Automatic rice germ remaining rate detection device

By setting up a hinged shaft frame, axle frame and support wheel in the automatic detection device for rice embryo retention rate, and adjusting the output end of the detection component with hydraulic telescopic arms, the problems of high manual strength and inaccurate material transfer in the prior art are solved, automatic detection and classification collection are realized, and detection efficiency is improved.

CN222856021UActive Publication Date: 2025-05-13MACHENG DEYING RICE CO LTD
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Patent Information

Application Number
CN202421688561.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2025-05-13
Estimated Expiration
2034-07-17

AI Technical Summary

Technical Problem

The existing automatic detection device for rice embryo retention rate has problems such as high manual strength and low detection efficiency during the detection and classification and collection process, especially the inaccurate material transfer caused by improper cylinder setting.

Method used

An automatic detection device for rice embryo retention rate is designed. By setting up articulated shaft frames, wheel shaft frames and support wheels below both ends of the shell, the power is output using hydraulic telescopic arms, so that the output end of the detection component can be adjusted without obstacles and improve the detection transmission rate.

Benefits of technology

Automatic detection and classification collection of rice embryo retention rates have been realized, manual intervention has been reduced, and detection efficiency and the accuracy of material transfer have been improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an automatic detection device for rice germ remaining rate, which relates to the technical field of rice detection, and comprises a bearing statistical assembly and a detection assembly, a feeding part assembled by bolts is arranged above one end of the bearing statistical assembly, and the detection assembly assembled by bolts is arranged on the upper side of the bearing statistical assembly. The upper portion of the other end of the bearing statistics assembly is in bolted connection with a sorting and transferring component in hinged connection with the detection assembly, and the detection assembly comprises a bolt base. According to the utility model, the hinge shaft brackets, the wheel shaft brackets and the supporting wheels are arranged below the two ends of the paired shell to carry out hinge supporting; the hydraulic telescopic arms on the two sides of one end of the shell output power to drive the output end to operate, and then the side end base, the hydraulic telescopic arms and the air cylinder base are matched to enable the output end of the shell to point to the target position needing to be input, so that the barrier-free adjustment effect is achieved, and the detection and transmission rate of equipment is increased.
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Description

Technical Field

[0001] The utility model relates to the technical field of rice detection, in particular to an automatic detection device for rice germ retention rate. Background Art

[0002] The germ retention rate of rice refers to the percentage of rice grains with all or part of the rice germ retained in high-precision white rice or finished rice samples. Rice with a germ retention rate of more than 80% is called germ-retained rice. The characteristic of this kind of rice is that the germ retention rate reaches 80%. The processing technology of germ-retained rice can retain the germ part of the rice. Although the germ only accounts for 2%-3% of the mass of the whole rice, it contains more than 66% of the nutrients of rice, so it is known as "nutritional gold".

[0003] The existing automatic rice detection device, such as application number CN202222512674.2, belongs to the field of rice germ retention rate detection when in use, and is particularly an automatic rice germ retention rate detection device. In view of the problem that the existing detected germ-retaining rice and non-germ-retaining rice are not convenient for classification and collection, and the rice needs to be manually placed in the detection area, the labor intensity is high, and the detection efficiency of the rice germ retention rate is affected, the following scheme is now proposed, which includes a rice germ retention rate detection table, the rice germ retention rate detection table is horizontally arranged and used to place the rice to be detected; a detection limit classification and collection mechanism, the detection limit classification and collection mechanism is arranged on the rice germ retention rate detection table and is used to limit the rice to be detected and collect it according to the germ retention classification, so that the automatic classification and collection of germ-retaining rice and non-germ-retaining rice can be realized; however, in the above-mentioned technology, the cylinder is mainly arranged halfway on the table plate, which is easy to cause obstruction during collection, and is not convenient for accurate transfer of materials. Therefore, the utility model proposes an automatic rice germ retention rate detection device to solve the problems existing in the prior art. Utility Model Content

[0004] In view of the above problems, the utility model proposes an automatic detection device for the germ retention rate of rice. The automatic detection device for the germ retention rate of rice mainly utilizes hinged support provided by an articulated axle frame, a wheel axle frame, and a support wheel under the two ends of the shell. The output end is driven to operate by the output power of the hydraulic telescopic arms on both sides of one end of the shell, so that the output end of the shell can point to the target position that needs to be invested under the cooperation of the side end seat, the hydraulic telescopic arm and the cylinder base, thereby achieving the effect of barrier-free adjustment and improving the detection transmission rate of the equipment.

[0005] To achieve the purpose of the utility model, the utility model is implemented by the following technical solutions: an automatic detection device for rice germ retention rate, comprising a load-bearing statistical component and a detection component, a feeding component assembled with bolts is arranged above one end of the load-bearing statistical component, a detection component assembled with bolts is arranged on the upper side of the load-bearing statistical component, and a sorting transfer component hingedly connected to the detection component is bolted above the other end of the load-bearing statistical component;

[0006] The detection component includes a bolt base, a platform, a beam, a hydraulic cylinder, a lifting base, a detection probe, a sensor and a control panel. The platform is bolted to the upper side of the load-bearing statistical component through the bolt base. The top side of the platform is provided with a beam, and the inner side of the beam is provided with a hydraulic cylinder. The output end of the hydraulic cylinder is provided with a lifting base, and the lower part of the lifting base is provided with a detection probe. The output end of the detection probe is electrically connected to the sensor and the control panel through the output.

[0007] As a preferred implementation of the present utility model, the crossbeam is in the same straight line as the central axis of the lifting base and the detection probe.

[0008] As a preferred embodiment of the utility model, the load-bearing statistical component includes a base frame, a shock-absorbing bracket, a base plate and a collection box. The top side of the base frame is connected to the base plate through shock-absorbing bracket bolts, and a collection box is arranged on the inner side of one end of the base plate.

[0009] As a preferred embodiment of the utility model, the feeding component includes a first base, a pair of plates, a first inclined plate, a first motor compartment, an active roller, a first conveyor belt and a load-bearing roller group, the first base is bolted to the top of one end of the base plate, a pair of plates is arranged above the first base, and a first inclined plate assembled with bolts is arranged at one end of the pair of plates, an active roller connected to the output end of the first motor compartment is arranged on the inner side of one end of the pair of plates, and the first conveyor belt is wrapped around the active roller, and a load-bearing roller group is arranged in the duct of the first conveyor belt.

[0010] As a preferred embodiment of the utility model, the sorting and transferring component includes a second base, a wheel base, an articulated axle frame, a shell, a wheel axle frame, a support wheel, a second inclined plate, a second motor compartment, an active rod, a second conveyor belt, a side end seat, a hydraulic telescopic arm and a cylinder base. The second base is bolted to the top of the other end of the base plate, a wheel base is arranged above the outer end of the second base, an articulated axle frame is arranged above the inner end of the second base, and a shell is arranged on the top side of the articulated axle frame, a wheel axle frame is arranged below one end of the shell, and a support wheel is arranged below the wheel axle frame.

[0011] As a preferred embodiment of the utility model, a second inclined plate is provided at one end of the opposite shell, an active rod connected to the output end of the second motor compartment is provided on the inner side of one end of the opposite shell, a second conveyor belt is wrapped around the active rod, a side end seat is provided on the outer side of one end of the opposite shell, and the side end seat is connected to the cylinder base through a hydraulic telescopic arm hinge.

[0012] The beneficial effects of the utility model are:

[0013] The utility model mainly utilizes hinged support provided by hinged axle frames, wheel axle frames and supporting wheels under the two ends of the shell. After the output end is driven to operate by the output power of the hydraulic telescopic arms on both sides of one end of the shell, the output end of the shell can be pointed to the target position that needs to be invested under the cooperation of the side end seat, the hydraulic telescopic arm and the cylinder base, thereby achieving the effect of barrier-free adjustment and improving the detection transmission rate of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a three-dimensional structural schematic diagram of the utility model;

[0015] Figure 2 This is a bottom-up three-dimensional structural schematic diagram of the utility model;

[0016] Figure 3 It is a schematic diagram of the three-dimensional structure of the detection component of the utility model;

[0017] Figure 4 It is a schematic diagram of the three-dimensional structure of the sorting and transferring component of the utility model.

[0018] Among them: 1. Load-bearing statistical component; 101. Base frame; 102. Shock-absorbing bracket; 103. Base plate; 104. Collection box; 2. Feeding component; 201. First base; 202. Counter plate; 203. First inclined plate; 204. First motor cabin; 205. Active roller; 206. First conveyor belt; 207. Load-bearing roller group; 3. Detection component; 301. Bolt base; 302. Stand; 303. Crossbeam; 304. Hydraulic cylinder; 305. Lifting base; 306, detection probe; 307, sensor; 308, control panel; 4, sorting and transferring components; 401, second base; 402, wheel base; 403, articulated axle frame; 404, counter shell; 405, wheel axle frame; 406, supporting wheel; 407, second inclined plate; 408, second motor compartment; 409, active rod; 4010, second conveyor belt; 4011, side end seat; 4012, hydraulic telescopic arm; 4013, cylinder base. DETAILED DESCRIPTION

[0019] In order to deepen the understanding of the present invention, the present invention will be further described in detail below in conjunction with an embodiment. The embodiment is only used to explain the present invention and does not constitute a limitation on the protection scope of the present invention.

[0020] according to Figure 1-4 As shown, this embodiment proposes an automatic detection device for rice germ retention rate, including a load-bearing statistical component 1 and a detection component 3, a feeding component 2 assembled with bolts is arranged above one end of the load-bearing statistical component 1, a detection component 3 assembled with bolts is arranged on the upper side of the load-bearing statistical component 1, and a sorting transfer component 4 hingedly connected to the detection component 3 is bolted above the other end of the load-bearing statistical component 1;

[0021] The detection component 3 includes a bolt base 301, a platform 302, a beam 303, a hydraulic cylinder 304, a lifting base 305, a detection probe 306, a sensor 307 and a control panel 308. The platform 302 is bolted to the upper side of the load-bearing statistical component 1 through the bolt base 301. The top side of the platform 302 is provided with a beam 303, and the inner side of the beam 303 is provided with a hydraulic cylinder 304. The output end of the hydraulic cylinder 304 is provided with a lifting base 305, and the bottom of the lifting base 305 is provided with a detection probe 306. The output end of the detection probe 306 is electrically connected to the control panel 308 through the sensor 307.

[0022] The crossbeam 303 is in the same straight line as the central axis of the lifting base 305 and the detection probe 306 .

[0023] In this embodiment, when the first conveyor belt 206 drives the product to the target location, the hydraulic cylinder 304 on the beam 303 outputs power to drive the output end to operate, so that the hydraulic cylinder 304 outputs power to drive the lifting base 305 so that the detection probe 306 can effectively detect and process the products on the first conveyor belt 206. When products of different qualities are detected, relevant instructions are output through the sensor 307 and the control panel 308.

[0024] The statistical component 1 includes a base frame 101, a shock-absorbing bracket 102, a base plate 103 and a collection box 104. The top side of the base frame 101 is bolted to the base plate 103 through the shock-absorbing bracket 102, and a collection box 104 is arranged on the inner side of one end of the base plate 103.

[0025] In this embodiment, the output products of the sorting and transferring component 4 are output to the collecting box 104, and can be effectively detected and processed by the sensor accessories on the base plate 103 to achieve the effect of obtaining the detection result.

[0026] The feeding component 2 includes a first base 201, a counter plate 202, a first inclined plate 203, a first motor compartment 204, an active roller 205, a first conveyor belt 206 and a load-bearing roller group 207. The first base 201 is bolted to the top of one end of the base plate 103, a counter plate 202 is arranged above the first base 201, and a first inclined plate 203 assembled with bolts is arranged at one end of the counter plate 202, an active roller 205 connected to the output end of the first motor compartment 204 is arranged on the inner side of one end of the counter plate 202, and the first conveyor belt 206 is wrapped around the active roller 205, and a load-bearing roller group 207 is arranged in the duct of the first conveyor belt 206.

[0027] In this embodiment, when in use, the output power is outputted by the first motor cabin 204 outside one end of the plate 202 to drive the output end to operate, so that the output operation of the first motor cabin 204 can drive the active roller 205 on the plate 202 to operate, so that the active roller 205 can drive the first conveyor belt 206 to run the material to the detection position.

[0028] The sorting and transferring component 4 includes a second base 401, a wheel base 402, an articulated axle frame 403, a shell 404, a wheel axle frame 405, a support wheel 406, a second inclined plate 407, a second motor compartment 408, an active rod 409, a second conveyor belt 4010, a side end seat 4011, a hydraulic telescopic arm 4012 and a cylinder base 4013. The second base 401 is bolted to the top of the other end of the base plate 103, a wheel base 402 is arranged above the outer end of the second base 401, an articulated axle frame 403 is arranged above the inner end of the second base 401, and a shell 404 is arranged on the top side of the articulated axle frame 403, a wheel axle frame 405 is arranged below one end of the shell 404, and a support wheel 406 is arranged below the wheel axle frame 405.

[0029] In this embodiment, the hydraulic telescopic arm 4012 is then used to output power to drive the output end to telescope, so that the shell 404 and the side end seat 4011, the hydraulic telescopic arm 4012 and the cylinder base 4013 cooperate with each other to adjust the wheel base 402, the articulated axle frame 403, the shell 404, the wheel axle frame 405, and the support wheel 406 to align the shell 404 with the target position.

[0030] A second inclined plate 407 is provided at one end of the shell 404, an active rod 409 connected to the output end of the second motor cabin 408 is provided on the inner side of one end of the shell 404, a second conveyor belt 4010 is wrapped around the active rod 409, a side end seat 4011 is provided on the outer side of one end of the shell 404, and the side end seat 4011 is hingedly connected to the cylinder base 4013 through a hydraulic telescopic arm 4012.

[0031] In this embodiment, after the shell 404 is aligned with the target position, the first conveyor belt 206 inputs the material to the first inclined plate 203 and then to the second conveyor belt 4010, and the second motor compartment 408 outputs power to drive the output end to operate, so that the output power of the second motor compartment 408 can drive the second conveyor belt 4010 connected by the active rod 409 to drive the related products to be output to the second inclined plate 407 and output to the target position.

[0032] The working principle of the automatic detection device for rice germ retention rate is as follows: when in use, the first motor cabin 204 on the outer side of one end of the plate 202 outputs power to drive the output end to operate, so that the output operation of the first motor cabin 204 can drive the active roller 205 on the plate 202 to operate, so that the active roller 205 can drive the first conveyor belt 206 to run the material to the detection position, and when the first conveyor belt 206 drives the product to run to the target location, the hydraulic cylinder 304 on the beam 303 outputs power to drive the output end to operate, so that the hydraulic cylinder 304 outputs power to drive the lifting base 305 so that the detection probe 306 can effectively detect and process the products on the first conveyor belt 206, and when products of different qualities are detected, the relevant instructions are output through the sensor 307 and the control panel 308, and then the hydraulic telescopic arm 4012 is used to output power to drive the output end to telescopically operate. After the operation, the shell 404 is coordinated with the side end seat 4011, the hydraulic telescopic arm 4012 and the cylinder base 4013 to adjust the wheel base 402, the articulated axle frame 403, the shell 404, the wheel axle frame 405 and the support wheel 406 to align the shell 404 with the target position. After the shell 404 is aligned with the target position, the first conveyor belt 206 inputs the material into the first inclined plate 203 and into the second conveyor belt 4010, and the second motor cabin 408 outputs power to drive the output end to operate, so that the output power of the second motor cabin 408 can drive the second conveyor belt 4010 wrapped around the active rod 409 to drive the related products to be output to the second inclined plate 407 and output to the target position. The output products of the sorting and transfer component 4 are output to the collecting box 104, and can be effectively detected and processed by the sensor accessories on the base plate 103 to achieve the effect of obtaining the detection result.

[0033] The above shows and describes the basic principles, main features and advantages of the utility model. Those skilled in the art should understand that the utility model is not limited by the above embodiments. The above embodiments and descriptions are only for explaining the principles of the utility model. Without departing from the spirit and scope of the utility model, the utility model may have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection claimed by the utility model is defined by the attached claims and their equivalents.

Claims

1. A rice germ retention rate automatic detection device, comprising a load-bearing statistical component (1) and a detection component (3), characterized in that: A feeding component (2) assembled with bolts is arranged above one end of the load-bearing statistical component (1), a detection component (3) assembled with bolts is arranged on the upper side of the load-bearing statistical component (1), and a sorting transfer component (4) hingedly connected to the detection component (3) is bolted above the other end of the load-bearing statistical component (1); The detection component (3) comprises a bolt base (301), a platform (302), a crossbeam (303), a hydraulic cylinder (304), a lifting base (305), a detection probe (306), a sensor (307) and a control panel (308); the platform (302) is bolted to the upper side of the load-bearing statistical component (1) via the bolt base (301); the top side of the platform (302) is provided with a crossbeam (303), and the inner side of the crossbeam (303) is provided with a hydraulic cylinder (304); the output end of the hydraulic cylinder (304) is provided with a lifting base (305), and the bottom of the lifting base (305) is provided with a detection probe (306); the output end of the detection probe (306) is electrically connected to the sensor (307) and the control panel (308) through output.

2. A rice germ retention rate automatic detection device according to claim 1, characterized in that: The crossbeam (303) is located on the same straight line as the central axis of the lifting base (305) and the detection probe (306).

3. A rice germ retention rate automatic detection device according to claim 1, characterized in that: The bearing statistics component (1) comprises a base frame (101), a shock-absorbing bracket (102), a base plate (103) and a collection box (104); the top side of the base frame (101) is bolted to the base plate (103) via the shock-absorbing bracket (102), and the collection box (104) is arranged on the inner side of one end of the base plate (103).

4. A rice germ retention rate automatic detection device according to claim 3, characterized in that: The feeding component (2) includes a first base (201), a counter plate (202), a first inclined plate (203), a first motor cabin (204), an active roller (205), a first conveyor belt (206) and a bearing roller group (207), wherein the first base (201) is bolted to the top of one end of the base plate (103), a counter plate (202) is arranged above the first base (201), and a first inclined plate (203) assembled with bolts is arranged at one end of the counter plate (202), an active roller (205) connected to the output end of the first motor cabin (204) is arranged on the inner side of one end of the counter plate (202), and the first conveyor belt (206) is wound around the active roller (205), and a bearing roller group (207) is arranged in the duct of the first conveyor belt (206).

5. A rice germ retention rate automatic detection device according to claim 3, characterized in that: The sorting and transferring component (4) comprises a second base (401), a wheel base (402), an articulated shaft frame (403), a counter shell (404), a wheel shaft frame (405), a supporting wheel (406), a second inclined plate (407), a second motor cabin (408), an active rod (409), a second conveyor belt (4010), a side end seat (4011), a hydraulic telescopic arm (4012) and a cylinder base (4013), wherein the second base (401) Bolts are connected above the other end of the base plate (103), a wheel base (402) is arranged above the outer end of the second base (401), an articulated axle frame (403) is arranged above the inner end of the second base (401), and a counter shell (404) is arranged on the top side of the articulated axle frame (403), a wheel axle frame (405) is arranged below one end of the counter shell (404), and a supporting wheel (406) is arranged below the wheel axle frame (405).

6. A rice germ retention rate automatic detection device according to claim 5, characterized in that: A second inclined plate (407) is provided at one end of the opposite shell (404), an active rod (409) connected to the output end of the second motor cabin (408) is provided on the inner side of one end of the opposite shell (404), a second conveyor belt (4010) is wound around the active rod (409), a side end seat (4011) is provided on the outer side of one end of the opposite shell (404), and the side end seat (4011) is hingedly connected to a cylinder base (4013) via a hydraulic telescopic arm (4012).

Citation Information

Patent Citations

  • Automatic rice germ remaining rate detection device

    CN218502712U