Depth fusion pole type sensor
By designing a deep fusion pole-type sensor of the opening mechanism, driving mechanism and cleaning mechanism, the problem of dust intrusion of the sensor during use is solved, effectively cleaning the outer wall of the sensor, and improving working performance and service life.
Patent Information
- Application Number
- CN202510136186.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2045-02-07
AI Technical Summary
Existing deep fusion pole-column sensors are susceptible to external dust during use, resulting in reduced accuracy and reduced working performance.
A deep fusion pole-type sensor including a opening mechanism, a driving mechanism and a cleaning mechanism is designed. The sensor can be opened by the opening mechanism, the driving mechanism drives the cleaning rod to clean it, and the cleaning mechanism uses a toothed synchronization belt and a cleaning brush to clean the outer wall to effectively discharge dust.
The external wall of the sensor is fully cleaned, avoiding dust interference, and improving the working performance and service life of the sensor.
Smart Images

Figure CN119958624A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of sensors, and in particular relates to a deep fusion pole-type sensor. Background Art
[0002] The pole-type sensor is an advanced sensor technology that is widely used in various industrial and scientific research fields. With its unique structural design and highly sensitive detection performance, it plays an important role in precise measurement and data acquisition. The pole-type sensor is usually composed of multiple columnar probes, each of which can independently sense and capture tiny changes or signals, so it has high spatial resolution and signal accuracy. With the advancement of technology, the pole-type sensor has gradually developed into one of the core components of deep fusion technology. In deep fusion applications, pole-type sensors can not only be used alone, but also work highly in coordination with other sensors, equipment and systems to achieve more complex measurement and control tasks.
[0003] The measurement accuracy of the sensor is very important during use, and external interference has a great impact on it. The existing deep fusion pole-type sensor is easily invaded by external dust during use. Over time, solid dirt will form on the sensor, resulting in a decrease in the accuracy of the sensor during use. After the dust is cleaned, the flow of dust can easily interfere with the sensor, thereby reducing the sensor's working performance. Summary of the invention
[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the above-mentioned prior art and provide a deep fusion pole-type sensor.
[0005] The technical solution adopted to solve the above technical problems is: a deep fusion pole type sensor, comprising a sensor body, a base fixedly connected to the bottom of the sensor body, an input terminal fixedly connected to the top of the sensor body, and an output terminal fixedly connected to one side of the sensor body;
[0006] An opening mechanism is installed on one side of the base, a driving mechanism is installed on the top of the opening mechanism, and two cleaning mechanisms are installed inside the opening mechanism.
[0007] Furthermore, the opening mechanism includes a support seat fixedly connected to one side of the base, a buckle is fixedly connected to the top of the support seat, a hydraulic cylinder is fixedly connected to the inner wall of the buckle, two support rods are rotatably connected to the piston end of the hydraulic cylinder, and the inner walls of the two support rods are fixedly connected to a protective shell, and the two support rods are provided with a rotating shaft at the corners to be rotatably connected to the support seat, and the inner walls of the two protective shells are movably connected to the sensor body.
[0008] Through the above technical scheme, when in use, the existing deep fusion pole-type sensor uses a complex internal mechanism to comprehensively process data from multiple different sources through complex algorithms, so as to obtain more accurate and comprehensive analysis results. After a period of use, it can be unfolded using an opening mechanism so that the pole-type sensor can be opened. It can be opened when cleaning the pole-type sensor so that dust can be quickly discharged. At the same time, the special protruding structure of the outer wall of the pole-type sensor can be fully cleaned to avoid dust in the dark places between the structures, which causes the sensor to detect inaccurate data when in use, thereby reducing the working performance of the sensor. Specifically, when the input terminal and the output terminal in the sensor body are connected to other devices for use, the hydraulic cylinder on the support seat on one side of the base can be started, and its piston rod will extend to one side, so that the support rod drives the corresponding protective shell to extend to both sides, so that the sensor body can be exposed. The two protective shells are unfolded mainly to perform arc motion with the rotating shaft connected to the support seat as the center.
[0009] Furthermore, the driving mechanism includes a slide groove opened on the top of the two protective shells, the inner walls of the two slide grooves are slidably connected with connecting rods, the other ends of the two connecting rods are rotatably connected with motors, the output end of the motor is fixedly connected with a cleaning rod, the outer wall of the motor is fixedly connected with a first synchronous wheel, and the bottom of the motor is movably connected to the two protective shells.
[0010] Through the above technical scheme, after the sensor has been used for a period of time, with the movement of the opening mechanism, the sensor body can be quickly unfolded, and then the driving mechanism can be started so that the sensor can obtain a driving force when cleaning. After being used in conjunction with other mechanisms, the outer wall of the pole-type sensor can be fully cleaned to ensure the basic performance of the sensor and to fully protect the sensor, thereby greatly improving the working performance of the sensor. Specifically, the motor at the other end of the two connecting rods is started to drive the cleaning rod to perform preliminary cleaning. With the unfolding of the two protective shells, the two connecting rods will be driven to slide on the corresponding slide grooves, thereby ensuring the stability of the motor thereon, and not hindering the opening of the protective shell, and ensuring the normal use of the motor, which can perform cleaning and drive other mechanisms to perform cleaning movements.
[0011] Furthermore, the cleaning mechanism includes a first arc-shaped support body fixedly connected to the bottom of one of the protective shells, one of the bottoms of the protective shells is fixedly connected to a second arc-shaped support body, the outer wall of the first synchronous wheel is rotatably connected to a toothed synchronous belt, the outer wall of the toothed synchronous belt is meshed with two second synchronous wheels, the inner walls of the two second synchronous wheels are fixedly connected to a cleaning brush, the inner wall of the toothed synchronous belt is meshed with the first synchronous wheel, the outer walls of the first arc-shaped support body and the second arc-shaped support body are both slidably connected to the toothed synchronous belt, and the two second synchronous wheels are both located between the first arc-shaped support body and the second arc-shaped support body.
[0012] Through the above technical scheme, under the joint movement of the opening mechanism and the driving mechanism, the cleaning mechanism can be used to start rotating to fully clean the outer wall of the pole-type sensor, and the cleaning mechanism of the cleaning mechanism adopts a soft cleaning device that can change the structure without damage. Specifically, as the cleaning rod rotates, the first synchronous wheel will be driven to rotate, and then the toothed synchronous belt will be driven to rotate, and the toothed synchronous belt and the first arc-shaped support body and the second arc-shaped support body are crossed to ensure that the toothed synchronous belt maintains an arc state, so that the first arc-shaped support body and the second arc-shaped support body play an arc-shaped support role. With the rotation of the toothed synchronous belt, the cleaning brushes of the two second synchronous wheels will be driven to rotate, thereby cleaning the surface of the sensor. The two second synchronous wheels will perform an arc motion between the first arc-shaped support body and the second arc-shaped support body under the engagement with the toothed synchronous belt. With the forward and reverse rotation of the toothed synchronous belt, the cleaning brush can clean back and forth repeatedly, which ensures the cleaning effect while saving resources. In addition, with the expansion of the two protective shells, the outer wall can be fully cleaned and the dust can be discharged. The cleaning brush itself is soft and light in texture, and is not easy to be damaged or fall off during use.
[0013] The beneficial effects of the present invention are as follows: (1) The present invention can clean the outer wall of the sensor when it is in use by designing an opening mechanism, a driving mechanism and a cleaning mechanism, and can open outward and fully clean the sensor due to its special structure, thereby ensuring that the use of the sensor is not disturbed, thereby greatly improving the performance of the sensor; (2) The present invention can protect the periphery of the sensor when it is in use by designing an opening mechanism, and can open the sensor before use, and can cooperate with cleaning to clean it according to the characteristic structure of the sensor to ensure that it is not disturbed by dust; (3) The present invention uses a driving mechanism and a cleaning mechanism. After the sensor has been working for a period of time, the cleaning mechanism is started, and the cleaning brush will rotate along the inner wall of the outer shell to remove dust, water vapor and other pollutants attached to the surface. At the same time, the dust can be discharged when the sensor is opened, ensuring that the sensor surface always remains clear, avoiding the impact of dirt on the detection accuracy, effectively extending the service life of the sensor, and improving its reliability in complex environments. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a structural schematic diagram of the present invention from a first viewing angle;
[0015] Figure 2 is a structural schematic diagram of the second viewing angle of the present invention;
[0016] Figure 3 It is a front view of the present invention;
[0017] Figure 4 is a cross-sectional view of the present invention from a first viewing angle;
[0018] Figure 5 yes Figure 4 A partial enlarged view of the middle A;
[0019] Figure 6 It is a cross-sectional view from a second viewing angle of the present invention.
[0020] Figure numerals: 1. sensor body; 2. base; 3. input terminal; 4. output terminal; 5. opening mechanism; 501. support seat; 502. buckle; 503. hydraulic cylinder; 504. support rod; 505. protective shell; 6. driving mechanism; 601. slide groove; 602. connecting rod; 603. motor; 604. cleaning rod; 605. first synchronous wheel; 7. cleaning mechanism; 701. first arc-shaped support body; 702. second arc-shaped support body; 703. toothed synchronous belt; 704. second synchronous wheel; 705. cleaning brush. DETAILED DESCRIPTION
[0021] In order to make the purpose, technical solution and advantages of the present invention more clearly understood, the present invention is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0022] like Figure 1-Figure 6As shown, a deep fusion pole-type sensor of the present embodiment comprises a sensor body 1, a base 2 is fixedly connected to the bottom of the sensor body 1, an input terminal 3 is fixedly connected to the top of the sensor body 1, an output terminal 4 is fixedly connected to one side of the sensor body 1, an opening mechanism 5 is installed on one side of the base 2, the opening mechanism 5 comprises a support seat 501 fixedly connected to one side of the base 2, a buckle 502 is fixedly connected to the top of the support seat 501, a hydraulic cylinder 503 is fixedly connected to the inner wall of the buckle 502, the piston end of the hydraulic cylinder 503 is rotatably connected to two support rods 504, the inner walls of the two support rods 504 are fixedly connected to protective shells 505, the two support rods 504 are provided with rotating shafts at the corners and are rotatably connected to the support seat 501, the inner walls of the two protective shells 505 are movably connected to the sensor body 1, and when in use, the existing deep fusion pole-type sensor uses a complex internal mechanism to comprehensively process data from multiple different sources through complex algorithms, thereby To obtain more accurate and comprehensive analysis results, after using it for a period of time, the opening mechanism 5 can be used to unfold it so that the pole-type sensor can be opened. It can be opened when cleaning the pole-type sensor so that dust can be quickly discharged. At the same time, the special protruding structure of the outer wall of the pole-type sensor can be fully cleaned to avoid dust in the dark places between its structures, which causes inaccurate detection data when the sensor is in use, thereby reducing the working performance of the sensor. Specifically, when the input terminal 3 and the output terminal 4 in the sensor body 1 are connected to other devices for use, the hydraulic cylinder 503 on the support seat 501 on one side of the base 2 can be started, and its piston rod will extend to one side, so that the support rod 504 drives the corresponding protective shell 505 to extend to both sides, so that the sensor body 1 can be exposed. The two protective shells 505 are unfolded mainly to perform arc motion with the rotating shaft connected to the support seat 501 as the center.
[0023] like Figure 2As shown, a driving mechanism 6 is installed on the top of the opening mechanism 5, and the driving mechanism 6 includes a slide groove 601 opened on the top of the two protective shells 505, and the inner walls of the two slide grooves 601 are slidably connected with connecting rods 602, and the other ends of the two connecting rods 602 are rotatably connected with motors 603, and the output end of the motor 603 is fixedly connected with a cleaning rod 604, and the outer wall of the motor 603 is fixedly connected with a first synchronous wheel 605, and the bottom of the motor 603 is movably connected with the two protective shells 505. After the sensor is used for a period of time, with the movement of the opening mechanism 5, the sensor body 1 can be quickly unfolded, and then the driving mechanism 6 can be started so that the sensor obtains a driving force when cleaning. After the use of other mechanisms, the outer wall of the pole-type sensor can be fully cleaned to ensure the basic performance of the sensor, and can fully protect the sensor, thereby greatly improving the working performance of the sensor. Specifically, the motor 603 at the other end of the two connecting rods 602 is started to drive the cleaning rod 604 to perform preliminary cleaning. As the two protective shells 505 are unfolded, the two connecting rods 602 will be driven to slide on the corresponding slide groove 601, so as to ensure the stability of the motor 603 thereon, and will not hinder the opening of the protective shell 505, and can ensure the normal use of the motor 603, which can perform cleaning and drive other mechanisms to perform cleaning movements.
[0024] like Figure 4-Figure 5As shown, two cleaning mechanisms 7 are installed inside the opening mechanism 5, and the cleaning mechanism 7 includes a first arc-shaped support body 701 fixedly connected to the bottom of one of the protective shells 505, and a second arc-shaped support body 702 is fixedly connected to the bottom of one of the protective shells 505. The outer wall of the first synchronous wheel 605 is rotatably connected to a toothed synchronous belt 703, and the outer wall of the toothed synchronous belt 703 is meshed with two second synchronous wheels 704. The inner walls of the two second synchronous wheels 704 are fixedly connected with cleaning brushes 705. The inner wall of the toothed synchronous belt 703 is meshed with the first synchronous wheel 605. The outer walls of the arc support body 701 and the second arc support body 702 are both slidably connected to the toothed synchronous belt 703, and the two second synchronous wheels 704 are both located between the first arc support body 701 and the second arc support body 702. Under the joint movement of the opening mechanism 5 and the driving mechanism 6, the cleaning mechanism 7 can be used to start rotating to fully clean the outer wall of the pole type sensor, and the cleaning mechanism 7 adopts a soft cleaning device that can change the structure without damage. Specifically, with the rotation of the cleaning rod 604, The first synchronous wheel 605 is driven to rotate, and then the toothed synchronous belt 703 is driven to rotate, and the toothed synchronous belt 703 and the first arc support body 701 and the second arc support body 702 are crossed to ensure that the toothed synchronous belt 703 maintains an arc state, so that the first arc support body 701 and the second arc support body 702 play an arc support role. With the rotation of the toothed synchronous belt 703, the cleaning brushes 705 of the two second synchronous wheels 704 are driven to rotate, thereby cleaning the sensor surface. When meshing with the toothed synchronous belt 703, the synchronous wheel 704 will perform an arc motion between the first arc-shaped support body 701 and the second arc-shaped support body 702. With the forward and reverse rotation of the toothed synchronous belt 703, the cleaning brush 705 can be repeatedly cleaned back and forth, which ensures the cleaning effect while saving resources. In addition, with the unfolding of the two protective shells 505, the outer wall can be fully cleaned and dust can be discharged. The cleaning brush 705 itself is soft and light in texture, and is not easy to be damaged or fall off during use.
[0025] The working principle of this embodiment is as follows. When in use, the existing deep fusion pole-type sensor uses a complex internal mechanism to comprehensively process data from multiple different sources through a complex algorithm, so as to obtain a more accurate and comprehensive analysis result. After a period of use, when the input terminal 3 and the output terminal 4 in the sensor body 1 are connected to other devices for use, the hydraulic cylinder 503 on the support seat 501 on one side of the base 2 can be started, and its piston rod will extend to one side, so that the support rod 504 drives the corresponding protective shell 505 to extend to both sides, and the motor 603 at the other end of the two connecting rods 602 is started to drive the cleaning rod 604 to perform preliminary cleaning. The unfolding of the protective shell 505 will drive the two connecting rods 602 to slide on the corresponding slide groove 601. As the cleaning rod 604 rotates, the first synchronous wheel 605 will be driven to rotate, and then the toothed synchronous belt 703 will be driven to rotate. The toothed synchronous belt 703 and the first arc-shaped support body 701 and the second arc-shaped support body 702 are cross-shaped to ensure that the toothed synchronous belt 703 maintains an arc state. Therefore, the first arc-shaped support body 701 and the second arc-shaped support body 702 play an arc-shaped support role. As the toothed synchronous belt 703 rotates, the cleaning brushes 705 of the two second synchronous wheels 704 will be driven to rotate, thereby cleaning the sensor surface.
[0026] The above description is only a preferred embodiment of the present invention and is not intended to limit the protection scope of the present invention.
Claims
1. A deep fusion pole-type sensor, comprising a sensor body (1), characterized in that: The bottom of the sensor body (1) is fixedly connected to a base (2), the top of the sensor body (1) is fixedly connected to an input terminal (3), and one side of the sensor body (1) is fixedly connected to an output terminal (4); An opening mechanism (5) is installed on one side of the base (2), a driving mechanism (6) is installed on the top of the opening mechanism (5), and two cleaning mechanisms (7) are installed inside the opening mechanism (5).
2. The deep fusion pole type sensor according to claim 1, characterized in that: The opening mechanism (5) comprises a support seat (501) fixedly connected to one side of the base (2); a buckle ring (502) is fixedly connected to the top of the support seat (501); a hydraulic cylinder (503) is fixedly connected to the inner wall of the buckle ring (502); two support rods (504) are rotatably connected to the piston end of the hydraulic cylinder (503); and a protective shell (505) is fixedly connected to the inner walls of the two support rods (504).
3. The deep fusion pole type sensor according to claim 2, characterized in that: The two support rods (504) are both provided with rotating shafts at their corners and are rotatably connected to the support base (501), and the inner walls of the two protective shells (505) are both movably connected to the sensor body (1).
4. The deep fusion pole-type sensor according to claim 2, characterized in that: The driving mechanism (6) comprises a slide groove (601) opened at the top of two protective shells (505), the inner walls of the two slide grooves (601) are slidably connected with connecting rods (602), the other ends of the two connecting rods (602) are rotatably connected with motors (603), the output end of the motor (603) is fixedly connected with a cleaning rod (604), and the outer wall of the motor (603) is fixedly connected with a first synchronous wheel (605).
5. The deep fusion pole-type sensor according to claim 4, characterized in that: The bottom of the motor (603) is movably connected to the two protective shells (505).
6. The deep fusion pole-type sensor according to claim 4, characterized in that: The cleaning mechanism (7) comprises a first arc-shaped support body (701) fixedly connected to the bottom of one of the protective shells (505), a second arc-shaped support body (702) fixedly connected to the bottom of one of the protective shells (505), an outer wall of the first synchronous wheel (605) rotatably connected to a toothed synchronous belt (703), an outer wall of the toothed synchronous belt (703) meshing with two second synchronous wheels (704), and inner walls of the two second synchronous wheels (704) fixedly connected to cleaning brushes (705).
7. The deep fusion pole-type sensor according to claim 6, characterized in that: The inner wall of the toothed synchronous belt (703) is meshed with the first synchronous wheel (605), the outer walls of the first arc-shaped support body (701) and the second arc-shaped support body (702) are both slidably connected to the toothed synchronous belt (703), and the two second synchronous wheels (704) are both located between the first arc-shaped support body (701) and the second arc-shaped support body (702).
Citation Information
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