Instrument for calculating proportion of mixture in to-be-detected material

By designing a mixture proportion calculator, the problems of low sorting efficiency and high maintenance workload of automatic inspection instruments in existing technologies have been solved, realizing high-precision and low-cost automatic weighing and measurement, and meeting the actual inspection needs of enterprises.

CN223710804UActive Publication Date: 2025-12-23BIAO ZHUNYUNDA TECHNOLOGY (BEIJING) CO LTD
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Patent Information

Application Number
CN202520096176.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-15
Publication Date
2025-12-23
Estimated Expiration
2035-01-15

AI Technical Summary

Technical Problem

In existing technologies, the sorting efficiency of impurities or particles mixed in the materials to be tested is low and the error rate is high. Furthermore, automatic testing instruments require the establishment of massive databases and a high maintenance workload, resulting in low stability and accuracy, which cannot meet the needs of enterprises.

Method used

A mixture proportioning calculator was designed, comprising a housing, a control module, a total weighing module, a sorting weighing module, and a data transmission module. The total weight and fractional weight of the materials are obtained through total weighing and sorting weighing. The proportions are calculated using the control module and automatically uploaded through the data transmission module, achieving automatic weighing and measurement, which complies with national standards.

Benefits of technology

It achieves high-precision, low-cost, and easy-to-operate automatic weighing and measurement, avoids massive data modeling and maintenance, meets national standards, and improves sorting efficiency and accuracy.

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Abstract

The embodiment of the utility model relates to an instrument for calculating the proportion of a mixture in a material to be detected. The instrument comprises a shell, a control module, a cover body, a total weighing module, a plurality of sorting and weighing modules and a data transmission module, the shell comprises an accommodating area; the control module is located in the accommodating area; the cover body is buckled on the shell and comprises a touch display screen; the touch display screen is electrically connected with the control module; the total weighing module comprises a total weighing sensor and a total weighing tray; the total weighing sensor is electrically connected with the control module; the total weighing tray is positioned on the cover body; the plurality of sorting and weighing modules are arranged in an arc shape and comprise a plurality of sorting and weighing sensors, a rotating panel and a plurality of sorting and weighing trays; the plurality of sorting and weighing sensors are electrically connected with the control module; the rotating panel and the plurality of sorting and weighing trays are positioned on the cover body; each sorting and weighing tray is arranged corresponding to each sorting and weighing sensor; the data transmission module is located on one side face of the shell and electrically connected with the control module.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the mixed proportion calculation field in the material of detection, especially in the mixed proportion calculation appearance of material of detection. BACKGROUND

[0002] At present, for the impurities or particles of different kinds, components and completeness mixed in the material of detection, manual operation is generally used for sorting, that is, according to the inspection standard requirement, multiple weighing, recording, sorting, calculation and other operations are carried out respectively, which is low in sorting efficiency, high in error rate and large in labor intensity.

[0003] Now, although some automatic inspection instruments also appear, they need to establish a large number of image databases for different materials, because the image comparison and weight conversion according to the particle number are not the standard national standard method, a large amount of data model needs to be corrected, and a large amount of database needs to be established for different varieties of materials, and the maintenance workload in the later use process is huge, the stability is not high, the accuracy is low, and the actual inspection demand of enterprises cannot be met. UTILITY MODEL CONTENT

[0004] The utility model aims at providing a mixed proportion calculation appearance in the material of detection, which has the advantages of high precision, low cost, easy operation, no need of modeling and data maintenance and high accuracy.

[0005] To achieve the above object, the utility model provides a mixed proportion calculation appearance in the material of detection, which comprises a shell, a control module, a cover, a total weighing module, a plurality of sorting and weighing modules and a data transmission module.

[0006] The shell comprises a bottom surface, a side surface and a containing area surrounded by the bottom surface and the side surface, wherein the front side surface has a first opening;

[0007] The control module is located in the containing area;

[0008] The cover is buckled on the upper surface of the shell and comprises a touch display screen; the touch display screen is electrically connected with the control module;

[0009] The total weighing module comprises a total weighing sensor and a total weighing tray; the total weighing sensor is located in the containing area and is electrically connected with the control module; the total weighing tray is flush with the cover plate;

[0010] The plurality of sorting and weighing modules are arranged in an arc shape, comprising a plurality of sorting and weighing sensors, a rotating panel and a plurality of sorting and weighing trays; the plurality of sorting and weighing sensors are located in the accommodation area and are electrically connected with the control module; the rotating panel and the plurality of sorting and weighing trays are located flush with the cover body; each sorting and weighing tray is correspondingly arranged with each sorting and weighing sensor.

[0011] The data transmission module is located on one side of the shell and is electrically connected with the control module.

[0012] Preferably, the cover body further comprises a material dropping port.

[0013] The material dropping port is arranged adjacent to the rotating panel and is arranged vertically with the first opening.

[0014] Further preferably, the mixture proportion calculator in the to-be-detected material further comprises a material dropping box.

[0015] The material dropping box is located at the first opening and corresponds to the material dropping port.

[0016] Preferably, the mixture proportion calculator in the to-be-detected material further comprises a sorting auxiliary module.

[0017] The sorting auxiliary module is located above the cover body and is connected with the control module.

[0018] Preferably, the mixture proportion calculator in the to-be-detected material further comprises a power module.

[0019] The power module is located in the accommodation area and is electrically connected with the control module.

[0020] Preferably, the cover body further comprises a sample box card reading area.

[0021] Preferably, the cover body further comprises a magnetic induction switch.

[0022] The magnetic induction switch is arranged adjacent to the touch display screen.

[0023] Preferably, the data transmission module comprises a power interface, a USB interface, a network interface and a TYPE-C interface.

[0024] The mixture proportion calculator in the to-be-detected material provided by the embodiment of the utility model realizes automatic weighing, automatic metering and automatic data uploading effect, and does not need to build a mass data model and maintain data in the whole process, is in line with national standards, has very high precision and is simple and easy to operate. BRIEF DESCRIPTION OF DRAWINGS

[0025] Figure 1 A structure schematic view of the mixture proportion calculating instrument in the to-be-detected material is provided for the embodiment of the utility model;

[0026] Figure 2 A part structure schematic view of the mixture proportion calculating instrument in the to-be-detected material is provided for the embodiment of the utility model;

[0027] Figure 3 A structure schematic view of the control module is provided for the embodiment of the utility model;

[0028] Figure 4 A part structure schematic view of the mixture proportion calculating instrument in the to-be-detected material is provided for the embodiment of the utility model;

[0029] Figure 5 A part structure schematic view of the mixture proportion calculating instrument in the to-be-detected material is provided for the embodiment of the utility model. DETAILED DESCRIPTION

[0030] The technical scheme of the utility model is described in further detail below by means of the drawings and embodiments.

[0031] Figure 1 A structure schematic view of the mixture proportion calculating instrument in the to-be-detected material is provided for the embodiment of the utility model, as shown in Figure 1 The utility model provides a kind of mixture proportion calculating instrument in the to-be-detected material, mainly includes: shell 1, control module 2( Figure 3 ), cover 3, total weighing module 4, multiple sorting and weighing module 5 and data transmission module 6.

[0032] Wherein, as shown in Figure 2 Shell 1 is the support structure of entire calculating instrument, specifically including bottom surface, side surface and containing area. Wherein, front side has first opening 10. Containing area is enclosed by bottom surface and side surface, mainly used to contain each module.

[0033] Cover 3 is buckled on the upper surface of shell 1, specifically can include touch display screen 31. Touch display screen 31 is electrically connected with control module 2, can be operated and displayed in the process of weighing.

[0034] In a preferred scheme, for the convenience of recycling material after weighing, cover 3 also includes blanking port 32. Blanking port 32 is vertically arranged with first opening 10.

[0035] In another optional solution, the cover 3 further comprises a sample box card reading area 33 and an electronic information acquisition area 34, both of which can scan the electronic identification such as the RFID chip and the bar code and the two-dimensional code of the sample container, and read the information such as the sample category.

[0036] In combination Figure 3 As shown, the control module 2 is a control component of each module of the mixture proportion calculator of the to-be-detected material. Specifically, it can be located in the accommodation area.

[0037] The total weighing module 4 can specifically include a total weighing sensor 41 and a total weighing tray 42. The total weighing sensor 41 is located in the accommodation area and is electrically connected with the control module 2. It is mainly used to obtain the total weight of the to-be-detected material and send the total weight to the control module 2. The total weighing tray 42 is flush with the cover 3 and is mainly used to contain the to-be-detected material.

[0038] The plurality of sorting and weighing modules 5 are arranged in an arc shape and can specifically include a plurality of sorting and weighing sensors 51, a rotating panel 52 and a plurality of sorting and weighing trays 53. The plurality of sorting and weighing sensors 51 are located in the accommodation area and are electrically connected with the control module 2. They are mainly used to obtain the partial weight of each mixture in the to-be-detected material and send the partial weight to the control module 2. The sorting panel 52 and the plurality of sorting and weighing trays 53 are flush with the cover 3. Each sorting and weighing tray 53 is correspondingly arranged with each sorting and weighing sensor 51 and can be used to contain each mixture. Each sorting and weighing sensor 51 has a unique ID, so the partial weight also has a unique ID. The sorting panel 52 and the plurality of sorting and weighing trays 53 are arranged in a region unit.

[0039] The data transmission module 6 is located on the left side of the shell 1 and is electrically connected with the control module 2, which can send the data of the control module 2 to the external host computer. The data transmission module 6 can specifically include a power interface 61, a USB interface 62, a network interface 63 and a TYPE-C interface 64.

[0040] The mixture proportion calculator of the to-be-detected material further comprises a blanking box 7. The blanking box 7 is located at the first opening 10 and corresponds to the blanking port 32.

[0041] The mixture proportion calculator of the to-be-detected material further comprises a sorting auxiliary module 8. The sorting auxiliary module 8 is located above the cover 3 and is connected with the control module 2. In a specific example, the sorting auxiliary module 8 can be implemented by using a shadowless lamp and a magnifying glass to facilitate the sorting of various mixtures in the to-be-detected material.

[0042] The mixture proportion calculation instrument for the material to be detected further comprises a power module 9. The power module 9 is located in the accommodation area and is electrically connected with the control module 2, and can provide power for the control module 2, the data transmission module 6, the total weighing module 4 and the plurality of sorting weighing modules 5.

[0043] The mixture proportion calculation instrument for the material to be detected further comprises a shortcut button 11. The shortcut button 11 is located on the cover 3 and is electrically connected with the control module 2.

[0044] As a preferred solution, in order to ensure the accuracy of weighing, the mixture proportion calculation instrument for the material to be detected further comprises leveling feet 12. The leveling feet 12 are specifically located below the shell 1, for example, can be located at the four corners.

[0045] As an optional solution, in order to ensure the connection of the line, the mixture proportion calculation instrument for the material to be detected further comprises a wiring terminal 13.

[0046] In order to facilitate the interaction between the mixture proportion calculation instrument for the material to be detected and the upper computer, a WIFI antenna 14 is further provided, which is located on the side of the shell 1.

[0047] The above introduces the components of the mixture proportion calculation instrument for the material to be detected and the connection relationship between the components, and the working principle is briefly introduced below.

[0048] Firstly, the material type is selected through the touch display screen 31, and the type selection can also be automatically completed through the built-in chip of the sample box card reading area 33 and the electronic information acquisition area 34 to scan the electronic information on the sample container.

[0049] Secondly, the total weighing tray 42 and the sorting weighing tray are peeled through the touch display screen 31.

[0050] Thirdly, the material to be detected is placed in the total weighing tray 42, so that the total weighing module 4 obtains the total weight of the material to be detected and sends it to the control module 2, and the data is displayed through the touch display screen 31.

[0051] Fourthly, the material to be detected is sorted, and the sorted material to be detected is placed in different sorting weighing trays 53 according to the material type, geometric shape, etc., and the sub-weight of each material to be detected is obtained and sent to the control module 2. The control module 2 stores the ID of the sorting weighing tray 53. Therefore, when the different types of materials to be detected are placed in the sorting weighing tray 53, only the corresponding relationship between the sorting weighing tray 53 and the material to be detected needs to be established.

[0052] In the fifth step, the control module 2 can calculate the proportion of different particle categories in the material to be detected according to the partial weight and the total weight, or send the calculation result to the upper computer through the data transmission module 6. The upper computer can also associate the material to be detected with the transport vehicle, thereby completing the proportion measurement of different categories of mixtures in the material to be detected.

[0053] The mixture proportion calculator for the material to be detected provided by the embodiment of the utility model obtains the total weight of the material to be detected through the total weighing module, obtains the partial weight of various mixtures in the material to be detected through the sorting and weighing module, and then calculates through the control module and transmits to the upper computer through the data transmission module, thereby realizing the effects of automatic weighing, automatic measurement and automatic data uploading. In the whole process, there is no need for massive data modeling and data maintenance, and the utility model meets the national standards, has very high precision and is simple and easy to operate.

[0054] The above specific embodiments further specifically describe the purpose, technical scheme and beneficial effects of the utility model, and it should be understood that the above description is only a specific embodiment of the utility model and is not used to limit the protection scope of the utility model. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model should be included in the protection scope of the utility model.

Claims

1. A mixture proportion calculator for a material to be tested, characterized in that, The mixture proportion calculation instrument for the material to be detected comprises a shell, a control module, a cover, a total weighing module, a plurality of sorting weighing modules and a data transmission module. The shell comprises a bottom surface, a side surface and an accommodation area enclosed by the bottom surface and the side surface; the front side surface has a first opening; The control module is located in the accommodation area; The cover is fastened on the upper surface of the shell and comprises a touch display screen; the touch display screen is connected with the control module; The total weighing module comprises a total weighing sensor and a total weighing tray; the total weighing sensor is located in the accommodation area and electrically connected with the control module; the total weighing tray is flush with the cover; The plurality of sorting weighing modules are arranged in an arc shape and comprise a plurality of sorting weighing sensors, a sorting panel and a plurality of sorting weighing trays; the plurality of sorting weighing sensors are located in the accommodation area and electrically connected with the control module; the sorting panel and the plurality of sorting weighing trays are flush with the cover; each sorting weighing tray is correspondingly arranged with each sorting weighing sensor; The data transmission module is located on one side surface of the shell and electrically connected with the control module.

2. The mixture proportion calculating device for a material to be detected according to claim 1, wherein The cover further comprises a material falling port; The material falling port is arranged adjacent to the sorting panel and vertically to the first opening.

3. The mixture proportion calculating device according to claim 2, wherein The mixture proportion calculation instrument for the material to be detected further comprises a material falling box; The material falling box is located at the first opening and corresponds to the material falling port.

4. The mixture proportion calculating device according to claim 1, wherein The mixture proportion calculation instrument for the material to be detected further comprises a sorting auxiliary module; The sorting auxiliary module is located above the cover and connected with the control module.

5. The mixture proportion calculating device according to claim 1, wherein The mixture proportion calculation instrument for the material to be detected further comprises a power module; The power module is located in the accommodation area and electrically connected with the control module.

6. The mixture proportion calculating device for a material to be detected according to claim 1, wherein The cover further comprises a sample box card reading area.

7. The mixture proportion calculating device for a material to be detected according to claim 1, wherein The cover further comprises a magnetic induction switch; The magnetic induction switch is arranged adjacent to the touch display screen.

8. The mixture proportion calculating device for a material to be detected according to claim 1, wherein The data transmission module comprises a power interface, a USB interface, a network interface and a TYPE-C interface.