Neuron controller based on memristor
The design of rotating and movable blocks solves the problem of cumbersome installation of existing neuron controller circuit boards, enabling quick fixing and disassembly, and enhancing sealing and protection.
Patent Information
- Application Number
- CN202422643670.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-30
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2034-10-30
AI Technical Summary
Existing neural controllers require multiple screws when mounting the circuit board, making the installation process cumbersome and difficult to fix quickly.
The design employs a rotating block and a movable block. The rotating block and the insert block work together, and the movable spring's reset action enables the circuit board to be quickly positioned and fixed. At the same time, the connecting block and the locking block work together to enable the shell to be quickly docked and fixed, and a sealing ring is used to enhance the sealing effect.
It enables rapid installation and removal of circuit boards, improves installation efficiency, and enhances the sealing and protective effect of the casing.
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Figure CN223463200U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to neuron controller technical field, concretely is a neuron controller based on memristor. BACKGROUND
[0002] Memristor is a new type of resistor, and its resistance value can be adjusted according to the current history through it, and this characteristic makes it have great potential in simulating neurons and neural networks, and the neuron controller based on memristor can simulate the behavior of biological neurons, learn and remember, and is widely used in artificial intelligence and computer science field.
[0003] The existing neuron controller when using, in order to make the control circuit board in the control shell inside will not appear the condition of shaking, will adopt screw and fix the whole control circuit board in the inside of control shell, this leads to when needing to install and fix the control circuit board, need to use tool and rotate multiple screws in turn to fix the control circuit board, thereby not convenient for the quick fixing of control circuit board. UTILITY MODEL CONTENTS
[0004] The utility model discloses a neuron controller based on memristor to solve the problem of the inconvenient quick installation of the circuit board of the neuron controller in the prior art.
[0005] To achieve the above object, the utility model provides the following technical scheme: a neuron controller based on memristor, which comprises: a controller upper shell, a memristor body, a signal output module and a signal input module are integrated on a control circuit board, a controller lower shell is installed at the bottom of the controller upper shell, a control circuit board is installed in the controller lower shell, the memristor body, the signal output module and the signal input module are integrated on the top of the control circuit board.
[0006] A rotating block is connected to the inner wall of the controller lower shell through a pivot, an activity block is installed at the bottom of the rotating block through a groove, a pull rod penetrating through the rotating block is connected in the activity block, and a movable spring is connected between the outer side of the pull rod and the rotating block.
[0007] Preferably, the controller lower shell bottom is also installed with the plug block through the control circuit board and corresponding to the groove, and the rotating block constitutes a rotating structure between the pivot and the controller lower shell.
[0008] Preferably, the rotating block is symmetrically installed with four groups about the center line of the control circuit board.
[0009] Preferably, the inner wall of the controller upper shell is installed with a pressing block, and the bottom of the pressing block is connected with a connecting block.
[0010] Preferably, the outer side of the connecting block is sleeved with a fixing block, and the fixing block is installed on the inner wall of the lower shell of the controller.
[0011] Preferably, the top of the fixing block is installed with a sealing ring, and one side of the connecting block is installed with a clamping block.
[0012] Preferably, one side of the connecting block is installed with a pull block penetrating through the upper shell of the controller and the pressing block, and the pull block is connected with the recess of the pressing block through an extension spring.
[0013] Compared with the prior art, the neuron controller based on the memristor has the following beneficial effects: when in use, the four peripheral through holes of the control circuit board can be aligned with the plug-in blocks inside the lower shell of the controller and installed inside the lower shell of the controller, then the pull rod is pulled upward and the rotating block is rotated to the top of the control circuit board, at this time, the pull rod is loosened, the movable block is driven to move to the side of the plug-in block in the rotating block recess through the reset of the movable spring, and the movable block can limit the plug-in block, so that the rotating block cannot rotate, and the control circuit board is limited in the lower shell of the controller, thereby facilitating the user to quickly install and fix the control circuit board, which is the use feature of the neuron controller based on the memristor.
[0014] 1. The neuron controller based on the memristor can butt joint the control circuit board to the inside of the lower shell of the controller, and then rotate the rotating block so that the rotating block rotates to the outside of the plug-in block, at this time, the pull rod is loosened, and the movable block moves to the side of the plug-in block under the reset action of the movable spring, and is limited by the movable block, so that the rotating block is stably limited on the top of the control circuit board, and the control circuit board cannot move under the limiting action of the rotating block, thereby quickly fixing the control circuit board in the inside of the lower shell of the controller.
[0015] 2. The neuron controller based on the memristor can butt joint the upper shell of the controller with the lower shell of the controller, and make the connecting block at the bottom of the pressing block in the inner wall of the upper shell of the controller inserted into the through hole of the fixing block, then reset the connecting block and the clamping block through the reset action of the extension spring, so that the clamping block can be clamped in the through hole of the fixing block, thereby quickly fixing and butt jointing the upper shell of the controller with the lower shell of the controller, and making the sealing ring deform, thereby increasing the sealing effect of the upper shell of the controller and the lower shell of the controller through the sealing ring. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a top view structural schematic diagram of the upper shell of the controller of the utility model;
[0017] Figure 2 It is a front view structural schematic diagram.
[0018] Figure 3 It is the main view cut structure schematic diagram of briquetting of the utility model;
[0019] Figure 4 It is the left side structure schematic diagram of rotating block of the utility model;
[0020] Figure 5 It is the three-dimensional structure schematic diagram of rotating block of the utility model.
[0021] In the figure: 1, controller upper shell; 2, controller lower shell; 3, control circuit board; 4, memristor body; 5, signal output module; 6, signal input module; 7, rotating block; 8, movable block; 9, pull rod; 10, movable spring; 11, plug block; 12, pressure block; 13, connecting block; 14, fixed block; 15, sealing ring; 16, clamping block; 17, pull block; 18, extension spring. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0023] Please refer to Figure 1 With Figure 2 The utility model provides a kind of technical solutions: a neuron controller based on memristor, including: controller upper shell 1, memristor body 4, signal output module 5 and signal input module 6, the bottom of controller upper shell 1 is equipped with controller lower shell 2, the inside of controller lower shell 2 is equipped with control circuit board 3, memristor body 4, signal output module 5 and signal input module 6 are integrated respectively in the top of control circuit board 3;
[0024] Rotating block 7 is connected on the inner wall of controller lower shell 2 by pivot, the bottom of rotating block 7 is equipped with movable block 8 by recess, movable block 8 is connected with pull rod 9 that penetrates rotating block 7, and movable spring 10 is connected between the outer side of pull rod 9 and rotating block 7.Rod 9 is also installed in the bottom of controller lower shell 2 and is equipped with plug block 11 that passes through control circuit board 3 and corresponds to recess, and rotating structure is formed between rotating block 7 and controller lower shell 2 by pivot.Rotating block 7 is symmetrically installed with four groups about the center line of control circuit board 3.
[0025] In specific implementation, when it is needed to install the control circuit board 3 into the inside of the lower controller shell 2, the through holes around the control circuit board 3 can be aligned with the plug-in blocks 11, and then the control circuit board 3 can be installed into the inside of the lower controller shell 2. At this time, the pull rod 9 at the top of the rotating block 7 is pulled upward, and the pull rod 9 makes the movable spring 10 in a stretched state, and the pull rod 9 drives the movable block 8 in the groove of the rotating block 7 to move upward and shrink into the groove at the bottom of the rotating block 7. Then the rotating block 7 is rotated through the rotating shaft to the direction of the plug-in blocks 11, so that the rotating block 7 is rotatably sleeved to the outside of the plug-in blocks 11. When the plug-in blocks 11 are located in the groove of the rotating block, the pull rod 9 can be released, so that the pull rod 9 drives the movable block 8 to move downward through the reset action of the movable spring 10. At this time, the movable block 8 moves to one side of the plug-in blocks 11, and the movable block 8 can limit the plug-in blocks 11 in the groove of the rotating block 7, so that the rotating block 7 cannot rotate. At this time, since the rotating block 7 is rotated to the top of the control circuit board 3, when the rotating block 7 cannot rotate, the control circuit board 3 can be limited in the lower controller shell 2, so that the control circuit board 3 is conveniently and quickly limited and fixed in the lower controller shell 2.
[0026] Conversely, only the pull rod 9 needs to be pulled upward again, so that the pull rod 9 drives the movable block 8 to move upward again. At this time, the movable block 8 does not limit the plug-in blocks 11 in the groove of the rotating block 7, so that the rotating block 7 can be reversely rotated, and the rotating block 7 is rotated away from the top of the control circuit board 3. At this time, without the blocking action of the rotating block 7, the control circuit board 3 can be quickly disassembled from the inside of the lower controller shell 2, so that the control circuit board 3 is conveniently maintained.
[0027] As shown in Figure 1 , Figure 4 and Figure 5 can be seen, in use, the control circuit board 3 can be docked into the inside of the lower controller shell 2 according to the use demand, and then the rotating block 7 is rotated. When the rotating block 7 is rotated to the top of the control circuit board 3, the pull rod 9 is released. Under the reset action of the movable spring 10, the movable block 8 moves to one side of the plug-in blocks 11. Under the cooperation of the plug-in blocks 11 and the rotating block 7, the control circuit board 3 can be quickly fixed and limited in the lower controller shell 2, so that the control circuit board 3 is conveniently and quickly installed and fixed.
[0028] The inner wall of the upper shell 1 of the controller is provided with a pressing block 12, and the bottom of the pressing block 12 is provided with a connecting block 13 penetratingly connected. The outer side of the connecting block 13 is sleeved with a fixing block 14, and the fixing block 14 is installed on the inner wall of the lower shell 2 of the controller. The top of the fixing block 14 is installed with a sealing ring 15, and one side of the connecting block 13 is installed with a clamping block 16. One side of the connecting block 13 is installed with a pulling block 17 penetrating through the upper shell 1 of the controller and the pressing block 12, and the pulling block 17 is connected with a telescopic spring 18 between the recess of the pressing block 12. The connecting block 13, the clamping block 16 and the pulling block 17 are integrated.
[0029] In specific implementation, the controller based on the memristor neuron can dock the upper shell 1 of the controller and the lower shell 2 of the controller, pull the pulling block 17 on one side of the upper shell 1 of the controller outward, and the movement of the pulling block 17 can make the telescopic spring 18 sleeved outwardly in a compressed state, and the pulling block 17 can drive the connecting block 13 to move, so that the clamping block 16 on one side of the connecting block 13 is aligned with the through hole in the middle of the fixing block 14. At this time, the upper shell 1 of the controller can be pressed in the direction of the lower shell 2 of the controller, so that the connecting block in the recess at the bottom of the pressing block 12 is completely inserted into the through hole of the fixing block 14, and the clamping block 16 on one side of the connecting block 13 is moved out from the bottom of the through hole of the fixing block. Then the pulling block 17 is released, and the pulling block 17 can drive the connecting block to reset through the telescopic spring 18, so that the clamping block 16 on one side is dislocated with the through hole in the middle of the fixing block 14. The cooperation of the clamping block 16 and the fixing block 14 can quickly dock and fix the upper shell 1 of the controller and the lower shell 2 of the controller. When the upper shell 1 of the controller moves in the direction of the lower shell 2 of the controller, the pressing block in the inner wall of the upper shell 1 can press the sealing ring 15 on the fixing block 14 in the inner wall of the lower shell 2 of the controller. The sealing ring 15 can be deformed by being pressed, so as to block the gap between the upper shell 1 of the controller and the lower shell 2 of the controller, so that the waterproof and dustproof effect of the whole controller is better, and the internal control circuit board can be better protected.
[0030] As shown in Figure 1 , Figure 2 and Figure 3 known, in use, the upper shell 1 of the controller and the lower shell 2 of the controller can be quickly docked according to the use demand, and the clamping block 16 on one side of the connecting block 13 can pass through the through hole of the fixing block 14. When the clamping block 16 moves out from the bottom of the through hole of the fixing block 14, the connecting block 13 can drive the clamping block 16 to move under the reset action of the telescopic spring 18, so that the clamping block 16 is dislocated with the through hole of the fixing block 14. Under the cooperation of the clamping block 16 and the fixing block 14, the upper shell 1 of the controller and the lower shell 2 of the controller can be quickly installed and fixed.
[0031] In summary: the neuron controller based on the memristor in use, can install control circuit board 3 to the inside of controller upper shell 1 and controller lower shell 2, then through the signal input module 6 on control circuit board 3 to the signal input to the memristor body 4, at this time the conductivity of memristor body 4 will change, this process simulates the excitement and inhibition of biological neurons, then through control circuit board 3 to the signal processing, and through the signal output module to the processed signal transmission to other neurons or execute control instruction, to complete the control and execution of instruction, this is the use characteristics of the neuron controller based on the memristor, the content not described in detail in the description belongs to the prior art known to the person skilled in the art.
[0032] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments or make equivalent replacement to part of the technical features, and any modification, equivalent replacement, improvement, etc. within the spirit and principles of the utility model shall be included in the protection scope of the utility model.
Claims
1. A memristor-based neuron controller, comprising: The controller upper shell (1), the memristor body (4), the signal output module (5) and the signal input module (6) are characterized in that: the bottom of the controller upper shell (1) is provided with a controller lower shell (2), the inside of the controller lower shell (2) is provided with a control circuit board (3), and the memristor body (4), the signal output module (5) and the signal input module (6) are integrated on the top of the control circuit board (3). A rotating block (7) is connected to the inner wall of the controller lower shell (2) through a rotating shaft, the bottom of the rotating block (7) is provided with a movable block (8) through a groove, the movable block (8) is connected with a pull rod (9) penetrating through the rotating block (7), and the outer side of the pull rod (9) and the rotating block (7) are connected with a movable spring (10).
2. The memristor-based neuron controller of claim 1, wherein: The bottom of the controller lower shell (2) is also provided with an insertion block (11) penetrating through the control circuit board (3) and corresponding to the groove, and the rotating block (7) and the controller lower shell (2) are connected through a rotating shaft to form a rotating structure.
3. The memristor-based neuron controller of claim 2, wherein: The rotating block (7) is symmetrically installed about the center line of the control circuit board (3) and has four groups.
4. The memristor-based neuron controller of claim 1, wherein: The inner wall of the controller upper shell (1) is provided with a pressing block (12), and the bottom of the pressing block (12) is connected with a connecting block (13).
5. The memristor-based neuron controller of claim 4, wherein: The outer side of the connecting block (13) is sleeved with a fixed block (14), and the fixed block (14) is installed on the inner wall of the controller lower shell (2).
6. The memristor-based neuron controller of claim 5, wherein: The top of the fixed block (14) is provided with a sealing ring (15), and one side of the connecting block (13) is provided with a clamping block (16).
7. The memristor-based neuron controller according to claim 6, characterized in that: One side of the connecting block (13) is provided with a pull block (17) penetrating through the controller upper shell (1) and the pressing block (12), and the pull block (17) and the groove of the pressing block (12) are connected with a telescopic spring (18).