claim 9, characterized in that: The reagent tubes include a large-diameter reagent tube and a small-diameter reagent tube; The holes include large-diameter holes and small-diameter holes; The size and number of large diameter reagent tubes correspond to the size and number of large diameter holes; The size and number of small diameter reagent tubes correspond to the size and number of small diameter holes.
11. The detection kit according to claim 9, characterized in that: The reagent tube holder includes 80 holes. Also included are 40 detection chip devices; The detection chip device includes a formed component detection chip; each formed component detection chip includes two detection channels; The reagent tubes include 40 dye dilution A reagent tubes and 40 dye dilution B reagent tubes.
12. The detection kit according to claim 9, characterized in that: The reagent tube bracket includes 10 holes. It comprises 5 detection chip devices, wherein the detection chip devices comprise formed component detection chips; each formed component detection chip comprises two detection channels.
13. The detection kit according to claim 5, characterized in that: It also includes a protective pad, which is placed on the reagent tube bracket and is used to protect the top of the reagent tube.
14. The detection kit according to claim 5, characterized in that: Also included is a reagent kit for microscopic detection of formed elements, the reagent kit being used to place a reagent tube holder.