Wind power anchor bolt on-line noise reduction warehouse device

By designing an online noise reduction silo device for wind power anchor bolts, and utilizing a buffer structure and automated control, the problem of high noise during wind power anchor bolt production was solved, achieving noise reduction and efficient sorting, and improving safety and operational efficiency.

CN117602345BActive Publication Date: 2026-01-06NINGBO DAZHI MACHINE TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202410007026.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-01-03
Publication Date
2026-01-06
Estimated Expiration
2044-01-03

AI Technical Summary

Technical Problem

The noise generated by the sorting and recycling device during the existing wind power anchor bolt production and processing is too loud, affecting the health of workers.

Method used

Design an online noise reduction silo device for wind turbine anchors. Through a combination of buffer shaft, buffer arm, transition plate and baffle, reduce the falling height and speed of wind turbine anchors and reduce collision noise. Combined with a lift, cylinder and length sensor, the classification and collection process of wind turbine anchors is automatically controlled.

Benefits of technology

It effectively reduces noise pollution, improves the safety and efficiency of the production process, reduces labor costs, and extends the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117602345B_ABST
    Figure CN117602345B_ABST
Patent Text Reader

Abstract

The application provides a wind power anchor bolt online noise reduction material warehouse device, and belongs to the technical field of wind power anchor bolt waste recovery. The device comprises a plurality of waste frames, a waste frame frame arranged at the bottom of the plurality of waste frames, a first support and a second support respectively arranged at the two sides of the waste frame, a material collecting device arranged at one side of the first support, a first buffer shaft arranged at the upper section of the first support, a second buffer shaft arranged at the upper section of the second support, a plurality of transition plates uniformly arranged on the first buffer shaft and the second buffer shaft, a plurality of buffer arms uniformly arranged on the first buffer shaft and the second buffer shaft, and the plurality of transition plates are fixed on the first buffer shaft and the second buffer shaft through the plurality of buffer arms. The wind power anchor bolt online noise reduction material warehouse device reduces the falling height of the wind power anchor bolt, reduces the collision sound of the wind power anchor bolt and the waste frame, and reduces the noise in the operation process of the device.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the technical field of wind power anchor bolt waste recycling, and more specifically, to an online noise reduction silo device for wind power anchor bolts. Background Technology

[0002] In recent years, wind turbine anchors have been used as foundational structures to fix large wind turbines to the ground and are also important connecting components for wind turbine generator sets. During the production and processing of wind turbine anchors, it is necessary to classify and recycle defective products, damaged parts, and other waste materials from finished products for reuse.

[0003] However, existing sorting and recycling devices are too noisy, putting factory workers in a noisy working environment. Working in a noisy environment for a long time can damage workers' hearing or even cause them to lose their hearing, thereby affecting their physical health.

[0004] Therefore, in the production and processing of wind power anchors, how to reduce noise in the device that sorts and recycles defective and damaged parts from finished products has become an urgent technical problem to be solved. Summary of the Invention

[0005] Therefore, this invention provides an online noise reduction material storage device for wind power anchors, which reduces the noise of the device that sorts and recycles defective and damaged parts and other waste materials with finished products during the production and processing of wind power anchors.

[0006] To solve the above-mentioned technical problems, the present invention provides an online noise reduction material storage device for wind power anchor bolts, comprising multiple waste boxes; a waste box frame, the waste box frame being disposed at the bottom of the multiple waste boxes; a first support, the first support being disposed on one side of the waste box; a material receiving device, the material receiving device being disposed on one side of the first support; a second support, the second support being disposed on the other side of the multiple waste boxes, and the first support and the second support being arranged opposite to each other and connected through the multiple waste boxes; a first buffer shaft, the first buffer shaft being disposed on the upper section of the first support and passing through the multiple first supports; a second buffer shaft, the second buffer shaft being disposed on the upper section of the second support and passing through the multiple second supports; multiple transition plates, the multiple transition plates being evenly arranged on the first buffer shaft and the second buffer shaft and being fixedly connected to the first buffer shaft and the second buffer shaft; and multiple buffer arms, the multiple buffer arms being evenly arranged on the first buffer shaft and the second buffer shaft, and the multiple buffer arms being used to fix the multiple transition plates to the first buffer shaft and the second buffer shaft.

[0007] In this technical solution, the first and second buffer shafts of the wind turbine anchor bolt online noise reduction silo device are each equipped with multiple transition plates, which are evenly arranged on the first and second buffer shafts. The first and second buffer shafts are also equipped with multiple evenly arranged buffer arms to firmly fix the transition plates to the first and second buffer shafts, thus improving the overall stability of the device. The multiple transition plates on the first and second buffer shafts work together to reduce the height from which the wind turbine anchor bolts fall into the waste box, thereby reducing the impact noise of the wind turbine anchor bolts.

[0008] Furthermore, in this technical solution, the waste frame of the wind turbine anchor bolt online noise reduction silo device is equipped with a first support on one side, and a second support is located on the other side of the waste frame, corresponding to the first support. The first and second supports are connected through the waste frame to form a stable support structure. A waste frame is provided at the bottom of the waste frame to enhance its stability. The first support, the second support, and the waste frame increase the durability and stability of the wind turbine anchor bolt online noise reduction silo device during long-term use, and reduce maintenance costs.

[0009] In the above technical solution, the wind power anchor bolt online noise reduction silo device is set at the tail end of multiple transition plates on the second buffer shaft at an incline relative to the waste frame.

[0010] In this technical solution, the wind turbine anchor bolt online noise reduction silo device has multiple transition plates on the second buffer shaft that are inclined relative to the waste material frame, which further reduces the height from which the wind turbine anchor bolt falls to the bottom of the waste material frame and reduces noise pollution.

[0011] The wind power anchor bolt online noise reduction silo device in any of the above technical solutions also includes a baffle, which is located at the top of the buffer arm of the second buffer shaft; wherein the tail ends of the multiple transition plates located on the first buffer shaft abut against the baffle.

[0012] In this technical solution, the wind power anchor bolt online noise reduction silo device has a baffle at the top of the buffer arm of the second buffer shaft. The tail ends of multiple transition plates on the first buffer shaft abut against the baffle. The baffle provides buffering force for the multiple transition plates on the first buffer shaft during the descent process, reducing the descent speed and height of the wind power anchor bolt, and further reducing noise pollution.

[0013] The wind power anchor bolt online noise reduction silo device in any of the above technical solutions also includes a pad plate, which is located on the upper part of the first support and is lower than the connection between the first buffer shaft and the first support; and a protrusion, which is located on multiple transition plates of the first buffer shaft and close to the buffer arm of the first buffer shaft. The protrusion and the pad plate work together to limit the position of the transition plates of the first buffer shaft from falling.

[0014] In this technical solution, the pad and protrusion of the wind power anchor bolt online noise reduction material silo device work together to limit the descent height of multiple transition plates of the first buffer shaft, thereby reducing the rotation of the first buffer shaft, reducing noise pollution, and meeting the noise reduction requirements.

[0015] The wind power anchor bolt online noise reduction silo device in any of the above technical solutions further includes a lifting platform, which is mounted on the waste frame and fixedly connected to the second buffer shaft; a lifting platform support, which is located at the bottom of the lifting platform and fixes the lifting platform to the waste frame; a lifting platform base, which is mounted on the lifting platform support and rotatably connected; a lifting motor, which is mounted on the lifting platform base and connected to the second buffer shaft, driving the second buffer shaft to rotate; a worm gear, which is mounted on the lifting platform base and fixedly connected to the second buffer shaft, driving the second buffer shaft to rotate; and a first buffer arm, which is mounted on the second buffer shaft and connected to the worm gear, connecting the second buffer shaft and the worm gear.

[0016] In this technical solution, the online noise reduction silo device for wind turbine anchor bolts controls the rotation of the second buffer shaft via a lifting platform, which in turn drives the transition plate on the second buffer shaft to rotate. A lifting platform support is installed at the bottom of the lifting platform to firmly fix it to the waste material frame, ensuring the stability of the lifting platform during operation. The lifting platform base is rotatably connected to the lifting platform support, increasing the flexibility of lifting platform operation. The first buffer arm is fixedly connected to the second buffer shaft and the worm gear, and the rotation of the worm gear drives the second buffer shaft. Through the coordinated work of all components of the lifting platform, the operating efficiency of the online noise reduction silo device for wind turbine anchor bolts is improved, while also ensuring the safety and reliability of the operation process.

[0017] The wind power anchor bolt online noise reduction silo device in any of the above technical solutions also includes a cylinder mounting part, which is located on the protrusion; a cylinder, which is located on the cylinder mounting part, drives multiple transition plates of the first buffer shaft to lift upward through the cylinder.

[0018] In this technical solution, the wind power anchor bolt online noise reduction silo device lifts multiple transition plates of the first buffer shaft upwards by driving the cylinder. The cylinder is located on the cylinder mounting part on the protrusion to ensure the stability when the cylinder drives the first buffer shaft to rotate.

[0019] The wind power anchor bolt online noise reduction silo device in any of the above technical solutions also includes a length sensor, which is located at the end of the second buffer shaft and is connected to the elevator and the cylinder via telecommunications.

[0020] In this technical solution, the length sensor of the online noise reduction silo device for wind turbine anchors is electrically connected to both the elevator and the cylinder. The length sensor detects the length of the wind turbine anchor. When the length sensor detects that the anchor length equals a preset length, the cylinder drives multiple transition plates on the first buffer shaft to lift upwards, causing the anchor to roll into the receiving device. When the length sensor detects that the anchor length does not equal the preset length, the elevator drives the second buffer shaft to rotate, causing the baffle at the top of the buffer arm of the second buffer shaft and the transition plates on the second buffer shaft to rotate downwards, causing the anchor to fall into the waste bin along with the transition plates on the first and second buffer shafts. The length sensor eliminates manual operation, reduces labor costs, improves safety during production, and increases the efficiency of classifying products from defective products during the production and processing of wind turbine anchors.

[0021] The wind power anchor bolt online noise reduction material storage device in any of the above technical solutions includes a material receiving device comprising a material dropping frame, which is located on the side of the material receiving device close to the first support; a material receiving frame, which is located on the side of the material receiving device away from the first support and is fixedly connected to the material dropping frame; and a baffle, which is located on the side of the material receiving frame away from the material dropping frame and is fixedly connected to the material receiving frame.

[0022] In this technical solution, the online noise reduction silo device for wind turbine anchor bolts has a dropping frame installed on the side of the receiving device near the first support. This reduces the height of the wind turbine anchor bolts during their descent, thereby reducing noise during the finished product collection process and meeting the noise reduction requirements. A receiving baffle is also installed on one side of the receiving frame to prevent the wind turbine anchor bolts from rolling outside the receiving frame as they fall from the dropping frame.

[0023] The wind power anchor bolt online noise reduction material storage device in any of the above technical solutions includes a receiving device that further includes multiple baffles evenly arranged below the material drop frame; multiple receiving cylinders connected to the multiple baffles, which drive the multiple baffles to extend and retract; and a wind power anchor bolt sensor located on the material drop frame, which is electrically connected to the multiple receiving cylinders.

[0024] In this technical solution, the online noise reduction silo device for wind turbine anchor bolts has a stop bar installed below the unloading frame. The extension and retraction of the stop bar are controlled by a receiving cylinder to reduce the falling height of the wind turbine anchor bolts from the unloading frame to the receiving frame, thereby reducing collisions between the anchor bolts and the receiving frame and meeting noise reduction requirements. A wind turbine anchor bolt sensor is installed on the unloading frame and is electrically connected to multiple receiving cylinders to detect the falling signal of the anchor bolts and transmit the signal to the receiving cylinders.

[0025] The wind power anchor bolt online noise reduction material storage device in any of the above technical solutions also includes multiple receiving cylinder brackets. The multiple receiving cylinder brackets are located at the bottom of the multiple receiving cylinders, and the multiple receiving cylinder brackets securely fix the multiple receiving cylinders to the bottom of the dropping frame.

[0026] In this technical solution, the wind power anchor bolt online noise reduction material storage device has a material receiving cylinder bracket at the bottom of the material receiving cylinder, so that the material receiving cylinder is firmly fixed under the material receiving frame, ensuring the stability of the material receiving cylinder during operation.

[0027] The technical effects that can be achieved by adopting the technical solution of the present invention are as follows:

[0028] (1) The wind power anchor bolt online noise reduction silo device of the present invention reduces the falling height of the wind power anchor bolt by the cooperation of the transition plate on the first buffer shaft and the transition plate on the second buffer shaft, reduces the collision noise between the wind power anchor bolt and the waste box, reduces the noise during the operation of the wind power anchor bolt online noise reduction silo device, and meets the noise reduction requirements.

[0029] (2) The wind power anchor bolt online noise reduction material storage device of the present invention reduces the cost of manual operation and improves the safety of the production process by setting a length sensor at the end of the second buffer shaft. At the same time, it improves the efficiency of classifying products and defects in the production and processing of wind power anchor bolts. Attached Figure Description

[0030] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings to be used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0031] Figure 1 This is one of the structural schematic diagrams of an online noise reduction material storage device for wind power anchor bolts provided in an embodiment of the present invention.

[0032] Figure 2 This is the second structural schematic diagram of an online noise reduction material storage device for wind power anchor bolts provided in an embodiment of the present invention.

[0033] Figure 3 for Figure 2 Sectional view of AA.

[0034] Figure 4 This is the third structural schematic diagram of an online noise reduction material storage device for wind power anchor bolts provided in an embodiment of the present invention.

[0035] Figure 5 for Figure 4 A magnified view of a portion of region A in the middle.

[0036] Figure 6 This is a schematic diagram of the material receiving device provided in an embodiment of the present invention.

[0037] Explanation of reference numerals in the attached figures:

[0038] 100: Scrap box; 110: Scrap box frame; 111: Lift; 112: Lift support; 113: Lift base; 114: Lift motor; 115: Worm gear; 116: First buffer arm; 120: First support; 121: Pad; 130: Second support; 140: First buffer shaft; 150: Second buffer shaft; 160: Transition plate; 161: Protrusion; 162: Cylinder mounting part; 163: Cylinder; 170: Buffer arm; 171: Baffle; 200: Receiving device; 210: Drop rack; 220: Drop rack; 230: Receiving baffle; 240: Stop bar; 241: Receiving cylinder; 242: Receiving cylinder bracket. Detailed Implementation

[0039] To make the objectives and effects achieved by the technical means of the present invention easier to understand, the following description is provided in conjunction with provisions 1 to 2018. Figure 6 The embodiments of the present invention will be described in detail below.

[0040] like Figure 1As shown, the wind turbine anchor bolt online noise reduction silo device of this embodiment includes multiple waste frames 100 and a receiving device 200. A waste frame 110 is provided at the bottom of the waste frame 100 to enhance its stability. Furthermore, a first support 120 and a second support 130 are respectively provided on both sides of the waste frame 100. The first support 120 and the second support 130 are arranged opposite to each other and connected through the waste frame 100 to form a stable support structure. The combined action of the first support 120, the second support 130, and the waste frame 110 increases the durability and stability of the wind turbine anchor bolt online noise reduction silo device during long-term use and reduces maintenance costs. The material receiving device 200 is located on one side of the first support 120; the first buffer shaft 140 is located on the upper section of the first support 120 and passes through multiple first supports 120; the second buffer shaft 150 is located on the upper section of the second support 130 and passes through multiple second supports 130. Multiple transition plates 160 are evenly arranged on the first buffer shaft 140 and the second buffer shaft 150 and are fixedly connected to the first buffer shaft 140 and the second buffer shaft 150. Through the cooperation of the multiple transition plates 160 on the first buffer shaft 140, the height of the wind turbine anchor bolt falling into the waste box 100 is reduced, thus reducing the impact noise of the wind turbine anchor bolt. Multiple buffer arms 170 are evenly arranged on the first buffer shaft 140 and the second buffer shaft 150. The multiple buffer arms 170 of the first buffer shaft 140 and the second buffer shaft 150 are evenly arranged so that multiple transition plates 160 are firmly fixed on the first buffer shaft 140 and the second buffer shaft 150, so that the wind power anchor bolt online noise reduction silo device can reduce noise and improve the stability of the entire device.

[0041] like Figure 3 As shown in some embodiments of the wind turbine anchor bolt online noise reduction silo device of the present invention, the tail ends of multiple transition plates 160 on the second buffer shaft 150 are inclined relative to the waste frame 110. During the descent of the wind turbine anchor bolt, the wind turbine anchor bolt first falls with the multiple transition plates 160 on the first buffer shaft 140, falling to the intersection of the multiple transition plates 160 on the first buffer shaft 140 and the multiple transition plates 160 on the second buffer shaft 150. The wind turbine anchor bolt then continues to fall with the multiple transition plates 160 on the second buffer shaft 150 to the bottom of the waste frame 100, thereby reducing the height of the wind turbine anchor bolt falling to the bottom of the waste frame 100, reducing the collision noise between the wind turbine anchor bolt and the waste frame 100, and reducing noise pollution.

[0042] like Figure 3As shown in some embodiments of the wind turbine anchor bolt online noise reduction silo device of the present invention, the tail ends of multiple transition plates 160 of the first buffer shaft 140 abut against the baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150. During the production and processing of wind turbine anchor bolts, the wind turbine anchor bolts fall onto the multiple transition plates 160 on the first buffer shaft 140. At the same time, the baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 rotates downward, causing the wind turbine anchor bolts and the multiple transition plates 160 on the first buffer shaft 140 to rotate downward together, reducing the speed and height of the wind turbine anchor bolt descent, and further reducing noise pollution.

[0043] like Figure 3 As shown, in some embodiments of the wind power anchor bolt online noise reduction silo device of the present invention, a pad 121 is provided on the upper part of the first support 120, and is lower than the connection between the first buffer shaft 140 and the first support 120; a protrusion 161 is provided on a plurality of transition plates 160 of the first buffer shaft 140 and close to the buffer arm 170 of the first buffer shaft 140. The protrusion 161 and the pad 121 work together to limit the falling position of the transition plates 160 of the first buffer shaft 140, so as to reduce the rotation of the first buffer shaft 140. This not only reduces noise pollution and meets the noise reduction requirements, but also reduces the wear of the first buffer shaft 140 and extends its service life.

[0044] like Figure 4 and Figure 5 The wind turbine anchor bolt online noise reduction silo device of some embodiments of the present invention includes a lift 111 on the waste frame 110, and a lift support 112 at the bottom of the lift 111. The lift 111 is fixed to the waste frame 110 by the lift support 112 to ensure the stability of the lift 111 during operation. A lift base 113 is provided on the lift support 112 and is rotatably connected, increasing the operational flexibility of the lift 111. A lift motor 114 is provided on the lift base 113, and the lift motor 114 is connected to the second buffer shaft 150 through a worm gear 115. The worm gear 115 is fixedly connected to the first buffer arm 170116 on the second buffer shaft 150, thereby driving the second buffer shaft 150 to rotate through the lift motor 114 driving the worm gear 115. Through the coordinated work of the components of the lift 111, the operating efficiency of the wind turbine anchor bolt online noise reduction silo device is improved, while also ensuring the safety and reliability of the operation process.

[0045] like Figure 2 and Figure 3As shown, in some embodiments of the wind power anchor bolt online noise reduction silo device of the present invention, a cylinder mounting part 162 is further provided at the protrusion 161 of the plurality of transition plates 160 of the first buffer shaft 140. A cylinder 163 is provided in the cylinder mounting part 162, and the plurality of transition plates 160 of the first buffer shaft 140 are driven to lift upward by the cylinder 163. The cylinder mounting part 162 ensures the stability of the cylinder 163 when the cylinder 163 drives the first buffer shaft 140 to rotate.

[0046] In some embodiments of the wind turbine anchor bolt online noise reduction silo device of the present invention, a length sensor (not shown in the figure) is provided at the end of the second buffer shaft 150. The length sensor (not shown in the figure) avoids manual operation, reduces manual operation costs, and improves safety in the production process. The length sensor (not shown in the figure) is electrically connected to the elevator 111 and the cylinder 163 respectively. The length of the wind turbine anchor bolt is detected by the length sensor (not shown in the figure). When the length of the wind turbine anchor bolt is equal to the preset length, the elevator 111 drives the second buffer shaft 150 to rotate upward. The baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 rotates upward. At the same time, the cylinder 163, in conjunction with the baffle 171, drives the multiple transition plates 160 of the first buffer shaft 140 to lift upward, so that the wind turbine anchor bolt rolls into the receiving device 200. When the length sensor (not shown in the figure) detects that the length of the wind turbine anchor bolt is not equal to the preset length, the elevator 111 drives the second buffer shaft 150 to rotate, causing the baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 and the transition plate 160 on the second buffer shaft 150 to rotate downward, so that the wind turbine anchor bolt falls into the waste box 100 along with the transition plate 160 on the first buffer shaft 140 and the transition plate 160 on the second buffer shaft 150. For example, when the length sensor (not shown in the figure) detects that the length of the wind turbine anchor bolt is not equal to the preset length, the elevator 111 drives the second buffer shaft 150 to rotate downward. The baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 rotates downward, and the wind turbine anchor bolt falls with the transition plate 160 on the first buffer shaft 140 to the intersection of the transition plate 160 on the first buffer shaft 140 and the transition plate 160 on the second buffer shaft 150. The wind turbine anchor bolt then continues to fall to the bottom of the waste box 100 with the multiple transition plates 160 on the second buffer shaft 150.

[0047] like Figure 6As shown, in some embodiments of the wind power anchor bolt online noise reduction material storage device of the present invention, the receiving device 200 is provided with a dropping rack 210. The dropping rack 210 is located on the side of the receiving device 200 near the first support 120, which reduces the height of the wind power anchor bolt during the falling process and reduces the noise during the finished product collection process to meet the noise reduction requirements. The receiving frame 220 is located on the side of the receiving device 200 away from the first support 120 and is fixedly connected to the dropping rack 210; the baffle 171 is located on the side of the receiving frame 220 away from the dropping rack 210 and is fixedly connected to the receiving frame 220 to prevent the wind power anchor bolt from rolling to the outside of the receiving frame 220 when it rolls down from the dropping rack 210.

[0048] like Figure 6 As shown, in some embodiments of the wind turbine anchor bolt online noise reduction silo device of the present invention, the receiving device 200 has multiple baffles 240 below the dropping frame 210, and the multiple baffles 240 are evenly arranged; multiple receiving cylinders 241 are connected to the multiple baffles 240, and the multiple receiving cylinders 241 drive the multiple baffles 240 to extend and retract. A wind turbine anchor bolt sensor (not shown in the figure) is installed on the dropping frame 210 and is electrically connected to the multiple receiving cylinders 241 to detect the signal of the falling wind turbine anchor bolt and transmit the signal to the receiving cylinders 241. This reduces the falling height of the wind turbine anchor bolt from the dropping frame 210 to the receiving frame 220, reduces the collision of the wind turbine anchor bolt with the receiving frame 220, and meets the noise reduction requirements. Specifically, as the wind turbine anchor bolt falls to the unloading rack 210 and rolls from the unloading rack 210 to the receiving frame 220, the wind turbine anchor bolt sensor (not shown in the figure) detects the falling wind turbine anchor bolt and transmits a signal to the receiving cylinder 241. The receiving cylinder 241 drives the stop rod 240 to extend, causing the wind turbine anchor bolt to fall onto the stop rod 240. At this time, the receiving cylinder 241 drives the stop rod 240 to retract, and the wind turbine anchor bolt continues to fall into the receiving frame 220.

[0049] like Figure 6 As shown, in some embodiments of the present invention, the wind power anchor bolt online noise reduction material storage device has a receiving device 200 with multiple receiving cylinder 241 supports at the bottom of multiple receiving cylinders 241. The multiple receiving cylinders 241 are firmly fixed to the bottom of the dropping frame 210 by the multiple receiving cylinder supports, so that the receiving cylinders 241 remain stable during operation and the stability of the receiving device 200 is increased.

[0050] In a specific embodiment, the wind turbine anchor bolt falls to the wind turbine anchor bolt online noise reduction silo device. The length sensor (not shown in the figure) of the wind turbine anchor bolt online noise reduction silo device detects that the length of the wind turbine anchor bolt is less than the preset length. The elevator 111 drives the second buffer shaft 150 to rotate downward. The baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 rotates downward. The wind turbine anchor bolt falls with the transition plate 160 on the first buffer shaft 140 to the intersection of the transition plate 160 on the first buffer shaft 140 and the transition plate 160 on the second buffer shaft 150. The wind turbine anchor bolt then continues to fall to the bottom of the waste frame 100 with the multiple transition plates 160 on the second buffer shaft 150.

[0051] In a specific embodiment, the wind turbine anchor bolt falls to the wind turbine anchor bolt online noise reduction silo device. The length sensor (not shown in the figure) of the wind turbine anchor bolt online noise reduction silo device detects that the length of the wind turbine anchor bolt is greater than the preset length. The elevator 111 drives the second buffer shaft 150 to rotate downward. The baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 rotates downward. The wind turbine anchor bolt falls with the transition plate 160 on the first buffer shaft 140 to the intersection of the transition plate 160 on the first buffer shaft 140 and the transition plate 160 on the second buffer shaft 150. The wind turbine anchor bolt then continues to fall to the bottom of the waste frame 100 with the multiple transition plates 160 on the second buffer shaft 150.

[0052] In a specific embodiment, the wind turbine anchor bolt falls into the online noise reduction silo device. The length sensor (not shown in the figure) of the online noise reduction silo device detects that the length of the wind turbine anchor bolt is equal to a preset length. The elevator 111 drives the second buffer shaft 150 to rotate upwards. The baffle 171 at the top of the buffer arm 170 of the second buffer shaft 150 rotates upwards. Simultaneously, the cylinder 163, in conjunction with the baffle 171, drives multiple transition plates 160 of the first buffer shaft 140 to lift upwards, causing the wind turbine anchor bolt to... As the anchor bolt rolls to the receiving device 200, the wind power anchor bolt falls to the dropping frame 210 of the receiving device 200. During the process of rolling from the dropping frame 210 to the receiving frame 220, the wind power anchor bolt sensor (not shown in the figure) detects the falling wind power anchor bolt and transmits a signal to the receiving cylinder 241. The receiving cylinder 241 drives the stop rod 240 to extend, so that the wind power anchor bolt falls on the stop rod 240. At this time, the receiving cylinder 241 drives the stop rod 240 to retract, and the wind power anchor bolt continues to fall into the receiving frame 220.

[0053] It should be noted that in this invention, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. The term "multiple" means at least two or more. The terms "installation," "connection," and "fixing," etc., should be interpreted broadly. For example, "connection" can mean a fixed connection, a detachable connection, or an integral connection. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0054] In the description of this invention, it should be understood that the terms "upper" and "lower" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or unit referred to must have a specific orientation or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.

[0055] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. An online noise reduction warehouse device for wind power anchors, characterized in that, The utility model relates to a waste frame device, including: A plurality of waste frames (100); Waste frame frame (110) is located at the bottom of a plurality of waste frames (100); First support (120) is located at one side of waste frame (100); Material collecting device (200) is located at one side of first support (120); Second support (130) is located at the other side of a plurality of waste frames (100), and first support (120) and second support (130) are oppositely arranged and connected by a plurality of waste frames (100); First buffer shaft (140) is located at the upper section of first support (120), and first buffer shaft (140) penetrates a plurality of first supports (120); Second buffer shaft (150) is located at the upper section of second support (130), and second buffer shaft (150) penetrates a plurality of second supports (130); A plurality of transition plates (160) are uniformly arranged on first buffer shaft (140) and second buffer shaft (150) and fixedly connected with first buffer shaft (140) and second buffer shaft (150); A plurality of buffer arms (170) are uniformly arranged on first buffer shaft (140) and second buffer shaft (150), and a plurality of transition plates (160) are fixed to first buffer shaft (140) and second buffer shaft (150) by a plurality of buffer arms (170).

2. The wind turbine anchor bolt on-line noise reduction magazine device according to claim 1, characterized in that, The tail end of a plurality of transition plates (160) located on second buffer shaft (150) is inclined relative to waste frame frame (110).

3. The wind turbine anchor bolt on-line noise reduction magazine device according to claim 1, characterized in that, It also includes a baffle (171) located on the top of the buffer arm (170) of the second buffer shaft (150); Wherein, the tail end of a plurality of transition plates (160) located on the first buffer shaft (140) abuts against the baffle (171).

4. The wind turbine anchor online noise reduction magazine device of claim 3, wherein, It also includes: A backing plate (121) is arranged on the upper part of the first support (120) and is lower than the connection between the first buffer shaft (140) and the first support (120); A protrusion (161) is arranged on a plurality of transition plates (160) of the first buffer shaft (140) and is close to the buffer arm (170) of the first buffer shaft (140), and the position of the transition plate (160) of the first buffer shaft (140) falling is limited by the protrusion (161) and the backing plate (121) together.

5. The wind turbine anchor online noise reduction magazine device of claim 4, wherein, It also includes: An elevator (111) is arranged on the waste frame frame (110) and is fixedly connected with the second buffer shaft (150); A lifting support (112) is arranged at the bottom of the lifting device (111), and the lifting device (111) is fixed to the waste frame (110) through the lifting support (112); A lifting seat (113) is arranged on the lifting support (112) and is rotatably connected; A lifting motor (114) is arranged on the lifting seat (113), and the lifting motor (114) is connected with the second buffer shaft (150), and the second buffer shaft (150) is driven to rotate by the lifting motor (114); A worm gear rod (115) is arranged on the lifting seat (113) and is fixedly connected with the second buffer shaft (150), and the second buffer shaft (150) is driven to rotate by the worm gear rod (115); A first buffer arm (116) is arranged on the second buffer shaft (150) and is connected with the worm gear rod (115), and the second buffer shaft (150) and the worm gear rod (115) are connected through the first buffer arm (116).

6. The wind turbine anchor online noise reduction magazine device of claim 5, wherein, Further comprising: A cylinder mounting portion (162) is arranged on the protrusion (161); A cylinder (163) is arranged on the cylinder mounting portion (162), and the plurality of transition plates (160) of the first buffer shaft (140) are driven upward by the cylinder (163).

7. The wind turbine anchor online noise reduction magazine device of claim 6, wherein, Further comprising: A length sensor is arranged at the end of the second buffer shaft (150), and the length sensor is electrically connected with the lifting device (111) and the cylinder (163) respectively.

8. The wind turbine anchor bolt on-line noise reduction magazine apparatus of claim 1, wherein, The material collecting device (200) comprises: A material falling frame (210) is arranged on one side of the material collecting device (200) close to the first support (120); A material collecting frame (220) is arranged on the side of the material collecting device (200) away from the first support (120) and is fixedly connected with the material falling frame (210); A material collecting baffle (230) is arranged on the side of the material collecting frame (220) away from the material falling frame (210) and is fixedly connected with the material collecting frame (220).

9. The wind turbine anchor online noise reduction magazine of claim 8, wherein, The material collecting device (200) further comprises: A plurality of blocking rods (240) are arranged uniformly below the material falling frame (210); A plurality of material collecting cylinders (241) are connected with the plurality of blocking rods (240), and the plurality of blocking rods (240) are driven to extend and retract by the plurality of material collecting cylinders (241); A wind power anchor bolt sensor is arranged on the material falling frame (210), and the wind power anchor bolt sensor is electrically connected with the plurality of material collecting cylinders (241).

10. The wind turbine anchor bolt on-line noise reduction magazine apparatus of claim 9, wherein, The collecting device (200) further comprises a plurality of collecting cylinder supports (242), which are arranged at the bottom of the collecting cylinders (241) and firmly fix the collecting cylinders (241) to the lower portion of the collecting frame (210).

Citation Information

Patent Citations

  • Silver bright bar collecting device

    CN218319319U

  • Improved vibration distributing machine

    CN219057912U