Adjusting brick position adjusting system

By designing an adjustment brick position adjustment system, the position of the adjustment brick is automatically adjusted using the first and second moving components, solving the problem of difficult adjustment of the adjustment brick position, achieving efficient control of air volume adjustment, reducing costs and improving production efficiency.

CN224077287UActive Publication Date: 2026-04-03BEIJING SHOUGANG INT ENG TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The difficulty in adjusting the position of the regulating bricks in the coke oven leads to high difficulty and cost in the air volume regulation operation, which affects production efficiency.

Method used

An adjustment brick position adjustment system was designed, including a first moving component and a second moving component. The position adjustment of the adjustment brick is realized through a driving component and a limiting column. Combined with the driving component and the transmission mechanism, the adjustment of the adjustment brick is automated.

Benefits of technology

It reduces the difficulty and cost of adjusting the position of the regulating bricks, improves the efficiency of air volume regulation, simplifies manual operation, and enhances the production efficiency of coke ovens.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure provides an adjusting brick position adjusting system, comprising: a first moving assembly having a bearing wall, the first moving assembly being arranged on a down-regulation pipe of a coke oven and adapted to move along a first direction so that the position of the bearing wall in the height direction of the down-regulation pipe is adjustable, the first moving assembly having a first working position and a second working position; the second moving assembly is arranged on the bearing wall and comprises a driving part and a limiting column, the limiting column extends in the first direction and is used for being inserted into the matching hole of the adjusting brick, and the driving part is used for driving the limiting column to move in the second direction so that the position of the limiting column in the radial direction of the lower adjusting pipe can be adjusted. According to the adjusting brick position adjusting system, the adjusting bricks can be mounted and dismounted relative to the adjusting holes, the covering area of the adjusting bricks on the adjusting holes is adjusted, the amount of air flowing through the adjusting holes is changed, transverse temperature regulation and control of the coke oven are facilitated, and the manual operation burden of adjusting brick position adjusting operation can be relieved.
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Description

Technical Field

[0001] This disclosure relates to the field of coking oven technology, and in particular to a system for adjusting the position of adjusting bricks. Background Technology

[0002] To ensure simultaneous coke cake maturation, the transverse temperature of each combustion chamber in the coke oven needs to be adjusted according to the coal loading conditions. This adjustment is typically achieved by altering the amount of gas and air injected downwards. Gas volume adjustment is mostly done by changing the opening of the gas nozzles, while air volume adjustment requires the use of regulating bricks. In practice, regulating bricks are inserted into the lower regulating pipes, and the amount of air flowing through the regulating holes is adjusted by changing the area covered by the bricks. Currently, the position of the regulating bricks is often adjusted manually. However, due to the large number and height of the lower regulating pipes in the coke oven, manually adjusting the bricks is very inconvenient, making air volume adjustment difficult and costly, and hindering efficiency. Utility Model Content

[0003] This disclosure aims to address at least one of the technical problems existing in the prior art or related technologies.

[0004] In view of this, an adjusting brick position adjusting system is proposed according to an embodiment of the present disclosure, comprising:

[0005] A first moving assembly has a supporting wall. The first moving assembly is disposed on the lower regulating pipe of the coke oven and is adapted to move along a first direction so that the position of the supporting wall in the height direction of the lower regulating pipe is adjustable. The first moving assembly has a first working position and a second working position.

[0006] The second moving component is disposed on the bearing wall and includes a driving member and a limiting post. The limiting post extends along a first direction and is used to be inserted into the mating hole of the adjusting brick. The driving member is used to drive the limiting post to move along a second direction so that the position of the limiting post in the radial direction of the lower adjusting tube is adjustable.

[0007] Specifically, when the first moving component is in the first working position, the bearing wall is located inside the lower adjustment pipe; when the first moving component is in the second working position, the position height of the bearing wall is not lower than the position height of the adjustment hole of the coke oven.

[0008] In one feasible implementation, there are multiple first moving components and multiple second moving components, and each first moving component is used to be disposed in a down-regulating tube.

[0009] In one feasible implementation, the brick position adjustment system further includes:

[0010] The drive assembly is used to drive multiple lower regulating pipes of the coke oven in a rectangular array. The drive assembly is used to be set between two adjacent columns of lower regulating pipes. Multiple first moving components corresponding to the aforementioned two adjacent columns of lower regulating pipes are all driven to the drive assembly. The drive assembly is used to drive the aforementioned multiple first moving components to move along a first direction.

[0011] In one feasible implementation, the driving component includes:

[0012] A drive unit is provided between two adjacent columns of down-adjustment tubes and is arranged in the middle region of the rectangular array along the column direction of the rectangular array.

[0013] The commutation section has two commutation sections, which are respectively used to correspond to the arrangement of the lower adjustment tubes of the two adjacent columns. The commutation section has an input end and two output ends, which are arranged opposite to each other along the column direction of the rectangular array.

[0014] A first drive shaft is used to connect each input end to the drive unit. The first drive shaft is used to arrange along the row direction of the aforementioned rectangular array.

[0015] The second drive shaft is connected to each output end and is used to be arranged along the column direction of the aforementioned rectangular array;

[0016] Multiple drive screws are connected to a second drive shaft. The drive screws are used to pass through the lower adjustment tube along a first direction. A first moving component is connected to one end of the drive screws. The second drive shaft is used to drive the drive screws to move along the first direction.

[0017] Each of the transmission lead screws corresponds one-to-one with the first moving component.

[0018] In one feasible implementation, the driving component further includes:

[0019] Multiple sealing parts are provided at the end of the lower adjusting tube away from the adjusting hole, and the transmission screw passes through the sealing parts;

[0020] The transmission lead screw and the sealing part are in one-to-one correspondence.

[0021] In one feasible implementation, the sealing portion includes:

[0022] A sealing plate is used to cover the end of the lower adjusting pipe away from the adjusting hole. The sealing plate has a connecting hole, which is fitted onto the transmission screw.

[0023] A sealing strip is used to be installed between the sealing plate and the lower regulating pipe, and the sealing strip is arranged around the connection hole.

[0024] In one feasible implementation, the first moving component includes:

[0025] A support platform having a support wall, the support platform being disposed on a lowering pipe and adapted to move along a first direction, such that the position of the support wall in the height direction of the lowering pipe is adjustable, the support platform having a first working position and a second working position;

[0026] The image acquisition unit, located on the supporting wall, is used to acquire image information of the adjusting bricks.

[0027] In one feasible implementation, the first moving component further includes:

[0028] The protective cover, made of light-transmitting material, is used to cover the information acquisition end of the image acquisition unit.

[0029] In one feasible implementation, the second moving component further includes:

[0030] The belt drive mechanism is connected between the drive component and the limit post.

[0031] In one feasible implementation, the belt drive mechanism includes:

[0032] The first pulley is rotatably mounted on the bearing wall, and the driving component is used to drive the first pulley to rotate;

[0033] The second pulley is rotatably mounted on the bearing wall, and the first pulley and the second pulley are arranged at intervals along the second direction;

[0034] A drive belt connects the first pulley and the second pulley;

[0035] A sliding plate is installed on the transmission belt, and a limiting post is installed on the sliding plate.

[0036] The above description is merely an overview of the technical solution provided in this disclosure. In order to better understand the technical means of this disclosure and to implement it in accordance with the contents of the specification, and to make the above and other features and effects of this disclosure more obvious and understandable, the following are specific examples of the implementation methods of this disclosure. Attached Figure Description

[0037] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of exemplary embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the scope of this disclosure. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings:

[0038] Figure 1 A schematic structural diagram from a first perspective of an embodiment of the adjusting brick position adjusting system provided in this disclosure;

[0039] Figure 2 A schematic structural diagram from a second perspective of an embodiment of the adjusting brick position adjusting system provided in this disclosure;

[0040] Figure 3 for Figure 2 A partial enlarged schematic view of the adjusting brick position adjustment system is shown.

[0041] Figure 4 A schematic connection structure diagram of the first adjustment component and the second adjustment component from a first perspective of an embodiment provided in this disclosure;

[0042] Figure 5 A schematic connection structure diagram of the first adjustment component and the second adjustment component from a second perspective of an embodiment provided in this disclosure;

[0043] Figure 6 This is a schematic usage scenario diagram of an embodiment of the adjusting brick position adjusting system provided in this disclosure.

[0044] in, Figures 1 to 6 The correspondence between the reference numerals and component names in the attached drawings is as follows:

[0045] 10' lower control tube;

[0046] 10. Adjustable brick position adjustment system;

[0047] 100 First moving component; 110 Support platform; 120 Image acquisition unit; 130 Protective cover;

[0048] 200 Second moving component; 210 Driving element; 220 Limiting post; 230 Belt drive mechanism; 231 First pulley; 232 Second pulley; 233 Drive belt; 234 Sliding plate; 240 Control unit;

[0049] 300 Drive assembly; 310 Drive unit; 320 Reversing unit; 330 First drive shaft; 340 Second drive shaft; 350 Drive screw; 360 Sealing unit; 361 Sealing plate; 362 Sealing strip; 370 Transmission unit; 380 Reducer;

[0050] 101 load-bearing wall. Detailed Implementation

[0051] Exemplary embodiments of the present disclosure will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.

[0052] like Figures 1 to 6As shown, according to an embodiment of this disclosure, an adjusting brick position adjusting system 10 is proposed, comprising: a first moving component 100 having a supporting wall 101, the first moving component 100 being disposed on the lower adjusting pipe 10' of the coke oven and adapted to move along a first direction so that the position of the supporting wall 101 in the height direction of the lower adjusting pipe 10' is adjustable, the first moving component 100 having a first working position and a second working position; a second moving component 200 disposed on the supporting wall 101 and including a driving member 210 and a limiting post 220, the limiting post 220 extending along the first direction and being inserted into a mating hole of the adjusting brick, the driving member 210 being used to drive the limiting post 220 to move along a second direction so that the position of the limiting post 220 in the radial direction of the lower adjusting pipe 10' is adjustable; wherein, when the first moving component 100 is in the first working position, the supporting wall 101 is located inside the lower adjusting pipe 10'; when the first moving component 100 is in the second working position, the position height of the supporting wall 101 is not lower than the position height of the adjusting hole of the coke oven.

[0053] The brick position adjustment system 10 provided in this disclosure includes the aforementioned first moving component 100 and the aforementioned second moving component 200. Based on the aforementioned configuration, in practical applications, the brick position adjustment system 10 can cooperate with the adjusting brick through the limiting post 220 of the second moving component 200. When the limiting post 220 is inserted into the adjusting hole of the adjusting brick, the limiting post 220 is suitable for driving the adjusting brick to move synchronously along the aforementioned second direction. And since the limiting post 220 extends along the aforementioned first direction, the limiting post 220 and the mating hole are suitable for separation by relative movement along the first direction.

[0054] When it is necessary to adjust the conduction area of ​​the adjustment hole using the adjusting brick, the adjusting brick can be sleeved on the aforementioned limiting post 220. The first moving component 100 can use the bearing wall 101 to support the second adjusting component and the adjusting brick, and drive the second adjusting component and the adjusting brick to move stably from the aforementioned first working position to the aforementioned second working position, so that the adjusting brick moves closer to the aforementioned adjustment hole. When the first moving component 100 reaches the second working position, the height of the bearing wall 101 and the adjusting brick located on the bearing wall 101 is not lower than the position of the adjustment hole. Correspondingly, the second adjusting component can further drive the adjusting brick to move along the aforementioned second direction, so as to adjust the coverage area of ​​the adjusting brick on the adjustment hole, and in the height direction of the lower adjusting pipe 10', so that the adjusting brick and the furnace wall with the adjustment hole are structurally overlapped. After the position of the adjusting brick in the second direction is adjusted to the correct position, the first moving component 100 can move from the aforementioned second working position to the aforementioned first working position, so that the adjusting brick rests on the aforementioned furnace wall and separates from the second moving component 200, thereby realizing the installation of the adjusting brick.

[0055] When it is necessary to remove the adjusting brick from the adjusting hole, the first moving component 100 can drive the second adjusting component to move stably from the first working position to the second working position, so that the adjusting brick moves closer to the position of the adjusting hole and the limiting post 220 is inserted into the mating hole. The second adjusting component can further drive the adjusting brick to move along the second direction so that the adjusting brick is within the conduction range of the adjusting hole. Then the first moving component 100 can move from the second working position to the first working position so that it is retracted into the lower adjusting tube 10'.

[0056] Based on this, the adjusting brick position adjustment system 10 provided in this embodiment can install and remove the adjusting brick relative to the adjusting hole, adjust the coverage area of ​​the adjusting brick on the adjusting hole, change the amount of air flowing through the adjusting hole, facilitate the horizontal temperature control of the coke oven, reduce the manual workload of adjusting the adjusting brick position, reduce the difficulty and cost of air volume adjustment, and improve production efficiency.

[0057] It is understood that when the first moving component 100 is in the second working position, the minimum position height of the bearing wall 101 is not lower than the maximum position height of the aforementioned adjusting hole, thereby ensuring that the minimum position height of the adjusting brick is not lower than the maximum position height of the aforementioned adjusting hole.

[0058] It is understood that the aforementioned limiting post 220 and the aforementioned mating hole can be a clearance fit, so that the limiting post 220 can be inserted into or removed from the aforementioned mating hole.

[0059] It is understood that the aforementioned first working position and the aforementioned second working position are different positions in the aforementioned first direction; the aforementioned first direction and the aforementioned second direction are two intersecting directions.

[0060] It should be noted that, Figure 1 and Figure 5 The double-headed line F1 in the diagram is used to schematically represent the aforementioned first direction. Figure 1 , Figure 4 and Figure 5 The double-arrow line F2 in the diagram is used to schematically represent the aforementioned second direction. The adjusting brick position adjusting system 10 provided in this embodiment can be used in a downward-adjusting coke oven in practical applications. It is understood that the bottom of the furnace chamber of the downward-adjusting coke oven is provided with the aforementioned adjusting hole and has the aforementioned downward adjusting pipe 10'. The downward adjusting pipe 10' is located below the aforementioned adjusting hole and is coaxially connected with the adjusting hole. The axial direction of the downward adjusting pipe 10' is also the aforementioned height direction.

[0061] Taking the adjusting brick position adjusting system 10 provided in this embodiment of the present disclosure as an example when used in the aforementioned downward adjusting coke oven, at least a portion of the aforementioned first moving component 100 can be disposed within the aforementioned downward adjusting pipe 10' and can move along the aforementioned first direction. The aforementioned first direction can be consistent with the height direction of the downward adjusting pipe 10'. The aforementioned bearing wall 101 can be the top wall of the first moving component 100. Correspondingly, the aforementioned limiting post 220 can be movably disposed on the aforementioned bearing wall 101 so that the first moving component 100 can support the second moving component 200 and the adjusting brick. The aforementioned second direction can be consistent with the radial direction of the aforementioned downward adjusting pipe 10'. Thus, when the adjusting brick is driven by the second moving component 200, a corresponding radial position change relative to the adjusting hole can be generated, thereby changing the coverage area of ​​the adjusting brick on the adjusting hole. And when the minimum position height of the adjusting brick is higher than or equal to the maximum position height of the adjusting hole, at least a portion of the adjusting brick can form a certain amount of overlap with the furnace wall where the adjusting hole is located, so that the adjusting brick can be placed on the furnace wall.

[0062] Understandably, during the process of removing the adjusting brick, the first moving component 100 can pause near the second working position before moving to the aforementioned second working position to facilitate the alignment between the limiting post 220 and the mating hole. After the limiting post 220 and the mating hole are aligned, it can move to the aforementioned second working position so that the limiting post 220 can be inserted into the aforementioned mating hole. In practical applications, when the limiting post 220 exits the aforementioned mating hole, the limiting post 220 can be kept in the current second direction position to reduce the alignment operation between the limiting post 220 and the mating hole when the adjusting brick needs to be removed later.

[0063] like Figure 1 As shown, in some examples, there are multiple first moving components 100 and two moving components 200, and they correspond one-to-one. Each first moving component 100 is used to be set in a down-regulating tube 10'.

[0064] In this technical solution, when the coke oven has multiple aforementioned down-adjustment pipes 10', the number of the first moving component 100 and the second moving component 200 can also be multiple and correspond one-to-one. Each first moving component 100 is used to be set in a down-adjustment pipe 10', which facilitates targeted adjustment of the adjustment holes corresponding to each down-adjustment pipe 10', and helps to further improve the execution efficiency of air volume adjustment operation.

[0065] It is understandable that, in practical applications, the specific number of the first moving component 100 and the second moving component 200 can be set in conjunction with the number of the lower regulating pipes 10' of the coke oven. For example, the number of the first moving component 100 and the second moving component 200 can be the same as the number of the lower regulating pipes 10'.

[0066] like Figure 6As shown, in some examples, the adjusting brick position adjusting system 10 further includes: a driving component 300, wherein a plurality of lower adjusting pipes 10' of the coke oven are arranged in a rectangular array, the driving component 300 is used to be disposed between two adjacent columns of lower adjusting pipes 10', and a plurality of first moving components 100 corresponding to the aforementioned two adjacent columns of lower adjusting pipes 10' are all drivenly connected to the driving component 300, and the driving component 300 is used to drive the aforementioned plurality of first moving components 100 to move along a first direction.

[0067] In this technical solution, the adjusting brick position adjusting system 10 may further include the aforementioned driving component 300. Based on the aforementioned configuration, when the multiple adjusting pipes 10' of the coke oven are arranged in a rectangular array, the driving component 300 can simultaneously drive the first moving components 100 of two adjacent columns synchronously, thereby improving the position adjustment efficiency of multiple adjusting bricks in the aforementioned first direction, reducing the number of driving components 300 used, improving the structural compactness of the system, and helping to reduce the manufacturing and use costs of the adjusting brick position adjusting system 10.

[0068] like Figures 1 to 3 and Figure 6 As shown, in some examples, the drive assembly 300 includes: a drive unit 310, which is disposed between two adjacent columns of down-adjustment tubes 10' and arranged in the middle region of the rectangular array along the column direction of the rectangular array; two commutation units 320, each commutation unit 320 being arranged corresponding to the two adjacent columns of down-adjustment tubes 10', each commutation unit 320 having an input end and two output ends, the two output ends being arranged opposite to each other along the column direction of the rectangular array; and a first drive shaft 330, each input end being connected to the drive unit 310 via the first drive shaft 330. Next, the first drive shaft 330 is arranged along the row direction of the aforementioned rectangular array; the second drive shaft 340 is connected to each output end and is arranged along the column direction of the aforementioned rectangular array; a plurality of drive screws 350 are connected to the second drive shafts 340 and are used to pass through the lower adjustment tube 10' along the first direction; the first moving component 100 is connected to one end of the drive screw 350 and the second drive shaft 340 is used to drive the drive screw 350 to move along the first direction; wherein, the drive screw 350 and the first moving component 100 correspond one-to-one.

[0069] In this technical solution, the drive assembly 300 may include the aforementioned drive section 310, reversing section 320, first transmission shaft 330, second transmission shaft 340, and transmission screw 350. Based on the aforementioned arrangement, the drive assembly 300 can output power using the drive section 310, and the power output by the drive section 310 can be transmitted to the aforementioned two reversing sections 320 respectively through the first transmission shaft 330. Since the drive assembly 300 is arranged in the middle region of the aforementioned rectangular array along the column direction of the aforementioned rectangular array, it is convenient for the two sets of reversing sections 320 and the first transmission shaft 330 to be arranged approximately symmetrically on both sides of the drive section 310, so as to ensure the consistency of the force on the aforementioned two sets of reversing sections 320 and the first transmission shaft 330. The second drive shaft 340 is connected between the output end of the reversing part 320 and the drive screw 350, and the second drive shaft 340 and the drive screw 350 are connected by a transmission connection. Thus, the second drive shaft 340 can further distribute power to each drive screw 350 to drive each drive screw 350 to move synchronously in the first direction, thereby adjusting the position of each first moving component 100 in the first direction so that each adjusting brick can move closer to or further away from the adjusting hole along the height direction of the lower adjusting tube 10'. In addition, the screw drive has good self-locking properties, which helps to prevent the first moving component 100 from being displaced in the first direction when the drive component 300 stops running, thus ensuring the stable and reliable placement and movement of the adjusting brick.

[0070] It is understood that there are two first drive shafts 330, and each reversing part 320 is connected to two second drive shafts 340. The two first drive shafts 330 are arranged opposite each other along the row direction of the rectangular array, and the two second drive shafts 340 connected to each reversing part 320 are arranged opposite each other along the column direction of the rectangular array.

[0071] It is understandable that the aforementioned reversing unit 320 can be, but is not limited to, a two-way steering gear.

[0072] Understandably, in practical applications, the specific number of transmission screws 350 can be set in conjunction with the number of lower regulating pipes 10' in the coke oven. For example, the number of transmission screws 350 can be the same as the number of lower regulating pipes 10' and correspond one-to-one.

[0073] It should be noted that, as Figure 6 As shown, in practical applications, each carbonization chamber is typically arranged with two columns and multiple rows of down-regulating pipes 10'. Figure 6The double-headed arrow S1 schematically represents the row direction of the aforementioned rectangular array, the double-headed arrow S2 schematically represents the column direction of the aforementioned rectangular array, the center line N1 schematically represents the center line of the coke oven carbonization chamber in the row direction of the aforementioned rectangular array, and the center line N2 schematically represents the center line of the coke oven in the column direction of the aforementioned rectangular array. The two columns of down-regulating pipes 10' of each carbonization chamber can be arranged symmetrically about the aforementioned center line N1, and the multiple rows of down-regulating pipes 10' of each carbonization chamber can be arranged symmetrically about the aforementioned center line N2. In this case, the number of the aforementioned drive components 300 can be the same as the number of carbonization chambers, and they are arranged at the intersection of the aforementioned center lines N1 and N2.

[0074] like Figure 6 As shown, in some feasible examples, the drive assembly 300 may further include a reducer 380. The aforementioned drive unit 310 may be a first drive motor, and the output shaft of the first drive motor is connected to the input shaft of the aforementioned reducer 380. The aforementioned reducer 380 may be a dual-output reducer 380, that is, the aforementioned reducer 380 has two output shafts. Both output shafts of the reducer 380 are connected to the aforementioned first transmission shaft 330, and are respectively connected to the two aforementioned commutation units 320. Based on the aforementioned configuration, the power transmission stability of the drive assembly 300 can be further improved.

[0075] like Figures 1 to 3 As shown, in some feasible examples, the drive assembly 300 may further include multiple transmission parts 370, each corresponding to a lead screw 350. The aforementioned transmission parts 370 are driveably connected between the second drive shaft 340 and the lead screw 350. It is understood that the transmission parts 370 and the lead screw 350 are threadedly coupled. The transmission parts 370 drive the lead screw 350 to rotate, causing the lead screw 350 to generate displacement along the aforementioned first direction during rotation. Thus, the drive assembly 300 can perform power conversion between the lead screw 350 and the second drive shaft 340 through the transmission parts 370, facilitating rotation of the lead screw and the second drive shaft 340 along different axial directions.

[0076] like Figures 1 to 3 As shown, in some examples, the drive assembly 300 further includes: a plurality of sealing portions 360 for being disposed at the end of the lower adjustment tube 10' away from the adjustment hole, and a transmission screw 350 passing through the sealing portion 360; wherein, the transmission screw 350 corresponds one-to-one with the sealing portion 360.

[0077] In this technical solution, the drive assembly 300 may also include the aforementioned sealing part 360; based on the aforementioned configuration, the drive assembly 300 can use the sealing part 360 to cover the end of the aforementioned lower regulating pipe 10' that is away from the regulating hole, thereby ensuring the airtightness of the lower regulating pipe 10', which is beneficial to reducing the exchange of media and heat between the furnace chamber and the external environment, and providing a guarantee for the safe and efficient operation of coke oven production.

[0078] It is understandable that the sealing part 360 is sealed to the transmission screw 350 and is used to cover the bottom opening of the lower adjustment pipe 10'.

[0079] For example, when the drive assembly 300 includes the aforementioned transmission part 370, the sealing part 360 may be disposed between the transmission part 370 and the lower adjustment tube 10'.

[0080] like Figure 3 As shown, in some examples, the sealing part 360 includes: a sealing plate 361 for covering the end of the lower adjusting tube 10' away from the adjusting hole, the sealing plate 361 having a connecting hole, the connecting hole being fitted onto the transmission screw 350; and a sealing strip 362 for being disposed between the sealing plate 361 and the lower adjusting tube 10', the sealing strip 362 being arranged around the connecting hole.

[0081] In this technical solution, the sealing part 360 may include the aforementioned sealing plate 361 and sealing strip 362. Based on the aforementioned configuration, the sealing part 360 can use the sealing plate 361 to cover the end of the lower regulating pipe 10' that is away from the regulating hole, and use the sealing strip 362 to seal the gap between the sealing plate 361 and the lower regulating pipe 10', thereby ensuring the airtightness of the lower regulating pipe 10', which is beneficial to reducing the exchange of media and heat between the furnace chamber and the external environment, and providing a guarantee for the safe and efficient operation of coke oven production.

[0082] It is understandable that there is a sealing fit between the sealing plate 361 and the transmission screw 350.

[0083] For example, the aforementioned sealing strip 362 may be, but is not limited to, an asbestos strip.

[0084] like Figure 4 and Figure 5 As shown, in some examples, the first moving component 100 includes: a support platform 110 having a support wall 101, the support platform 110 being disposed on the lowering pipe 10' and adapted to move along a first direction so that the position of the support wall 101 in the height direction of the lowering pipe 10' is adjustable, the support platform 110 having a first working position and a second working position; and an image acquisition unit 120 disposed on the support wall 101 for acquiring image information of the adjusting brick.

[0085] In this technical solution, the first moving component 100 may include the aforementioned support platform 110 and the aforementioned image acquisition unit 120. Based on the aforementioned configuration, the first moving component 100 can use the support platform 110 to support the second moving component 200 and the image acquisition unit 120, thereby ensuring the stability of the second moving component 200, the adjusting brick, and the image acquisition unit 120. The image acquisition unit 120 can also use the image acquisition unit to acquire image information of the adjusting brick on the limiting post 220, so that the operator can determine the specific position of the adjusting brick based on the aforementioned image information and perform motion control of the second adjusting component, thereby improving the ease of use of the adjusting brick position adjustment system 10.

[0086] It is understood that in practical applications, the image acquisition unit 120 may include a camera and a fill light. The camera is used to acquire the aforementioned image information, and the fill light is used to emit light onto the adjustment brick on the limiting post 220, thereby facilitating the acquisition of the aforementioned image information in the case of poor lighting conditions within the lower adjustment tube 10'.

[0087] In some feasible examples, the brick position adjustment system 10 may also include a display device, which is signal-connected to the image acquisition unit 120 to display the image information. This makes it easier for operators to determine the specific position of the brick based on the image information and to control the movement of the second adjustment component, thereby improving the ease of use of the brick position adjustment system 10.

[0088] like Figure 5 As shown, in some examples, the first moving component 100 further includes a protective cover 130 made of a light-transmitting material, for covering the information acquisition end of the image acquisition unit 120.

[0089] In this technical solution, the first moving component 100 may also include the aforementioned protective cover 130; based on the aforementioned configuration, the risk of damage to the image acquisition unit 120 can be reduced, thereby reducing the maintenance cost of the first moving component 100.

[0090] For example, the protective cover 130 may be made of a material that is light-transmitting, heat-resistant, and dustproof.

[0091] It is understood that when the image acquisition unit 120 includes the aforementioned camera, the aforementioned information acquisition end is the lens of the aforementioned camera.

[0092] like Figure 4 and Figure 5 As shown, in some examples, the second moving component 200 further includes a belt drive mechanism 230, which is drive-connected between the drive member 210 and the limiting post 220.

[0093] In this technical solution, the second moving component 200 may include the aforementioned belt drive mechanism 230; based on the aforementioned configuration, the driving component 210 can drive the limiting post 220 to move along the second direction through the belt drive mechanism 230, thereby further improving the displacement stability and position adjustment accuracy of the limiting post 220 and the adjusting brick in the second direction, which is beneficial to achieving precise position control of the adjusting brick in the second direction.

[0094] like Figure 4 and Figure 5 As shown, in some examples, the belt drive mechanism 230 includes: a first pulley 231 rotatably disposed on the support wall 101, and a drive member 210 for driving the first pulley 231 to rotate; a second pulley 232 rotatably disposed on the support wall 101, and the first pulley 231 and the second pulley 232 are arranged at intervals along a second direction; a drive belt 233 connected to the first pulley 231 and the second pulley 232; a sliding plate 234 disposed on the drive belt 233, and a limiting post 220 disposed on the sliding plate 234.

[0095] In this technical solution, the belt drive mechanism 230 may include the aforementioned first pulley 231, second pulley 232, drive belt 233, and sliding plate 234. Based on the aforementioned configuration, the drive member 210 can drive the sliding plate 234, the limiting post 220, and the adjusting brick to move synchronously through the first pulley 231, the second pulley 232, and the drive belt 233. Furthermore, the second moving component 200 can use the sliding plate 234 to support the limiting post 220 and the adjusting brick, which is beneficial to further improve the stability of the adjusting brick on the second moving component 200.

[0096] For example, the aforementioned first pulley 231 and the aforementioned second pulley 232 can both be toothed pulleys, and the aforementioned transmission belt 233 can be a toothed transmission belt 233. The first pulley 231 and the second pulley 232 both mesh with the transmission belt 233, thereby further improving the operational stability of the transmission belt 233.

[0097] In some feasible examples, the aforementioned drive unit 210 can be a second drive motor, and the aforementioned second moving component 200 can also include a control unit 240. The control unit 240 is signal-connected to the drive unit 210 and is used to control the operation of the drive unit 210. For example, the control unit 240 can include a control handle and a signal line. The signal line is connected between the drive unit 210 and the control handle. The control handle is arranged outside the lower regulating pipe 10', and the signal line is covered with a heat insulation layer. Based on this, it is convenient for operators to control the operation of the drive unit 210 through the control handle and the risk of damage to the signal line is reduced.

[0098] In this disclosure, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance; the term "multiple" refers to two or more unless otherwise expressly defined. The terms "install," "connect," "link," and "fix" should be interpreted broadly. For example, "connect" can be a fixed connection, a detachable connection, or an integral connection; "link" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this disclosure according to the specific circumstances.

[0099] In the description of this disclosure, it should be understood that the terms "upper," "lower," "left," "right," "front," "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this disclosure 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 limitations on this disclosure.

[0100] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0101] The above are merely preferred embodiments of this disclosure and are not intended to limit this disclosure. Various modifications and variations can be made to this disclosure by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this disclosure should be included within the scope of protection of this disclosure.

Claims

1. A regulating brick position adjusting system, characterized by, Comprise: A first moving assembly having a bearing wall, the first moving assembly is arranged in a lower adjusting pipe of a coke oven and is adapted to move in a first direction so that the position of the bearing wall in the height direction of the lower adjusting pipe is adjustable, the first moving assembly has a first working position and a second working position; A second moving assembly arranged in the bearing wall and comprising a driving member and a limiting column, the limiting column extends in the first direction and is inserted into a matching hole of an adjusting brick, the driving member drives the limiting column to move in a second direction so that the position of the limiting column in the radial direction of the lower adjusting pipe is adjustable; Wherein, when the first moving assembly is in the first working position, the bearing wall is located in the lower adjusting pipe; when the first moving assembly is in the second working position, the position of the bearing wall is not lower than the position of the adjusting hole of the coke oven.

2. The adjusting brick position adjusting system according to claim 1, wherein: The number of the first moving assembly and the second moving assembly is multiple and one-to-one correspondence, each first moving assembly is arranged in one lower adjusting pipe.

3. The regulating brick position regulating system according to claim 2, wherein, Further comprise: A driving assembly, a plurality of lower adjusting pipes of the coke oven are arranged in a rectangular array, the driving assembly is arranged between two adjacent columns of lower adjusting pipes, a plurality of first moving assemblies corresponding to the two adjacent columns of lower adjusting pipes are drivingly connected to the driving assembly, and the driving assembly drives a plurality of first moving assemblies to move in the first direction.

4. The regulating brick position regulating system according to claim 3, wherein, The driving assembly comprises: A driving part arranged between two adjacent columns of lower adjusting pipes and arranged in the middle area of the rectangular array in the column direction of the rectangular array; Two reversing parts, the two reversing parts are arranged corresponding to the two adjacent columns of lower adjusting pipes respectively, the reversing part has an input end and two output ends, and the two output ends are arranged opposite in the column direction of the rectangular array; A first transmission shaft connected between each input end and the driving part, the first transmission shaft is arranged in the row direction of the rectangular array; A second transmission shaft, one second transmission shaft is connected to each output end, and the second transmission shaft is arranged in the column direction of the rectangular array; A plurality of transmission lead screws drivingly connected to the second transmission shaft, the transmission lead screws are arranged in the lower adjusting pipes in the first direction, one end of the first moving assembly is connected to the transmission lead screw, and the second transmission shaft drives the transmission lead screw to move in the first direction; Wherein, the transmission lead screw and the first moving assembly are one-to-one correspondence.

5. The regulating brick position regulating system according to claim 4, wherein, The driving assembly further comprises: A plurality of sealing parts arranged at one end of the lower adjusting pipe away from the adjusting hole, and the transmission lead screw is arranged in the sealing part; Wherein, the transmission lead screw and the sealing part are one-to-one correspondence.

6. The regulating brick position regulating system according to claim 5, wherein, The sealing part comprises: A sealing plate covering one end of the lower adjusting pipe away from the adjusting hole, the sealing plate is provided with a connecting hole, and the connecting hole is sleeved on the transmission lead screw. A sealing strip is arranged between the sealing plate and the lower adjusting pipe, and surrounds the connecting hole.

7. A brick position adjustment system to adjust a brick position according to any one of claims 1 to 6, wherein, The first moving assembly comprises: A bearing table having the bearing wall, the bearing table is arranged in the lower adjusting pipe and is adapted to move along the first direction so that the position of the bearing wall in the height direction of the lower adjusting pipe is adjustable, the bearing table has the first working position and the second working position; An image acquisition unit is arranged on the bearing wall and is used to acquire image information of the adjusting brick.

8. The regulating brick position regulating system according to claim 7, wherein, The first moving assembly further comprises: A protective cover made of light-transmitting material and arranged on the information acquisition end of the image acquisition unit.

9. The regulating brick position regulating system according to any one of claims 1 to 6, characterized in that, The second moving assembly further comprises: A belt transmission mechanism is drivingly connected between the driving member and the limiting column.

10. The regulating brick position regulating system according to claim 9, wherein, The belt transmission mechanism comprises: A first pulley is rotatably arranged on the bearing wall, and the driving member is used to drive the first pulley to rotate; A second pulley is rotatably arranged on the bearing wall, and the first pulley and the second pulley are arranged in the second direction; A transmission belt is connected between the first pulley and the second pulley; A sliding plate is arranged on the transmission belt, and the limiting column is arranged on the sliding plate.