Device for detecting experimental mouse grain irradiation dose
By designing storage components suitable for detecting irradiation doses of experimental mouse food, the problems of inaccurate and low efficiency in the prior art are solved, and efficient and accurate detection results are achieved.
Patent Information
- Application Number
- CN202421573359.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-04
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-07-04
AI Technical Summary
In the prior art, when testing the irradiation dose of experimental rat food, multiple cuvettes are required to repeatedly clean, resulting in inaccurate detection results and low efficiency.
A storage component including bottle body, bottleneck, bottle cap, label and marking line is designed. The bottle body and bottle cap are made of quartz glass, the label is thermally sensitive paper, and the marking line is laser etching. Through integrated processing of thermal melting process, it is convenient for the opening of the bottle cap and the capacity marking of potassium dichromate solution, and is directly placed in a spectrophotometer for testing.
Improve the accuracy and efficiency of detection, avoid repeated cleaning of cuvettes, and simplify the operation process.
Smart Images

Figure CN223139151U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of storage devices for experimental mouse detection agents, and specifically relates to a device for detecting the irradiation dose of experimental mouse food. Background Technique
[0002] Experimental animal feed is the only source of nutrition required for the growth, reproduction, and maintenance of the biological characteristics of experimental animals. The hygiene status of microorganisms and the like in the feed is related to the quality of experimental animals and the results of animal experiments. Since the raw materials for producing experimental animal feed come from different sources, it is difficult to avoid various types of microbial contamination during the processes of collection, transportation, and storage. An effective feed sterilization technology is the key to ensuring the hygiene quality of the feed. For the feed produced by enterprises, selecting an appropriate irradiation dose for sterilization can ensure the hygiene status of the feed.
[0003] When an enterprise selects an irradiation center to irradiate the feed it produces, it will supervise the absorbed dose of the product to ensure that the absorbed dose can meet the requirements. The potassium dichromate dosimeter solution is an acidic aqueous solution containing a certain concentration of potassium dichromate and silver dichromate. After this solution absorbs radiation energy, it will cause a change in absorbance at a specific wavelength. Within a certain dose range, the change value of absorbance is proportional to the absorbed dose. Currently, when most laboratories conduct detections, they first use a grinding wheel to cut open the potassium dichromate dosimeter vial that has absorbed the irradiation dose, and then pour the solution into a cuvette. The cuvette is then placed in a spectrophotometer for detection. When the number of dosimeter samples is large, this method requires a large number of cuvettes, but most spectrophotometers only match 4 - 5 cuvettes. The cuvettes need to be repeatedly cleaned and used during the detection, which will not only make the inspection results inaccurate but also reduce the detection efficiency.
[0004] In summary, the utility model provides a device for detecting the irradiation dose of experimental mouse food to solve the above problems. Content of the Utility Model
[0005] In order to solve the above technical problems, the utility model provides the following technical solutions:
[0006] A device for detecting the irradiation dose of experimental mouse food includes a storage component. The storage component includes a bottle body, a bottle neck, a bottle cap, a label, and a marking line. The bottle neck is located at the top of the bottle body. The bottle body is used for storing potassium dichromate solution. The bottle cap is located at the top of the bottle neck. The bottle cap is used for sealing the bottle body. The marking line is located at the interface between the bottle cap and the bottle neck. The label is located on the surface of the bottle cap.
[0007] Further, in the utility model, the bottle body, the bottle neck, and the bottle cap are all made of quartz glass material, and the label is made of thermal paper.
[0008] Further, in the present utility model, the label is adhesively bonded to the bottle cap, and the label is used to mark the volume of the potassium dichromate solution.
[0009] Further, in the present utility model, the position of the marking line is at the opening, and the marking line is processed by a laser etching process.
[0010] Further, in the present utility model, the bottle body, the bottleneck and the bottle cap are processed by an integrated heat fusion process, and the bottle body is transparent.
[0011] Beneficial effects: The present utility model has the following beneficial effects:
[0012] By providing the bottle body, the bottleneck and the bottle cap, the present utility model can store the potassium dichromate solution. The bottle body provides a storage space, and the bottleneck and the bottle cap are used to seal the potassium dichromate solution, thereby preventing the potassium dichromate solution from being contaminated. By providing the marking line, it is convenient to cut open the bottle cap, so as to carry out detection and use. By providing the label, it is convenient to mark the volume of the potassium dichromate solution, thus facilitating detection and use. Description of the drawings
[0013] Figure 1 is the front view structural schematic diagram of the present utility model;
[0014] Figure 2 is the separated state structural schematic diagram of the bottle body and the bottleneck of the present utility model;
[0015] Figure 3 is the separated state structural schematic diagram of the bottleneck and the bottle cap of the present utility model.
[0016] In the figure:
[0017] 1. Storage component; 11. Bottle body; 12. Bottleneck; 13. Bottle cap; 14. Label; 15. Marking line. Detailed implementation manners
[0018] In order to better understand the technical content of the present utility model, specific embodiments are hereby given and described in conjunction with the accompanying drawings. In the present disclosure, the aspects of the present utility model are described with reference to the drawings, and many illustrative embodiments are shown in the drawings. The embodiments of the present disclosure do not necessarily define all aspects of the present utility model. It should be understood that the various concepts and embodiments introduced above, as well as those described in more detail below, can be implemented in any of many ways, because the concepts and embodiments disclosed in the present utility model are not limited to any implementation manner. In addition, some aspects of the present utility model can be used alone, or in any suitable combination with other aspects of the present utility model.
[0019] Embodiment 1
[0020] As Figures 1 - 3 shown in the figure, this is the first embodiment of the present utility model. This embodiment provides a device for detecting the irradiation dose of experimental rat food, including a storage component 1. The storage component 1 includes a bottle body 11, a bottleneck 12, a bottle cap 13, a label 14, and a marking line 15. The bottleneck 12 is located at the top of the bottle body 11. The bottle body 11 is used to store potassium dichromate solution. The bottle cap 13 is located at the top of the bottleneck 12. The bottle cap 13 is used to seal the bottle body 11. The marking line 15 is located at the interface between the bottle cap 13 and the bottleneck 12. The label 14 is located on the surface of the bottle cap 13.
[0021] As Figures 1 - 3 shown, the bottle body 11, the bottleneck 12, and the bottle cap 13 are integrally processed by a thermal fusion method. After processing and forming, the top of the bottle cap 13 is in an open state. After adding potassium dichromate solution to the inner cavity of the bottle body 11, the bottle cap 13 is sealed again by a thermal fusion method, so that the potassium dichromate solution can be stored. The marking line 15 is processed by a laser etching process, which is convenient for dividing the bottle cap 13 during subsequent use. The label 14 is used to mark the capacity of the potassium dichromate solution for subsequent taking and using. When in use, after the potassium dichromate solution absorbs the irradiation dose, the bottleneck 12 is cut open and directly put into a spectrophotometer for detection, thereby improving the detection accuracy and detection efficiency.
[0022] Embodiment 2
[0023] Referring to Figures 1 - 3 , this is the second embodiment of the present utility model. This embodiment is based on the previous embodiment.
[0024] In this embodiment, the bottle body 11, the bottleneck 12, and the bottle cap 13 are all made of quartz glass material, and the label 14 is made of thermal paper.
[0025] The label 14 is adhered to the bottle cap 13, and the label 14 is used to mark the capacity of the potassium dichromate solution.
[0026] The position of the marking line 15 is the opening, and the marking line 15 is processed by a laser etching process.
[0027] The bottle body 11, the bottleneck 12, and the bottle cap 13 are processed by an integral thermal fusion process, and the bottle body 11 is transparent.
[0028] As Figures 1 - 3 shown, the storage component 1 is in a transparent state and can have good light transmittance, so that it is convenient for a spectrophotometer to detect. The bottle cap 13 can be divided along the marked position of the marking line 15 by a grinding wheel, so that it can be used for detection.
[0029] In use, the bottle body 11, the bottleneck 12 and the bottle cap 13 are integrally processed by means of heat fusion. After processing and forming, the top of the bottle cap 13 is in an open state. After adding the potassium dichromate solution into the inner cavity of the bottle body 11, the bottle cap 13 is sealed again by means of heat fusion, so that the potassium dichromate solution can be stored. The marking line 15 is processed by means of laser etching, which is convenient for dividing the bottle cap 13 during subsequent use. The label 14 is used to mark the capacity of the potassium dichromate solution for subsequent taking and use. When in use, after the potassium dichromate solution absorbs the irradiation dose, the bottleneck 12 is cut open and directly placed into a spectrophotometer for detection, thereby improving the detection accuracy and detection efficiency.
[0030] The standard parts used in this application document can all be purchased from the market, and can also be customized according to the descriptions in the specification and the drawings. The specific connection methods of each part all adopt conventional means such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment all adopt conventional models in the prior art. The control method is automatically controlled by a controller. The control circuit of the controller can be realized by simple programming by those skilled in the art in this field, which belongs to the common general knowledge in this field. And this application document is mainly used to protect the mechanical device, so the control method and the circuit connection will not be explained in detail in this application document.
[0031] Although the present utility model has been disclosed above with the preferred embodiments, it is not intended to limit the present utility model. Those with ordinary knowledge in the technical field to which the present utility model belongs can make various changes and modifications without departing from the spirit and scope of the present utility model. Therefore, the protection scope of the present utility model shall be subject to that defined by the claims.
Claims
1. An apparatus for detecting the irradiation dose of experimental rodent food, comprising a storage component (1), characterized in that: The storage component (1) includes a bottle body (11), a bottle neck (12), a bottle cap (13), a label (14) and a marking line (15). The bottle neck (12) is located at the top of the bottle body (11). The bottle body (11) is used for storing potassium dichromate solution. The bottle cap (13) is located at the top of the bottle neck (12). The bottle cap (13) is used to seal the bottle body (11). The marking line (15) is located at the interface between the bottle cap (13) and the bottle neck (12). The label (14) is located on the surface of the bottle cap (13).
2. The device for detecting the irradiation dose of experimental mouse food according to claim 1, wherein: The bottle body (11), the bottle neck (12) and the bottle cap (13) are all made of quartz glass, and the label (14) is made of thermal paper.
3. The device for detecting the irradiation dose of experimental mouse food according to claim 1, wherein: The label (14) is adhered to the bottle cap (13), and the label (14) is used to mark the volume of the potassium dichromate solution.
4. The device for detecting the irradiation dose of experimental mouse food according to claim 1, characterized in that: The position of the marking line (15) is an opening, and the marking line (15) is processed by a laser etching process.
5. The device for detecting the irradiation dose of experimental mouse food according to claim 1, wherein: The bottle body (11), the bottle neck (12) and the bottle cap (13) are processed by an integrated heat fusion process, and the bottle body (11) is transparent.