Red coke transfer system

By designing a red coke transfer system that connects the red coke transport tracks and hoisting frames of different coke ovens, the full dry quenching requirement of coke ovens was met, solving the problems of high investment and long transformation cycle in parallel coke oven layout, improving the efficiency of dry quenching furnaces and reducing dust pollution.

CN224147982UActive Publication Date: 2026-04-21SINOSTEEL EQUIP & ENG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SINOSTEEL EQUIP & ENG
Filing Date
2025-05-21
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

With coke ovens arranged in parallel, how can we ensure normal coke oven production and meet the requirements of full dry quenching, while avoiding high investment and long modification cycles, and improving the efficiency of dry quenching furnaces and energy recovery efficiency?

Method used

Design a red coke transfer system, including red coke transport equipment, red coke transport tracks, hoists and hoist derricks. Different red coke transport tracks are connected by the hoist derricks, allowing different coke ovens to share a dry quenching oven, reducing the number of dry quenching ovens, improving dry quenching efficiency, and reducing smoke and dust pollution through the hoist and coke tank dust collection hood.

Benefits of technology

It has achieved the requirement of full dry quenching for multiple coke ovens, reduced the number of dry quenching ovens, saved investment and land use, shortened the construction period, ensured the normal production of coke ovens, and reduced dust pollution by lifting the hoist frame and coke pot dust collection hood.

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Abstract

The utility model discloses a red coke transfer system, which comprises red coke transportation equipment, red coke transportation tracks, a hoister and a hoister derrick, at least two red coke transportation tracks are arranged in parallel, each red coke transportation track is provided with at least two red coke transportation equipment, the red coke transportation equipment transports coke tanks, and the hoister derrick is arranged on the hoister derrick. A coke oven is arranged at the end part of each red coke conveying rail; the hoister derrick stretches across the red coke conveying rails, hoister rails are arranged on the hoister derrick, and the hoister is movably arranged on the hoister rails; and at least two dry quenching furnaces are arranged at the end part of the elevator track. According to the red coke transfer system disclosed by the utility model, different red coke transport rails are connected through the hoister derrick, and different coke ovens can share the dry quenching furnace, so that the full dry quenching requirement of a plurality of coke ovens can be met; meanwhile, the number of newly-added dry quenching furnaces can be reduced, and investment and land are saved; the number of the dry quenching furnaces is at least two, and normal production of the coke oven can be guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of red coke transfer technology, and more specifically, to a red coke transfer system. Background Technology

[0002] Due to land restrictions for coking, the two coke ovens are arranged in parallel. According to current policies and regulations in some parts of China regarding dry quenching, each coke oven must be equipped with two or more dry quenching units to ensure dry quenching during daily production and maintenance. The arrangement is as follows: Figure 1 As shown in the diagram, the system includes two coke ovens and four dry quenching furnaces 50. Two of the dry quenching furnaces 50 are located on either side of one of the coke ovens. One of these furnaces requires the removal and reconstruction of the existing wet quenching unit. The other two dry quenching furnaces 50 are located on the same side of the coke oven. If this solution is adopted, the investment and construction costs are high, the utilization efficiency of the dry quenching unit is low under normal operating conditions, the dry quenching furnaces and boilers operate at low to medium loads for extended periods, failing to reach optimal operating conditions, resulting in low energy recovery efficiency and lengthy auxiliary media pipeline routes. For the upgrade project, the land use for the second dry quenching unit was not considered in the early stages of the project, making it difficult to implement the aforementioned all-dry quenching solution.

[0003] For the upgrade and renovation project, the original coke oven was initially planned to use wet quenching and a dry quenching device was reserved. During the first round of upgrades, the dry quenching device was constructed. Each year, during the dry quenching device's maintenance period, for approximately 20 to 30 days, the existing wet quenching method was used as the quenching method, with the following layout: Figure 2 As shown in the diagram, on one side of the coke oven 80 is the existing wet quenching unit 60, and on the other side is a dry quenching oven 50. In the upgrading and renovation of coking plants with the above configuration, both new coking facilities and existing equipment need to be constructed. The existing wet quenching towers need to be demolished, and new dry quenching units need to be built. To ensure complete dry quenching, the upgraded layout is as follows... Figure 1 As shown. If the above scheme is adopted, in addition to the disadvantages of the aforementioned new projects, the construction and renovation period will be long, affecting the normal production of existing coking units.

[0004] Therefore, for projects with parallel coke ovens, how to ensure normal coke oven production and meet the requirement of complete dry quenching of red-hot coke in the coke ovens has become a technical problem that urgently needs to be solved by those skilled in the art. Utility Model Content

[0005] In view of this, the purpose of this utility model is to provide a red coke transfer system that can ensure normal production of the coke oven and meet the requirement of complete dry quenching of red coke in the coke oven.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A red coke transfer system includes red coke transport equipment, red coke transport tracks, a hoist and a hoist derrick. The red coke transport tracks include at least two parallel tracks, each track is equipped with at least two red coke transport devices, the red coke transport devices are capable of transporting coke cans, and each red coke transport track is equipped with a coke oven at its end.

[0008] The hoist derrick spans between the various coke transport tracks, and hoist tracks are installed on the hoist derrick, with the hoist movable on the hoist tracks;

[0009] At least two dry quenching furnaces are installed at the ends of the hoist track.

[0010] Optionally, in the above-mentioned red coke transfer system, the red coke transport track includes a first red coke transport track and a second red coke transport track arranged in parallel, and two red coke transport devices are set on each red coke transport track. The dry quenching furnace includes a first dry quenching furnace and a second dry quenching furnace.

[0011] The first dry quenching furnace and the second dry quenching furnace are both located on one side of the first red coke transport track or the second red coke transport track; or, the first dry quenching furnace is located on one side of the first red coke transport track, and the second dry quenching furnace is located on one side of the second red coke transport track.

[0012] Optionally, in the above-mentioned red coke transfer system, the hoist derrick includes a hoisting channel, which includes a first hoisting channel located at the end of the first red coke transport track and a second hoisting channel located at the end of the second red coke transport track. The hoisting track is located between the first and second hoisting channels, and the dry quenching furnace is located at the bottom of the end of the hoisting track.

[0013] Optionally, in the above-mentioned red coke transfer system, positioning components are provided on both the first red coke transport track and the second red coke transport track.

[0014] Optionally, in the above-mentioned red coke transfer system, the elevator is equipped with a coke can dust collection hood, which can at least cover the lid of the coke can;

[0015] The hoist track is equipped with a coke oven dust removal pipe. The coke oven dust collection hood is connected to the coke oven dust removal pipe through a connecting pipe. The coke oven dust removal pipe is connected to the dust removal system of the dry quenching furnace.

[0016] Optionally, in the above-mentioned coke transfer system, at least two hooks are provided on either side of the elevator, and the coke tank is provided with lifting lugs that cooperate with the hooks.

[0017] Optionally, in the aforementioned coke transfer system, the hoist is equipped with a hook status detection element, which is connected to the control components of the hoist.

[0018] Optionally, in the above-mentioned red coke transfer system, safety guardrails are provided on both sides of the bottom of the hoist derrick, and the safety guardrails are retractable guardrails.

[0019] Optionally, in the above-mentioned red coke transfer system, a coke pot protective cover is provided on the hoist derrick.

[0020] Optionally, in the above-mentioned red coke transfer system, the hoist includes a first drive module and a second drive module, and the first drive module and the second drive module can operate in parallel and independently.

[0021] As can be seen from the above solution, the red coke transfer system disclosed by the present utility model connects different red coke transportation tracks through the hoist derrick, enabling different coke ovens to share a dry quenching furnace, capable of meeting the full dry quenching requirements of multiple coke ovens, improving the dry quenching efficiency of the dry quenching furnace; at the same time, reducing the number of newly added dry quenching furnaces, saving investment and land; the dry quenching furnace includes at least two. When one of the dry quenching furnaces is under maintenance, the other dry quenching furnaces can operate normally, ensuring the normal production of the coke oven, and is applicable to new construction and renovation projects. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0023] Figure 1 Schematic diagram of two coke ovens respectively supporting two dry coke quenching furnaces;

[0024] Figure 2 Schematic diagram of one coke oven supporting one wet coke quenching device and one dry coke quenching furnace;

[0025] Figure 3 Schematic diagram of the structure of the red coke transfer system disclosed in the embodiment of the present utility model;

[0026] Figure 4 Cross-sectional view of the hoist derrick disclosed in the embodiment of the present utility model;

[0027] Figure 5 Schematic diagram of the coke pot dust collector disclosed in the embodiment of the present utility model;

[0028] Figure 6 Partial enlargement of the hoist disclosed in the embodiment of the present utility model Figure 1 ;

[0029] Figure 7 Partial enlargement of the hoist disclosed in the embodiment of the present utility model Figure 2 .

[0030] Among them, 10 is the red coke transport track, 11 is the first red coke transport track, 12 is the second red coke transport track, 13 is the coke tank dust removal pipe, and 14 is the positioning component;

[0031] 20 is a coke transport device, and 21 is a coke container;

[0032] 30 is the hoist derrick, 31 is the hoist track, 32 is the hoisting channel, 321 is the first hoisting channel, 322 is the second hoisting channel, and 33 is the coke oven protective cover;

[0033] 40 is the hoist, 41 is the coke oven dust collection hood, 42 is the hook, and 43 is the hook status detection element;

[0034] 50 is the dry quenching furnace, 51 is the first dry quenching furnace, and 52 is the second dry quenching furnace;

[0035] 60 is a wet quenching device, 61 is a pulverized coke settling tank tower, and 62 is a wet quenching tower;

[0036] 70 is a safety railing;

[0037] 80 refers to coke ovens; Detailed Implementation

[0038] Related explanations:

[0039] Dry quenching: Inert gas is used to cool high-temperature coke in a dry quenching furnace, recovering the sensible heat of the red coke. The heat is released in the boiler to produce high-temperature and high-pressure steam for power generation. The cooled inert gas is then returned to the dry quenching furnace to continue quenching the coke.

[0040] Dry quenching: Multiple dry quenching devices are set up according to the output of the furnace group. During normal production, all dry quenching devices are used. When one dry quenching device is under maintenance or in an accident, the remaining dry quenching devices can meet the normal production operation of the coke oven.

[0041] The core of this utility model lies in disclosing a red coke transfer system, which can ensure the normal production of the coke oven and meet the requirement of complete dry quenching of red coke in the coke oven.

[0042] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0043] like Figure 3 and Figure 4As shown in the figure, this utility model embodiment discloses a red coke transfer system, including red coke transport equipment 20, red coke transport track 10, hoist 40 and hoist derrick 30.

[0044] The coke transport track 10 includes at least two parallel tracks, each with at least two coke transport devices 20, preferably two coke transport devices 20. One coke transport device 20 carries empty coke cans 21, and the other carries coke cans 21 filled with coke. The coke transport device 20 is preferably a coke tank car, on which coke cans 21 for holding coke are placed. A coke oven (not shown in the figure) is located at the end of each coke transport track 10. A hoist derrick 30 spans between each coke transport track 10, and a hoist track 31 is mounted on the hoist derrick 30. A hoist 40 is movably mounted on the hoist track 31. At least two dry quenching furnaces 50 are located at the end of the hoist track 31. The dry quenching furnaces 50 are preferably located outside the coke transport track 10. It should be noted that "outside" here refers to the area outside the region between any two adjacent coke transport tracks 10. Multiple dry quenching furnaces 50 can be set on the outside of the same red coke transport track 10, or they can be set on the outside of different red coke transport tracks 10. The specific setting location can be determined according to the actual situation.

[0045] The coke transport device 20 receives coke at the coke oven location, loads the coke into coke cans 21, and then transports it via the coke transport track 10 to below the hoist derrick 30. The hoist 40 carries the empty coke cans 21 along the hoist track 31. The hoist 40 descends and places the empty coke cans 21 onto one of the coke transport devices 20. Then, the coke transport device 20 moves, and the hoist 40 lifts the coke cans 21 filled with coke from the other coke transport device 20 and moves them along the hoist track 31. Together with the loading device, the coke is loaded into the dry quenching furnace 50, where it is dry-quenched to recover its sensible heat. Simultaneously, both coke transport devices 20 return to the coke oven location to continue receiving coke, and after receiving coke, return to below the hoist derrick 30, thus completing the cycle.

[0046] The red coke transfer system disclosed in this embodiment connects different red coke transport tracks 10 via a hoisting frame 30, allowing different coke ovens to share a dry quenching furnace 50. This enables multiple coke ovens to meet their full dry quenching requirements and improves the dry quenching efficiency of the dry quenching furnace 50. Simultaneously, it reduces the number of new dry quenching furnaces 50 required, saving investment, land, and construction time. The dry quenching furnace 50 includes at least two units; when one furnace is under maintenance, the others can operate normally, ensuring normal coke oven production. This system is suitable for both new construction and renovation projects.

[0047] Furthermore, such as Figure 3 As shown, in some specific embodiments, the coke oven includes two units. The red coke transport track 10 includes a first red coke transport track 11 and a second red coke transport track 12 arranged in parallel. Each red coke transport track 10 is equipped with two red coke transport devices 20. The two red coke transport devices 20 are preferably connected by a connecting plate. One red coke transport device does not carry coke canisters 21 and is used to reach the bottom of the hoist derrick 30 to carry empty coke canisters 21. The other red coke transport device 20 carries coke canisters 21 filled with red coke. The dry quenching furnace 50 includes a first dry quenching furnace 51 and a second dry quenching furnace 52. The red coke transport track 10 is preferably of the rail type.

[0048] The first dry quenching furnace 51 and the second dry quenching furnace 52 are both located on one side of the first red coke transport track 11 or the second red coke transport track 12; or, the first dry quenching furnace 51 is located on one side of the first red coke transport track 11, and the second dry quenching furnace 52 is located on one side of the second red coke transport track 12. The specific locations of the first dry quenching furnace 51 and the second dry quenching furnace 52 can be determined according to the actual project conditions. Figure 3 Taking the example where both the first dry quenching furnace 51 and the second dry quenching furnace 52 are located on one side of the second red coke transport track 12, the first dry quenching furnace 51 and the second dry quenching furnace 52 can be used simultaneously, or either one can be selected for use. When one of them needs maintenance, the other can continue to operate. Preferably, the first dry quenching furnace 51 and the second dry quenching furnace 52 are located outside the first red coke transport track 11 or the second red coke transport track 12, that is, in the outer area of ​​the region between the first red coke transport track 11 and the second red coke transport track 12, rather than in the region between the first red coke transport track 11 and the second red coke transport track 12. Figure 3 The first dry quenching furnace 51 and the second dry quenching furnace 52 shown are both located below the second red coke transport track 12, or both the first dry quenching furnace 51 and the second dry quenching furnace 52 are both located above the first red coke transport track 11, or one of the first dry quenching furnace 51 and the second dry quenching furnace 52 is located above the first red coke transport track 11 and the other is located below the second red coke transport track 12.

[0049] Furthermore, such as Figure 4 As shown, the hoist derrick 30 includes a hoisting channel 32, which is preferably a vertical channel formed by steel structural members. The hoisting channel 32 includes a first hoisting channel 321 located at the end of the first red coke transport track 11 and a second hoisting channel 322 located at the end of the second red coke transport track 12. The hoisting machine track 31 is located between the first hoisting channel 321 and the second hoisting channel 322, and the dry quenching furnace 50 is located at the bottom of the end of the hoisting machine track 31.

[0050] like Figures 3-4As shown, the coke transport equipment 20 receives coke from the coke oven and travels along the first coke transport track 11 to the first lifting channel 321. The hoist 40, carrying empty coke cans 21, moves along the hoist track 31 to the first lifting channel 321. The empty coke cans 21 are placed on one of the coke transport equipment 20. Then, the coke cans 21 filled with coke from the other coke transport equipment 20 are lifted and raised to the top of the hoist derrick 30. That is, the coke cans 21 are first raised along the lifting channel 32 to the top of the hoist derrick 30, and then move along the hoist track 31. Subsequently, with the help of the loading device, the coke in the coke cans 21 is loaded into the second dry quenching furnace 52. At the same time, the coke transport equipment 20 returns to the coke oven to continue receiving coke, and the above coke delivery operation is repeated.

[0051] Furthermore, to prevent the hoist 40 from derailing while running along the hoist track 31, limit structures and anti-collision structures are provided at both ends of the hoist track 31. Specifically, the limit structure and anti-collision structure can be used together, using the same part or different parts. For example, the limit structure can be a rigid stop, and the anti-collision structure can be a rubber block, or a buffer pad can be set on the rigid stop; alternatively, the limit structure can be a limit switch. The specific setting method can be determined according to the actual situation.

[0052] Furthermore, to ensure the correct parking position of the coke transport equipment 20 and that the coke canisters 21 on the equipment can fall into the hooks 42 of the hoist 40, positioning components 14 are installed on both the first and second coke transport tracks 11 and 12. These positioning components 14 clamp and position the coke transport equipment 20, ensuring it reaches the bottom of the lifting channel 32 and aligns with the hoist 40. Specifically, the positioning components 14 can be centering clamping devices. After the coke transport equipment 20 stops, the centering clamping devices clamp the protruding structures of the equipment from both sides. Alternatively, the positioning components 14 can be limit switches or centering sensors. The centering sensors can be laser or infrared sensors, and the limit switches or centering sensors are connected to the control components of the hoist 40.

[0053] Furthermore, in order to collect the smoke and dust that escapes during the transfer of coke can 21, such as Figure 5 As shown, a coke oven dust collection hood 41 is provided on the elevator 40. The coke oven dust collection hood 41 is preferably detachably connected to the elevator 40 for easy replacement and removal; alternatively, the coke oven dust collection hood 41 is hinged to the elevator 40, which prevents the coke oven dust collection hood 41 from interfering with the coke loading process into the dry quenching furnace 50. Preferably, the coke oven dust collection hood 41 can at least cover the lid and part of the side wall of the coke oven 21. A coke oven dust removal pipe 13 is provided on the elevator track 31. The coke oven dust collection hood 41 is connected to the coke oven dust removal pipe 13 via a connecting pipe, and the coke oven dust removal pipe 13 is connected to the dust removal system of the dry quenching furnace 50.

[0054] Coke can 21 cannot be sealed during transport, and the red-hot coke inside remains at a high temperature, releasing high-temperature smoke and dust that pollutes the air. The coke can dust collection hood 41 collects the smoke and dust emitted during transport. This smoke and dust is transported via a connecting pipe to the coke can dust removal pipe 13, which is laid along the elevator track 31. The coke can dust removal pipe 13 is sealed by a sealing belt connected to a sealing trolley that can move along the elevator track 31. Preferably, the sealing trolley moves synchronously with the elevator 40. Preferably, the sealing belt is arranged in a "U" shape, with the connection between the connecting pipe and the coke can dust removal pipe 842 positioned below the sealing belt. In other embodiments, a water seal can also be used. The flue gas in the coke can dust removal pipe 13 flows into the dust removal system of the dry quenching furnace 50 and is discharged after purification. The coke can dust collection hood 41 collects pollutants emitted by the coke can 21 during its movement along the elevator track 31, reducing pollutant emissions.

[0055] Furthermore, such as Figure 6 and Figure 7 As shown, to improve the safety and reliability of the coke can 21 during transfer, at least two hooks 42 are provided on each side of the hoist 40, and lifting lugs that cooperate with the hooks 42 are provided on the coke can 21. The hoist 40 shown in the figure has two hooks 42 on each side, and each side of the coke can 21 has two lifting lugs that can cooperate with the hooks 42. This two-set hook 42 configuration ensures that if one set of hooks 42 fails, the other set can still operate normally, reducing the likelihood of the coke can 21 falling due to hook 42 failure.

[0056] Furthermore, in order to detect the engagement status of the hook 42 of the hoist 40 with the lifting lug on the coke can 21, the hoist 40 is equipped with a hook status detection element 43. The hook status detection element 43 is preferably positioned on both sides of the coke can 21, matching the position of the hook 42, and is connected to the control component of the hoist 40. When the hook status detection element 43 detects that the hook 42 and the coke can 21 are engaged, it transmits a signal to the control component of the hoist 40. The control component then sends a signal to the hoist 40, which lifts the coke can 21. During the operation of the hoist 40 carrying the coke can 21, the hook status detection element 43 can also monitor the status of the hook 42 in real time. If an abnormality is detected, the hook status detection element 43 sends a signal to the control component of the hoist 40, guiding the hoist 40 to take a response action. Specifically, the hook status detection element 43 preferably uses a vision sensor to detect the status of the hook 42 through image recognition.

[0057] Furthermore, such as Figure 4As shown, to ensure safety during the transfer of coke canisters 21 by the hoist 40 and to reduce the risk of accidents caused by coke and canisters 21 falling during high-altitude transport, safety railings 70 are installed on both sides of the bottom of the hoist derrick 30. These safety railings 70 are retractable; they close when coke canisters 21 are being transferred to prevent pedestrians and vehicles from passing through, and open when coke canisters 21 are not being transferred, allowing vehicles and pedestrians to pass normally. Furthermore, warning signs can be installed on the safety railings 70 for added safety.

[0058] Furthermore, to prevent the coke can 21 and the loaded red coke from falling off during the transfer process, a coke can protective cover 33 is provided on the hoist frame 30. The coke can protective cover 33 is arranged along the direction of the hoist track. The coke can protective cover 33 is preferably made of grating plate, and the grating plate is preferably made of high temperature resistant material. The cross section of the coke can protective cover 33 is preferably U-shaped. The coke can 21 moves inside the coke can protective cover 33 to prevent the coke can 21 and the red coke from falling off.

[0059] Furthermore, to ensure the normal operation of the hoist 40 and to improve the reliability and continuity of its operation, the hoist 40 employs a dual-power drive system. Specifically, the hoist 40 includes a first drive module and a second drive module, which can operate in parallel or independently. Preferably, both the first and second drive modules are electric motors. During normal operation, both motors work simultaneously to ensure the hoist 40 operates at its rated speed. If either the first or second drive module fails, the other can still drive the hoist 40 to continue operating.

[0060] Furthermore, such as Figure 3 As shown, in some specific embodiments, the red coke transfer system also includes a wet quenching device 60, which specifically includes a wet quenching tower 61 and a coke settling tank 62. In cases involving project modifications, the modification process does not affect the normal production of the coke oven, and the wet quenching device 60 can operate normally. After completion, the wet quenching function can be retained according to actual needs, and the wet quenching device 60 does not need to be dismantled. This approach can save on modification costs.

[0061] It should be noted that the various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.

[0062] In the description of the embodiments of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to 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 the embodiments of this utility model based on the specific circumstances.

[0063] In the description of the embodiments of this utility model, it should be noted that the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" 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 the embodiments of this utility model and simplifying the description, and do not indicate or imply that the device or element 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 the embodiments of this utility model.

[0064] Hereinafter, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature.

[0065] This article uses specific examples to illustrate the principles and implementation methods of this utility model. The descriptions of the above embodiments are only for the purpose of helping to understand the core ideas of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made to this utility model without departing from the principles of this utility model, and these improvements and modifications also fall within the protection scope of the claims of this utility model.

Claims

1. A red coke handling system comprising a red coke transport device (20), a red coke transport track (10), a hoist (40) and a hoist mast (30), characterized in that, The red coke transport track (10) includes at least two parallel tracks, and each red coke transport track (10) is provided with at least two red coke transport devices (20). The red coke transport devices (20) are capable of transporting coke cans (21), and each red coke transport track (10) is provided with a coke oven at its end. The hoist derrick (30) spans between each of the red coke transport tracks (10), and the hoist derrick (30) is provided with a hoist track (31), and the hoist (40) is movably mounted on the hoist track (31); At least two dry quenching furnaces (50) are provided at the end of the hoist track (31).

2. The hematofocus transport system of claim 1, wherein, The red coke transport track (10) includes a first red coke transport track (11) and a second red coke transport track (12) arranged in parallel. Two red coke transport devices (20) are provided on each red coke transport track (10). The dry quenching furnace (50) includes a first dry quenching furnace (51) and a second dry quenching furnace (52). The first dry quenching furnace (51) and the second dry quenching furnace (52) are both located on one side of the first red coke transport track (11) or the second red coke transport track (12); or, the first dry quenching furnace (51) is located on one side of the first red coke transport track (11), and the second dry quenching furnace (52) is located on one side of the second red coke transport track (12).

3. The hematofocus transport system of claim 2, wherein, The hoist derrick (30) includes a hoisting channel (32), which includes a first hoisting channel (321) located at the end of the first red coke transport track (11) and a second hoisting channel (322) located at the end of the second red coke transport track (12). The hoisting track (31) is located between the first hoisting channel (321) and the second hoisting channel (322). The dry quenching furnace (50) is located at the bottom of the end of the hoisting track (31).

4. The redox shuttle system of claim 3, wherein, Positioning components (14) are provided on both the first red coke transport track (11) and the second red coke transport track (12).

5. The redox shuttle system of claim 2, wherein, The hoist (40) is equipped with a coke can dust collection hood (41), which can at least cover the lid of the coke can (21); A coke oven dust removal pipe (13) is provided on the hoist track (31). The coke oven dust collection hood (41) is connected to the coke oven dust removal pipe (13) through a connecting pipe. The coke oven dust removal pipe (13) is connected to the dust removal system of the dry quenching furnace (50). The coke oven dust removal pipe (13) is sealed by a sealing belt. The sealing belt is connected to a sealing trolley. The sealing trolley can move along the hoist track (31).

6. The redox shuttle system of claim 2, wherein, At least two hooks (42) are provided on either side of the hoist (40), and the coke can (21) is provided with a lifting lug that cooperates with the hooks (42).

7. The red pyrite transport system of claim 6, wherein, The hoist (40) is equipped with a hook status detection element (43), which is connected to the control component of the hoist (40).

8. The redox shuttle system of claim 2, wherein, Safety railings (70) are provided on both sides of the bottom of the hoist derrick (30), and the safety railings (70) are retractable guardrails.

9. The redox shuttle system of claim 8, wherein, The hoist derrick (30) is equipped with a coke pot protective cover (33).

10. The red coke transfer system according to any one of claims 1-9, characterized in that, The hoist (40) includes a first drive module and a second drive module, which can operate in parallel or independently.