An energy-saving and environmentally friendly dust removal mining tunneling equipment
By designing rotatable pillars and nozzle components, the problems of small water spray range and waste of water resources are solved, and flexible dust reduction effects and energy-saving and environmentally friendly dust removal solutions are achieved.
Patent Information
- Application Number
- CN202411928267.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2044-12-25
AI Technical Summary
In the prior art, the water spraying direction of the nozzle is fixed, resulting in a small water spraying range. When the dust is large, the amount of water spraying is increased to waste water resources and the work intensity of the staff is increased. Especially in areas where water is difficult to add, the dust problem cannot be effectively solved.
A dust removal mechanism including a water tank, pillar, nozzle and adjustment assembly is designed to drive the water pumping assembly to pump water through the driving assembly, and rotate the support through the adjustment assembly to increase the spray coverage area, and achieve flexible adjustment of the spray range.
It effectively reduces water resource consumption, improves dust reduction effect, adapts to different terrain and dust amounts, reduces device wear, and improves the applicability and energy saving of equipment.
Smart Images

Figure CN119641343B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of dust removal of mining and tunneling equipment, in particular to energy-saving and environment-friendly dust removal mining and tunneling equipment. Background Art
[0002] A tunnel boring machine (TBM) is a specialized piece of machinery used for tunnel excavation, enabling efficient and safe tunnel construction. It integrates mechanical, electrical, hydraulic, optical, and computer technologies. It includes shield machines for soft soil and hard rock tunnel boring machines (TBMs) for rocky strata. The definition of a tunnel boring machine is quite broad, and both shield machines and TBMs fall under this category.
[0003] The tunnel boring machine uses the huge thrust generated by the hydraulic system to propel itself forward and achieve underground excavation. The cutter head of the tunnel boring machine is designed like a huge sharp blade. The cutter head is driven to rotate by an electric motor, cutting and crushing the rock, and transporting it to the conveyor belt through a screw conveyor, and then the crushed rock is transported out through the conveyor belt.
[0004] At present, when the screw conveyor transports gravel to the conveyor belt, a large amount of dust will be generated when the cutter disc cuts the rock, and the gravel will collide with each other when transported inside the screw conveyor, generating dust. When this dust is transported to the conveyor belt through the screw conveyor outlet, it will become a large amount of dust.
[0005] Dust generated during cutting and gravel transportation is usually suppressed by spraying water. When a tunnel boring machine is operating in a city, water can be supplied directly through a tap water pipe. However, when tunnel boring equipment is operating in a remote mine, due to the terrain, tap water cannot be supplied like in a city. Therefore, water is usually supplied by a water tank. A nozzle and a water pump are installed on the water tank. The water inside the tank is pumped out by the pump and sprayed out through the nozzle. Because the dust suppression point is close to the cutterhead (the gravel cut by the cutterhead is transported to the conveyor belt via a screw conveyor, and the end of the conveyor belt is normally only 3 to 4 meters away from the cutterhead), as the cutterhead continues to penetrate deeper into the ground, the dust suppression point is further away from the outside, making it increasingly difficult to add water to the water tank. Because the soil moisture and stone content vary in different terrains, when the soil is relatively wet and the stone content is low, the dust generated during cutting is also low. When the soil is relatively dry and the stone content is high, a large amount of dust is generated during cutting. This dust needs to be handled promptly to avoid affecting the health of the workers.
[0006] In the existing technology, although the nozzle can adjust the water spray volume, the direction of the water spray is fixed, resulting in a small range of water spray. When less dust is generated during the cutting process, the dust can be directly reduced by adjusting the water spray volume of the nozzle. When the dust is large, increasing the water spray volume can achieve dust reduction, but it will greatly waste water resources and greatly increase the workload of staff in areas where water supply is difficult.
[0007] Therefore, an energy-saving and environmentally friendly dust removal mining tunneling equipment is proposed. Summary of the Invention
[0008] In view of the fact that the nozzles in the above-mentioned or existing technologies can adjust the water spraying amount, the direction of the water spraying is fixed, resulting in a small range of water spraying. When the dust is large, increasing the water spraying amount can achieve dust reduction, but it will greatly waste water resources and greatly increase the workload of staff in areas where it is difficult to add water. Therefore, the present invention is proposed.
[0009] Therefore, the object of the present invention is to provide an energy-saving and environment-friendly dust removal mining excavation equipment.
[0010] In order to solve the above technical problems, the present invention provides the following technical solutions: comprising:
[0011] The cutting head comprises a housing, one end of which is connected to a cutter disc, and a screw conveyor and a conveyor belt are provided inside the housing;
[0012] The discharge port of the screw conveyor corresponds to the position of the conveyor belt;
[0013] The dust removal mechanism includes a water tank installed inside the housing, the water tank is connected to a through pipe, the through pipe is connected to a water pipe, the end of the water pipe away from the through pipe is connected to a nozzle, the nozzle is installed on a support, the support is rotatably connected to the top of the water tank, the top of the water tank is provided with a bracket, the bracket is provided with a drive assembly, the drive assembly is connected to a water pumping assembly, and the support is provided with an adjustment assembly;
[0014] The driving component drives the pumping component to pump out the water inside the water tank and spray it out from the nozzle through the water pipe to achieve dust treatment. By adjusting the setting of the component, the pumping component can drive the pillar to rotate when pumping water, and the pillar drives the nozzle to rotate, increasing the spray coverage area and thereby increasing the dust reduction effect.
[0015] As a preferred solution of the energy-saving and environmentally friendly dust removal mining excavation equipment of the present invention, wherein: the driving assembly includes a driving motor provided on a bracket, and the output end of the driving motor is connected to a cam;
[0016] The cam is divided into a protruding end and an arc end.
[0017] As a preferred solution of the energy-saving and environmentally friendly dust removal mining excavation equipment of the present invention, the water pumping assembly includes a first check member and a second check member provided inside the through pipe, the first check member is connected to a concave frame, the concave frame is connected to a vertical plate, and the vertical plate is connected to a roller on a side close to the cam;
[0018] The first and second return stops are identical.
[0019] As a preferred solution of the energy-saving and environmentally friendly dust removal mining excavation equipment of the present invention, wherein: the first check member includes a piston arranged inside the through pipe, the piston is provided with a through opening, and a sealing cover is rotatably connected to the piston;
[0020] The sealing cover matches the through opening;
[0021] The piston on the first check member is slidably connected to the through pipe, and the piston on the second check member is fixedly connected to the through pipe.
[0022] As a preferred solution of the energy-saving and environmentally friendly dust removal mining excavation equipment of the present invention, wherein: the adjustment component includes a ring sleeve fixedly mounted on the support, and the ring sleeve is provided with a track groove;
[0023] A driving rod is connected to a side of the vertical plate away from the cam, and an end of the driving rod away from the vertical plate is hemispherical.
[0024] As a preferred solution of the energy-saving and environmentally friendly dust removal mining excavation equipment of the present invention, wherein: the trajectory groove includes a first driving groove, a vertical groove and a second driving groove opened on the ring sleeve;
[0025] The first driving groove is in a "V" shape after being rotated ninety degrees;
[0026] The second driving groove is in a "W" shape rotated 90 degrees.
[0027] As a preferred solution of the energy-saving and environment-friendly dust removal mining excavation equipment of the present invention, the corners of the first driving groove and the second driving groove are both arc surfaces.
[0028] As a preferred solution of the energy-saving and environmentally friendly dust removal mining tunneling equipment of the present invention, the adjustment assembly further includes a circular sleeve fixedly mounted on the pillar, the pillar is further sleeved with a spring, one end of the spring is fixedly connected to the circular sleeve, and the other end of the spring is fixedly connected to the limit sleeve;
[0029] An annular groove is formed between the limiting sleeve and the ring sleeve, and the first driving groove, the vertical groove and the second driving groove are all connected to the annular groove.
[0030] As a preferred solution of the energy-saving and environmentally friendly dust removal mining tunneling equipment of the present invention, the adjustment component also includes a plurality of positioning grooves opened on the pillar, and positioning blocks are arranged inside the plurality of positioning grooves, and the plurality of positioning blocks are fixedly connected to the limit sleeve.
[0031] As a preferred solution of the energy-saving and environmentally friendly dust removal mining excavation equipment of the present invention, the positioning block is in the shape of a "7", the horizontal section of which is located inside the positioning groove, and the vertical section of which is located outside the positioning groove and fixedly connected to the inner ring of the limit sleeve;
[0032] The vertical section of the positioning block is in contact with the outer surface of the pillar, and the end of the vertical section of the positioning block is in contact with the top of the ring sleeve.
[0033] Beneficial effects of the energy-saving and environment-friendly dust removal mining excavation equipment of the present invention:
[0034] By turning on the driving component, the operation of the driving component can drive the pumping component to pump out the water inside the water tank and spray it out from the nozzle through the water pipe, so as to deal with the dust and prevent the dust from causing harm to the workers;
[0035] By setting the adjustment component, the pumping component can drive the pillar to rotate or not when pumping water. When there are more rocks under the ground and the excavation equipment is working with a lot of dust, the adjustment component can be adjusted to the pillar so that the pumping component can drive the nozzle to rotate back and forth during operation, thereby increasing the spray coverage area, saving water and increasing the dust reduction effect. When there are fewer rocks under the ground and the excavation equipment is working with a lot of dust, the adjustment component can be adjusted to the pillar so that the pumping component will not drive the nozzle to rotate during operation, thereby reducing wear on the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0037] Figure 1 This is a schematic diagram of the overall structure of energy-saving and environmentally friendly dust removal mining tunneling equipment;
[0038] Figure 2 This is a schematic diagram of the overall structure of the dust removal mechanism of energy-saving and environmentally friendly dust removal mining tunneling equipment;
[0039] Figure 3 This is a schematic diagram of the structure of the pumping component of energy-saving and environmentally friendly dust removal mining tunneling equipment;
[0040] Figure 4 This is a schematic diagram of the structure of the adjustment components of energy-saving and environmentally friendly dust removal mining tunneling equipment;
[0041] Figure 5 This is a schematic diagram of the ring structure of energy-saving and environmentally friendly dust removal mining tunneling equipment.
[0042] In the figure: 100, cutting head; 101, housing; 102, cutter head; 103, screw conveyor; 104, conveyor belt;
[0043] 200, dust removal mechanism; 201, water tank; 202, through pipe; 203, water pipe; 204, nozzle; 205, support; 206, bracket; 207, drive assembly; 207a, drive motor; 207b, cam; 208, pumping assembly; 208a, first check member; 208a-1, piston; 208a-2, port; 208a-3, cover; 208b, second check member; 208c, Concave frame; 208d, vertical plate; 208e, roller; 209, adjustment component; 209a, ring sleeve; 209b, track groove; 209b-1, first drive groove; 209b-2, vertical groove; 209b-3, second drive groove; 209c, drive rod; 209d, circular sleeve; 209e, spring; 209f, limit sleeve; 209g, annular groove; 209h, positioning groove; 209i, positioning block. DETAILED DESCRIPTION
[0044] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.
[0045] Example 1, reference Figures 1 to 3, which is the first embodiment of the present invention, provides an energy-saving and environmentally friendly dust removal mining excavation equipment, which includes a cutting head 100, which includes a shell 101, one end of the shell 101 is connected to a cutter head 102, a screw conveyor 103 and a conveyor belt 104 are arranged inside the shell 101, the discharge port of the screw conveyor 103 corresponds to the position of the conveyor belt 104, a dust removal mechanism 200 is arranged inside the shell 101, the dust removal mechanism 200 is located at the discharge port of the screw conveyor 103, and the dust removal mechanism 200 includes a water tank 201 installed inside the shell 101, the water tank A through pipe 202 is connected to 201, one end of the through pipe 202 is connected to the interior of the water tank 201, and the other end of the through pipe 202 extends out of the water tank 201. A water pipe 203 is connected to the through pipe 202, and a nozzle 204 is connected to the end of the water pipe 203 away from the through pipe 202. The nozzle 204 is mounted on a support 205, and the support 205 is rotatably connected to the top of the water tank 201. A bracket 206 is provided on the top of the water tank 201, and a drive assembly 207 is provided on the bracket 206. A pumping assembly 208 is connected to the drive assembly 207, and an adjustment assembly 209 is provided on the support 205.
[0046] Among them, the operation of the cutter head 102, the screw conveyor 103 and the conveyor belt is a very mature existing technology;
[0047] The nozzle 204 is preferably an atomizing nozzle 204 with adjustable water spray volume, and the spray volume of the nozzle 204 is selectively adjusted according to the size of the dust;
[0048] By turning on the driving assembly 207, the operation of the driving assembly 207 can drive the pumping assembly 208 to pump water out of the water tank 201 and spray it out from the nozzle 204 through the water pipe 203, thereby processing the dust and preventing the dust from causing harm to the workers;
[0049] By setting the adjustment component 209, the pumping component 208 can drive the pillar 205 to rotate or not drive the pillar 205 to rotate when pumping water. When there are more rocks underground and the excavation equipment is dusty during operation, the adjustment component 209 is adjusted to the pillar 205, so that the pumping component 208 can drive the nozzle 204 to rotate back and forth during operation, thereby increasing the spray coverage area, saving water and increasing the dust reduction effect. When there are fewer rocks underground and the excavation equipment is dusty during operation, the adjustment component 209 is adjusted to the pillar 205, so that the pumping component 208 does not drive the nozzle 204 to rotate during operation, thereby reducing wear on the device.
[0050] Furthermore, the driving assembly 207 includes a driving motor 207a fixedly mounted on the bracket 206. The output end of the driving motor 207a is connected to a cam 207b. The cam 207b is divided into a protruding end and an arc end.
[0051] The driving motor 207a is selected to be a motor that can control the rotation speed, that is, the motor that controls the rotation speed of the cam 207b.
[0052] Furthermore, the pumping assembly 208 includes a first check member 208a and a second check member 208b disposed inside the through pipe 202. The first check member 208a is fixedly connected to a concave frame 208c, and the concave frame 208c is fixedly connected to a vertical plate 208d. The vertical plate 208d is connected to a side of the cam 207b. The surface of the roller 208e is also an arc surface. The first check member 208a and the second check member 208b are the same.
[0053] The provision of the first check member 208a also ensures that the vertical plate 208d can only move vertically, thereby ensuring that the positions of the roller 208e and the cam 207b correspond.
[0054] Furthermore, the first check member 208a includes a piston 208a-1 disposed within the through tube 202. The piston 208a-1 defines a through port 208a-2. A cover 208a-3 is rotatably connected to the piston 208a-1. The cover 208a-3 matches the through port 208a-2, allowing the cover 208a-3 to completely block the through port 208a-2. The piston 208a-1 on the first check member 208a is slidably connected to the through tube 202, and the piston 208a-1 on the second check member 208b is fixedly connected to the through tube 202.
[0055] The piston 208a-1 and the through tube 202 are both rectangular, so that the first check member 208a can only move vertically up and down but cannot rotate.
[0056] In the initial state, the arc end of the cam 207b contacts the bottom of the roller 208e;
[0057] When the cutter head 102 cuts the underground rock, a large amount of crushed stone and dust are generated during the cutting process. The crushed stone and dust are transported by the screw conveyor 103 and inputted onto the conveyor belt 104 through the discharge port of the screw conveyor 103. A large amount of dust will be generated at the discharge port (the dust comes from the cutting of the underground rock by the cutter head 102 and the collision between the crushed stones when the screw conveyor 103 is transporting the crushed stone).
[0058] By turning on the driving motor 207a, the driving motor 207a drives the cam 207b to rotate. When the protruding end of the cam 207b approaches the bottom of the roller 208e, it drives the roller 208e to rise, and the roller 208e drives the vertical plate 208d to rise. The vertical plate 208d drives the first check piece 208a connected thereto to rise through the concave frame 208c. At this time, the piston 208a-1 on the first check piece 208a is in a closed state due to the influence of air pressure. During the rising process of the first check piece 208a, negative pressure is formed between the first check piece 208a and the second check piece 208b, so that the cover 208a-3 on the second check piece 208b is opened, and the water inside the water tank 201 passes through the first check piece 208a-1. The opening 208a-2 on the second check piece 208b flows to the top of the second check piece 208b. When the arc end of the cam 207b approaches the bottom of the roller 208e, the first check piece 208a descends under the action of gravity of the first check piece 208a, the concave frame 208c and the vertical plate 208d. Positive pressure is formed between the first check piece 208a and the second check piece 208b, and the sealing cover 208a-3 on the second check piece 208b is reset. The sealing cover 208a-3 on the first check piece 208a is opened, and the water between the first check piece 208a and the second check piece 208b flows to the top of the first check piece 208a through the opening 208a-2 on the first check piece 208a.
[0059] When the protruding end of the cam 207b continues to rotate toward the bottom of the roller 208e, the water on the top of the first check member 208a cannot flow down due to the closure of the upper cover 208a-3 of the first check member 208a. When the first check member 208a rises, the water on the first check member 208a rises and flows toward the water pipe 203, flows toward the nozzle 204 through the water pipe 203, and is sprayed out through the nozzle 204 to achieve dust disposal.
[0060] In summary, the first check member 208a relies on the action of gravity when resetting, which is different from many prior arts that rely on thrust to push the first check member 208a to reset. It is only necessary to ensure that the speed at which the drive motor 207a drives the cam 207b to rotate is slightly greater than the speed at which the roller 208e descends, so as to reduce the contact time between the cam 207b and the roller 208e and reduce the wear between the cam 207b and the roller 208e. At the same time, since most of the water spray dust removal in the prior art uses the atomizing nozzle 204, that is, the amount of water required is not large, when the device is running, the first check member 208a does not need to return to the initial position, and the distance change between the protruding end of the cam 207b and the bottom of the roller 208e is greater than the distance change of the first check member 208a falling (that is, when the drive motor 207a When the protruding end of the cam 207b is at the bottom, the arc end of the cam 207b corresponds to the position of the roller 208e, but the roller 208e is at the top of the arc end, but there is still a certain distance from the arc end. If the driving motor 207a is turned off at this time, the cam 207b is no longer rotating, and the first check member 208a will continue to descend until the roller 208e contacts the arc end of the cam 207b and returns to the initial position. If the driving motor 207a is not turned off at this time, the driving motor 207a continues to drive the cam 207b to rotate, and the protruding end of the cam 207b will move upward, that is, when the first check member 208a has not returned to the initial position, the cam 207b facilitates contact with the bottom of the roller 208e), reducing the range of movement of the first check member 208a and reducing the wear between the first check member 208a and the through pipe 202.
[0061] Example 2, reference Figures 2 to 5 , which is the second embodiment of the present invention. Different from the previous embodiment, the adjustment component 209 in this embodiment includes a ring sleeve 209a fixedly mounted on the pillar 205, and a track groove 209b is formed on the ring sleeve 209a. A driving rod 209c is connected to the side of the vertical plate 208d away from the cam 207b, and the end of the driving rod 209c away from the vertical plate 208d is hemispherical.
[0062] Furthermore, the track groove 209b includes a first driving groove 209b-1, a vertical groove 209b-2, and a second driving groove 209b-3 formed on the ring sleeve 209a. The first driving groove 209b-1 is in a "V" shape after being rotated 90 degrees, and the second driving groove 209b-3 is in a "W" shape after being rotated 90 degrees.
[0063] Among them, the angle occupied by the first driving groove 209b-1 and the second driving groove 209b-3 is less than one hundred and eighty degrees when viewed from above, avoiding the connection between the first driving groove 209b-1, the vertical groove 209b-2 or the second driving groove 209b-3.
[0064] Furthermore, the corners of the first driving groove 209b-1 and the second driving groove 209b-3 are both arc surfaces;
[0065] The arc surface makes it easier for the driving rod 209c to drive the support 205 to rotate.
[0066] The rest of the structure is the same as that of Example 1.
[0067] In this embodiment, the nozzle 204 and the support 205 are connected by a clamp or other connection methods that can fix the nozzle 204 in the initial position after the support rotates;
[0068] In this embodiment, in the initial state, the driving rod 209c can be located at the top or bottom of the ring sleeve 209a, depending on whether the protruding end or the arc end of the cam 207b contacts the roller 208e. If the protruding end contacts the roller 208e, the driving rod 209c is located at the top of the ring sleeve 209a, and if the arc end contacts the roller 208e, the driving rod 209c is located at the bottom of the ring sleeve 209a.
[0069] The track groove 209b is not limited to the first driving groove 209b-1, the vertical groove 209b-2 and the second driving groove 209b-3, and can also be a track groove 209b of other shapes, such as a wave shape, etc. This solution only describes a few necessary ones.
[0070] In this embodiment, the connection between the nozzle 204 and the support 205 is first loosened, and then the support is adjusted according to the underground conditions;
[0071] When there are many underground rocks and the soil moisture is normal (humidity is between 40% and 60%), the cutter head 102 generates more dust when in use. At this time, the first driving groove 209b-1 on the column is rotated to a position corresponding to the driving rod 209c. When the cam 207b drives the vertical plate 208d to move through the roller 208e, and the vertical plate 208d drives the driving rod 209c to move, the driving rod 209c enters the first driving groove 209b-1 and moves inside the "V"-shaped first driving groove 209b-1 after rotating 90 degrees. By contacting the inner wall of the first driving groove 209b-1, the column is driven to rotate back and forth, which greatly increases the spray coverage area, saves water resources and improves the dust reduction effect.
[0072] When there are fewer rocks on the ground and the soil is relatively moist (humidity greater than 60%), the cutter head 102 generates less dust when in use. At this time, the vertical slot 209b-2 on the column is aligned with the position of the drive rod 209c. When the cam 207b drives the drive rod 209c to move through the roller 208e and the vertical plate 208d, the drive rod 209c enters the vertical slot 209b-2 without contacting the inner wall of the vertical slot 209b-2, and does not drive the column to rotate, so that the nozzle 204 can spray and reduce dust normally, reducing wear on the device.
[0073] When there are many rocks underground and the soil is relatively dry (humidity is less than 40%), a large amount of dust will be generated when the cutter head 102 is in use. The second driving groove 209b-3 on the column is aligned with the position of the driving rod 209c. When the cam 207b drives the driving rod 209c to move through the roller 208e and the vertical plate 208d, the driving rod 209c enters the second driving groove 209b-3 and moves inside the "W"-shaped second driving groove 209b-3 after rotating ninety degrees. By contacting the inner wall of the second driving groove 209b-3, the column is driven to rotate back and forth multiple times, covering a larger area in a short time, and quickly reducing the dust concentration.
[0074] In summary, by setting the track groove 209b on the ring sleeve 209a, the track groove 209b is divided into a first driving groove 209b-1, a vertical groove 209b-2 and a second driving groove 209b-3, so that the device can be used in a variety of different environments, increasing the spray range, saving water resources, and increasing the practicality of the device, so that the device can be used in different terrains.
[0075] Example 3, reference Figures 2 to 5 , which is the third embodiment of the present invention. Different from the previous embodiment, the adjustment component 209 in this embodiment also includes a circular sleeve 209d fixedly mounted on the pillar 205, and a spring 209e is also mounted on the pillar 205. One end of the spring 209e is fixedly connected to the circular sleeve 209d, and the other end of the spring 209e is fixedly connected to the limiting sleeve 209f. An annular groove 209g is formed between the limiting sleeve 209f and the annular sleeve 209a, and the first driving groove 209b-1, the vertical groove 209b-2 and the second driving groove 209b-3 are all connected to the annular groove 209g.
[0076] Furthermore, the adjustment assembly 209 further includes a plurality of positioning slots 209h formed on the support 205. Positioning blocks 209i are disposed within the plurality of positioning slots 209h. The plurality of positioning blocks 209i are fixedly connected to the limiting sleeves 209f.
[0077] Among them, the circular sleeve 209d, the spring 209e and the limit sleeve 209f are all located at the top of the ring sleeve 209a, and the multiple positioning grooves 209h are also located at the top of the ring sleeve 209a. The setting of the multiple positioning grooves 209h ensures that the limit slot can only move linearly in the vertical direction, and in the initial state, the positioning block 209i contacts the inner wall of the bottom of the positioning groove 209h, supporting the limit sleeve 209f, and then supporting the spring 209e, so that the spring 209e does not bear the pulling force on the limit sleeve 209f in the initial state, thereby increasing the service life of the spring 209e.
[0078] Furthermore, the positioning block 209i is in the shape of a "7", with its horizontal section located inside the positioning groove 209h, and its vertical section located outside the positioning groove 209h and fixedly connected to the inner ring of the limiting sleeve 209f. The vertical section of the positioning block 209i is in contact with the outer surface of the pillar 205, and the end of the vertical section of the positioning block 209i is in contact with the top of the ring sleeve 209a.
[0079] Among them, multiple positioning blocks 209i are respectively located at the slots of the first driving slot 209b-1, the vertical slot 209b-2 and the second driving slot 209b-3. The setting of multiple positioning blocks 209i also limits the movement of the driving rod 209c to avoid shaking when adjusting to the appropriate slot corresponding to the driving rod 209c, causing the pillar 205 to rotate, thereby changing the slot corresponding to the driving rod 209c, and further affecting the spraying range of the nozzle 204.
[0080] Different from the above embodiment, in this embodiment, in the initial state, the driving rod 209c is located inside the annular groove 209g, and the protruding end of the cam 207b is in contact with the roller 208e;
[0081] The rest of the structure is the same as that of Example 2.
[0082] When it is necessary to change the soil according to the rock content and soil moisture content, the limiting sleeve 209f is first pushed up, and the limiting sleeve 209f drives the spring 209e to be compressed. At the same time, the limiting sleeve 209f drives the positioning block 209i to move upward along the positioning groove 209h, so that the vertical section of the positioning block 209i is misaligned with the driving rod 209c. At this time, the limiting sleeve 209f can be directly rotated. The limiting sleeve 209f drives the support 205 to rotate through the positioning block 209i and the positioning groove 209h, and the support 205 drives the ring sleeve 209a to rotate. When the appropriate track groove 209b corresponds to the driving rod 209c, release your hand and the limiting sleeve 209f will be in the correct position. 09f Under the action of gravity and the elastic force of spring 209e, the positioning block 209i returns to its initial position. At this time, the end of the driving rod 209c corresponds to the slot position of the corresponding track groove 209b, and is located between the two corresponding positioning blocks 209i. When the device is vibrated, the column will rotate, and the column will drive the two positioning blocks 209i thereon to rotate, and the two positioning blocks 209i drive the driving rod 209c to rotate. Under the restriction of the first check member 208a, the driving rod 209c cannot rotate. Therefore, when the device is running, the column will not rotate due to shaking, which will change the spraying range of the nozzle 204, thereby reducing the dust reduction effect.
[0083] In summary, this embodiment further optimizes the solution. Unlike the second embodiment, in the second embodiment, although different trajectory grooves 209b can also be changed to correspond to the drive rod 209c, when the cam 207b is in a vertical state, the drive rod 209c is not located in the corresponding trajectory groove 209b. Since the cutter head 102 will inevitably vibrate to a certain extent during the process of cutting the rock and the operation of the device, when vibration occurs, if the drive rod 209c is not located in the trajectory groove 209b, the drive rod 209c will not limit the column. At this time, the column can rotate, thereby affecting the dust reduction effect. This solution solves this problem through the setting of a limit sleeve 209f and multiple positioning blocks 209i. The limit sleeve 209f and multiple positioning blocks 209i are equivalent to multiple caps, which are equivalent to extensions of the trajectory groove 209b.
[0084] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. An energy-saving and environmentally friendly dust removal mining excavation equipment, characterized by: include, A cutting head (100) comprises a housing (101), one end of the housing (101) is connected to a cutter disc (102), and a screw conveyor (103) and a conveyor belt (104) are provided inside the housing (101); The discharge port of the screw conveyor (103) corresponds to the position of the conveyor belt (104); A dust removal mechanism (200) comprises a water tank (201) installed inside a housing (101), the water tank (201) being connected to a through pipe (202), the through pipe (202) being connected to a water pipe (203), the water pipe (203) being connected to a nozzle (204) at one end away from the through pipe (202), the nozzle (204) being installed on a support (205), the support (205) being rotatably connected to the top of the water tank (201), the top of the water tank (201) being provided with a bracket (206), the bracket (206) being provided with a driving assembly (207), the driving assembly (207) being connected to a water pumping assembly (208), and the support (205) being provided with an adjusting assembly (209); The driving component (207) drives the pumping component (208) to pump water out of the water tank (201), and sprays the water out from the nozzle (204) through the water pipe (203), thereby achieving dust treatment. By setting the adjusting component (209), the pumping component (208) drives the support (205) to rotate when pumping water, and the support (205) drives the nozzle (204) to rotate, thereby increasing the coverage area of the spray and thereby increasing the dust reduction effect. The driving assembly (207) comprises a driving motor (207a) provided on a bracket (206), wherein an output end of the driving motor (207a) is connected to a cam (207b); The cam (207b) is divided into a protruding end and an arc end; The pumping assembly (208) comprises a first check member (208a) and a second check member (208b) disposed inside the through pipe (202); the first check member (208a) is connected to a concave frame (208c); the concave frame (208c) is connected to a vertical plate (208d); and the vertical plate (208d) is connected to a roller (208e) on a side close to the cam (207b); The first check member (208a) and the second check member (208b) are identical; The first check member (208a) comprises a piston (208a-1) disposed inside the through tube (202), a through opening (208a-2) being provided on the piston (208a-1), and a sealing cover (208a-3) being rotatably connected to the piston (208a-1); The sealing cover (208a-3) matches the through port (208a-2); The piston (208a-1) on the first check member (208a) is slidably connected to the through pipe (202), and the piston (208a-1) on the second check member (208b) is fixedly connected to the through pipe (202); The adjustment assembly (209) comprises a ring sleeve (209a) fixedly mounted on the pillar (205), wherein a track groove (209b) is provided on the ring sleeve (209a); a driving rod (209c) is connected to a side of the vertical plate (208d) away from the cam (207b), and an end of the driving rod (209c) away from the vertical plate (208d) is hemispherical; The driving rod (209c) enters the track groove (209b) to drive the support column (205) to rotate.
2. The energy-saving and environmentally friendly dust removal mining excavation equipment according to claim 1, characterized in that: The track groove (209b) comprises a first driving groove (209b-1), a vertical groove (209b-2) and a second driving groove (209b-3) formed on the ring sleeve (209a); The first driving groove (209b-1) is in a "V" shape after being rotated ninety degrees; The second driving groove (209b-3) is in a "W" shape after being rotated ninety degrees.
3. The energy-saving and environmentally friendly dust removal mining excavation equipment according to claim 2, characterized in that: The corners of the first driving groove (209b-1) and the second driving groove (209b-3) are both arc surfaces.
4. The energy-saving and environmentally friendly dust removal mining excavation equipment according to claim 3, characterized in that: The adjustment component (209) further includes a circular sleeve (209d) fixedly sleeved on the pillar (205), and a spring (209e) is sleeved on the pillar (205), one end of the spring (209e) is fixedly connected to the circular sleeve (209d), and the other end of the spring (209e) is fixedly connected to the limiting sleeve (209f); An annular groove (209g) is formed between the limiting sleeve (209f) and the annular sleeve (209a), and the first driving groove (209b-1), the vertical groove (209b-2) and the second driving groove (209b-3) are all connected to the annular groove (209g).
5. The energy-saving and environment-friendly dust removal mining excavation equipment according to claim 4, characterized in that: The adjustment component (209) further comprises a plurality of positioning grooves (209h) provided on the pillar (205), positioning blocks (209i) being provided inside the plurality of positioning grooves (209h), and the plurality of positioning blocks (209i) being fixedly connected to the limiting sleeve (209f).
6. The energy-saving and environmentally friendly dust removal mining excavation equipment according to claim 5, characterized in that: The positioning block (209i) is in the shape of a "7", with its horizontal section located inside the positioning groove (209h) and its vertical section located outside the positioning groove (209h) and fixedly connected to the inner ring of the limiting sleeve (209f); The vertical section of the positioning block (209i) fits with the outer surface of the pillar (205), and the end of the vertical section of the positioning block (209i) fits with the top of the ring sleeve (209a).
Citation Information
Patent Citations
Tunneling working face dust control and fall system
CN117846591A
Road drilling machine with damping function
CN209025606U