CN209894016U - Movable ferrosilicon pouring flue gas waste heat recovery device - Google Patents

Movable ferrosilicon pouring flue gas waste heat recovery device Download PDF

Info

Publication number
CN209894016U
CN209894016U CN201920392564.2U CN201920392564U CN209894016U CN 209894016 U CN209894016 U CN 209894016U CN 201920392564 U CN201920392564 U CN 201920392564U CN 209894016 U CN209894016 U CN 209894016U
Authority
CN
China
Prior art keywords
flue gas
isolation door
pouring
isolation
waste heat
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201920392564.2U
Other languages
Chinese (zh)
Inventor
房守忠
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Ningxia Sanyuan Zhongtai Metallurgical Co Ltd
Original Assignee
Ningxia Sanyuan Zhongtai Metallurgical Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Ningxia Sanyuan Zhongtai Metallurgical Co Ltd filed Critical Ningxia Sanyuan Zhongtai Metallurgical Co Ltd
Priority to CN201920392564.2U priority Critical patent/CN209894016U/en
Application granted granted Critical
Publication of CN209894016U publication Critical patent/CN209894016U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Waste-Gas Treatment And Other Accessory Devices For Furnaces (AREA)

Abstract

A movable ferrosilicon pouring flue gas waste heat recovery device comprises a supporting mechanism, a moving mechanism, a ferrosilicon water containing mechanism, a flue gas waste heat recovery mechanism and a flue gas waste heat isolation mechanism, wherein the supporting mechanism is arranged on the moving mechanism, the moving mechanism is arranged in an external chute arranged at the lower end of a horizontal plane, the ferrosilicon water containing mechanism is arranged inside the bottom end of the supporting mechanism, the flue gas waste heat recovery mechanism is arranged at the top of the supporting mechanism, the flue gas waste heat isolation mechanism is arranged at two sides of the supporting mechanism, the utility model discloses a first moving wheel, a second moving wheel, a third moving wheel and a fourth moving wheel are arranged to enable a first vertical plate and a second vertical plate to relatively move in the external chute, the distance between the first vertical plate and the second vertical plate can be enlarged or reduced so as to be suitable for various types of external ferrosilicon water pouring devices to finish pouring tasks, the problem of present outside ferrosilicon water pouring device be difficult to general in to pouring base pouring process is solved.

Description

Movable ferrosilicon pouring flue gas waste heat recovery device
Technical Field
The utility model relates to a ferrosilicon water pouring waste heat recovery technical field especially relates to a portable ferrosilicon pouring flue gas waste heat recovery device.
Background
In the prior art, molten silicon iron is firstly poured into a pouring base, the pouring base is provided with an overflow port, the molten silicon iron flows out from the overflow port after being filled in the pouring base, the overflow port is arranged at one end of an ingot mold, the molten silicon iron flowing out from the overflow port flows into the ingot mold, and a large amount of heat is released in the process of pouring molten silicon iron to the pouring base and discharging the molten silicon iron from the pouring base, although the upper end of the pouring base is provided with the flue gas recovery cover, the upper end and the periphery of the pouring base are open environments, a large amount of waste heat in the silicon molten iron can still be continuously released to the surrounding environment, the flue gas recovery hood has low waste heat recovery efficiency in the process of pouring the silicon molten iron, thereby causing great energy waste, meanwhile, the heat exchange between the waste heat in the silicon molten iron pouring process and the ambient air is carried out, so that the temperature of the ambient air is increased, the harm to nearby workers is easy to cause, and the potential safety hazard exists.
In the prior art, the supporting mechanisms are usually fixedly arranged at two sides of the pouring base, the distance between the supporting mechanisms is constant, the internal size of a silicon iron pouring space is limited, when silicon iron is poured to the pouring base at the bottom end between the supporting mechanisms, an external silicon iron pouring device matched with the supporting mechanisms is required to be used, and when the external silicon iron pouring device breaks down, other external silicon iron pouring devices are difficult to pour the iron into the pouring base; when the size of the output end of the external molten silicon iron pouring device is larger than the distance between the supporting mechanisms, the output end of the external molten silicon iron pouring device is difficult to arrange on the pouring base, and the pouring task cannot be finished.
Disclosure of Invention
In view of the above, it is necessary to provide a mobile ferrosilicon casting flue gas waste heat recovery device.
A movable ferrosilicon pouring flue gas waste heat recovery device comprises a supporting mechanism, a moving mechanism, a ferrosilicon water containing mechanism, a flue gas waste heat recovery mechanism and a flue gas waste heat isolating mechanism, wherein the supporting mechanism is arranged on the moving mechanism, the moving mechanism is arranged in an external chute formed at the lower end of a horizontal plane, the ferrosilicon water containing mechanism is arranged inside the bottom end of the supporting mechanism, the flue gas waste heat recovery mechanism is arranged at the top of the supporting mechanism, the flue gas waste heat isolating mechanism is arranged on two sides of the supporting mechanism, the supporting mechanism comprises a first vertical plate and a second vertical plate, the first vertical plate is arranged on one side of the ferrosilicon water containing mechanism, the second vertical plate is arranged on the other side of the ferrosilicon water containing mechanism, the moving mechanism comprises a first moving wheel, a second moving wheel, a third moving wheel and a fourth moving wheel, and the first moving wheel and the second moving wheel are respectively arranged on two sides of the bottom end of the, so that the first vertical plate can freely move along the direction of the chute, the third movable wheel and the fourth movable wheel are respectively arranged at two sides of the bottom end of the second vertical plate, so that the second vertical plate can freely move along the direction of the chute, the silicon iron water containing mechanism is a pouring base, the pouring base is arranged on the horizontal plane, the flue gas waste heat recovery mechanism comprises a flue gas collecting cover, a flue gas waste heat recovery pipe and a fixed pull rod, the flue gas collecting cover is arranged at the top end of the first vertical plate and the second vertical plate, so that the interior of the flue gas collecting cover, the first vertical plate and the second vertical plate forms a silicon iron pouring space, two sides of the silicon iron pouring space are open, a through hole is arranged in the flue gas collecting cover, one end of the flue gas waste heat recovery pipe is arranged in the through hole of the flue gas collecting cover, the other end of the flue gas waste heat recovery pipe is connected with an external device, so as to convey, one end of the fixed pull rod is arranged on the smoke collecting cover, the other end of the fixed pull rod is arranged on a cross beam or a longitudinal beam of the pouring workshop, the smoke waste heat isolating mechanism comprises a first isolating door, a second isolating door, a third isolating door and a fourth isolating door, the first isolating door is arranged on one side of a first vertical plate, the second isolating door is arranged on the other side of the first vertical plate, the third isolating door is arranged on one side of a second vertical plate, the fourth isolating door is arranged on the other side of the second vertical plate, the first isolating door and the third isolating door are connected on one side of the silicon iron pouring space, so that the first isolating door and the third isolating door form a first isolating surface on one side of the silicon iron pouring space to prevent smoke with waste heat in the silicon iron pouring space from escaping from an opening on one side of the silicon iron pouring space, the second isolating door and the fourth isolating door are connected on the other side of the silicon iron pouring space, so that second isolation door and fourth isolation door form the isolated face of second at ferrosilicon pouring space opposite side to prevent that the inside flue gas that has the waste heat of ferrosilicon pouring space from escaping in the uncovered of ferrosilicon pouring space opposite side.
Preferably, the first isolation door and the third isolation door are symmetrically arranged on a first isolation surface, the first isolation door and the third isolation door are rigid high-temperature-resistant plate bodies, the second isolation door and the fourth isolation door are symmetrically arranged on a second isolation surface, and the second isolation door and the fourth isolation door are high-temperature-resistant rigid plate bodies.
Preferably, the junction of the first isolation door and one side of the first riser is provided with a plurality of first hinges so as to enable the first isolation door to rotate freely on one side of the first riser, the junction of the second isolation door and the other side of the first riser is provided with a plurality of second hinges so as to enable the second isolation door to rotate freely on the other side of the first riser, the junction of the third isolation door and one side of the second riser is provided with a plurality of third hinges so as to enable the third isolation door to rotate freely on one side of the second riser, and the junction of the fourth isolation door and the other side of the second riser is provided with a plurality of fourth hinges so as to enable the fourth isolation door to rotate freely on the other side of the second riser.
Preferably, the top end of the second isolation surface is adjacent to the smoke collection cover, the bottom end of the second isolation surface is higher than the pouring base so that a first gap is formed between the second isolation surface and the pouring base, the top end of the first isolation surface is adjacent to the smoke collection cover, the bottom end of the first isolation surface is higher than the bottom end of the second isolation surface so that a second gap is formed between the first isolation surface and the pouring base, and the second gap is larger than the first gap.
Preferably, the second isolation door and the fourth isolation door are also provided with a plurality of first fixing pieces at the connection part of the other side of the silicon iron casting space, each first fixing piece comprises a first fixing block, a second fixing block and a first T-shaped pin, the first fixing block is arranged at one side of the second isolation door far away from the second hinge, a semicircular through hole is formed at one side end part of the second fixing block, the second fixing block is arranged at one side of the fourth isolation door far away from the fourth hinge, a semicircular through hole is formed at one side end part of the second fixing block, the first fixing block is connected with the second fixing block, so that the semicircular through hole of the first fixing block is connected with the semicircular through hole of the second fixing block to form a first round hole for arranging the first T-shaped pin, one end of the first T-shaped pin penetrates through the first round hole, and the other end of the first T-shaped pin is arranged at the upper end, so as to fix the first fixed block and the second fixed block; first isolation door and third isolation door are provided with a plurality of second mounting in ferrosilicon pouring space one side junction, the second mounting is the same with first mounting structure to fix first isolation door, third isolation door.
Preferably, still be provided with the first ventilation hole of a plurality of on the first isolation door to make the outside air be connected with the ferrosilicon pouring space of keeping away from pouring base one end, still be provided with a plurality of second ventilation hole, third ventilation hole on the second isolation door, the third ventilation hole sets up in the one end that the second isolation door is close to the pouring base, so that the outside air is linked together with the ferrosilicon pouring space that is close to pouring base one end, the second ventilation hole sets up in the one end that the pouring base was kept away from to the second isolation door, so that the outside air is linked together with the ferrosilicon pouring space of keeping away from pouring base one end.
Preferably, the outer surface of the first isolating door is further provided with a first heat-insulating layer to greatly reduce heat exchange between the flue gas waste heat and the external air in the silicon iron pouring space, and the first heat-insulating layer is provided with a plurality of through holes which are the same as the first ventilation holes so that the external air passes through the through holes of the first heat-insulating layer and the first ventilation holes and enters the silicon iron pouring space; still be provided with the second heat preservation on the surface of second insulated door to reduce the heat exchange of flue gas waste heat and outside air in the ferrosilicon pouring space by a wide margin, set up the through-hole that a plurality of and second venthole, third venthole are the same on the second heat preservation, so that outside air passes through and enters inside the ferrosilicon pouring space from through-hole, second venthole, the third venthole of second heat preservation.
Preferably, the top ends of the first vertical plate and the second vertical plate are further provided with a first heat-insulating baffle to reduce gaps between the first vertical plate and the smoke collection cover, the top ends of the first isolation door and the third isolation door are further provided with a second heat-insulating baffle to reduce gaps between the first isolation door and the smoke collection cover, the top ends of the second isolation door and the fourth isolation door are further provided with a third heat-insulating baffle to reduce gaps between the second isolation door and the smoke collection cover, and the top ends of the fourth isolation door and the smoke collection cover are further provided with a third heat-insulating baffle.
The utility model is provided with a first isolation door, a second isolation door, a third isolation door and a fourth isolation door, the first isolation door is rotated towards the opening at one side of the silicon iron pouring space, the third isolation door is rotated towards the opening at one side of the silicon iron pouring space, so that the first isolation door and the third isolation door form a first isolation surface at one side of the silicon iron pouring space, the second isolation door rotates towards the opening at the other side of the silicon iron pouring space, the fourth isolation door rotates towards the opening at the other side of the silicon iron pouring space, so that the second isolation door and the fourth isolation door form a second isolation surface on the other side of the silicon iron pouring space, the contact surface of flue gas waste heat and outside air in with reducing ferrosilicon pouring space by a wide margin, flue gas waste heat and the direct heat exchange of outside air in reducing ferrosilicon pouring space can also reduce ferrosilicon pouring space both sides to staff's potential harm on every side.
The utility model discloses still be provided with first ventilation hole, the second ventilation hole, third ventilation hole, outside air is constantly from first ventilation hole, the second ventilation hole, third ventilation hole and other gaps are inhaled to ferrosilicon pouring space in, inhaled outside air is heated in ferrosilicon pouring space and is become the flue gas, and heat in the ferrosilicon pouring space is difficult to follow first ventilation hole, the second ventilation hole, third ventilation hole and other gaps escape to the external environment, the effectual inside heat exchange with the outside air in ferrosilicon pouring space that has reduced, the heat that makes the ferrosilicon molten iron becomes the flue gas with the heating of more outside air, promote the inside flue gas total amount in ferrosilicon pouring space, flue gas waste heat recovery pipe carries more flue gas to external device in, realize the highest recovery of flue gas waste heat in the ferrosilicon pouring space.
The utility model discloses be provided with first removal wheel, the second removes the wheel in the first riser bottom of supporting mechanism one side to make the first riser can freely remove along the spout direction, the third removes the wheel, the fourth removes the wheel that sets up in the second riser bottom of supporting mechanism opposite side, so that the second riser can freely remove along the spout direction, through setting up first removal wheel, the second removes the wheel, the third removes the wheel, the fourth removes the wheel, make the first riser, the second riser relatively moves in external spout, the distance between first riser and the second riser can grow or diminish, accomplish the pouring task with the outside ferrosilicon pouring device who is applicable to various models, solved the difficult problem that current outside ferrosilicon pouring device is difficult to general in pouring base pouring process; collect cover and supporting mechanism separation with the flue gas, collect the cover with the flue gas and set up the top in riser, second riser to make the flue gas collect the ferrosilicon pouring space that forms the changeability between cover, riser, the second riser, set up to the jumbo size through collecting the cover with the flue gas simultaneously, with the size that increases ferrosilicon pouring space, make riser, second riser have bigger relative displacement in ferrosilicon pouring space.
Drawings
FIG. 1 is a schematic front view of a mobile ferrosilicon pouring flue gas waste heat recovery device.
FIG. 2 is a schematic diagram of a side view of a mobile ferrosilicon pouring flue gas waste heat recovery device.
In the figure: the first vertical plate 11, the first heat-preservation baffle 111, the second vertical plate 12, the pouring base 21, the flue gas waste heat recovery pipe 31, the flue gas collection cover 32, the fixed pull rod 33, the first isolation door 41, the first hinge 411, the first vent hole 412, the second heat-preservation baffle 413, the second isolation door 42, the second hinge 421, the first fixing piece 422, the first fixing piece 4221, the second fixing piece 4222, the first T-shaped pin 4223, the second vent hole 423, the third vent hole 424, the third heat-preservation baffle 425, the fourth isolation door 44, the fourth hinge 441, the first movable wheel 51, the second movable wheel 52 and the fourth movable wheel 54.
Detailed Description
In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required to be used in the embodiments will be briefly described below, and it is obvious that the drawings in the following description are some embodiments of the present invention, and it is obvious for those skilled in the art that other drawings can be obtained according to these drawings without creative efforts.
Referring to fig. 1 and 2, the utility model provides a mobile ferrosilicon pouring flue gas waste heat recovery device, which comprises a supporting mechanism, a moving mechanism, a ferrosilicon water containing mechanism, a flue gas waste heat recovery mechanism and a flue gas waste heat isolating mechanism, wherein the supporting mechanism is arranged on the moving mechanism, the moving mechanism is arranged in an external chute arranged at the lower end of a horizontal plane, the ferrosilicon water containing mechanism is arranged inside the bottom end of the supporting mechanism, the flue gas waste heat recovery mechanism is arranged at the top of the supporting mechanism, the flue gas waste heat isolating mechanism is arranged at two sides of the supporting mechanism so as to greatly reduce the contact surface between the flue gas waste heat and the external air in the ferrosilicon pouring space, the supporting mechanism comprises a first vertical plate 11 and a second vertical plate 12, the first vertical plate 11 is arranged at one side of the ferrosilicon water containing mechanism, the second vertical plate 12 is arranged at the other side of the ferrosilicon, the moving mechanism comprises a first moving wheel 51, a second moving wheel 52, a third moving wheel and a fourth moving wheel 54, the first moving wheel 51 and the second moving wheel 52 are respectively arranged at two sides of the bottom end of a first vertical plate 11 so as to enable the first vertical plate 11 to freely move along the sliding chute direction, the third moving wheel and the fourth moving wheel 54 are respectively arranged at two sides of the bottom end of a second vertical plate 12 so as to enable the second vertical plate 12 to freely move along the sliding chute direction, the silicon iron containing mechanism is a pouring base 21, the silicon iron is filled in the pouring base 21 and flows out from an overflow port, then flows into an external ingot mold, and when the silicon iron and the silicon iron are poured to the pouring base 21 in the flowing process from the pouring base 21, the silicon iron releases a large amount of heat, the large amount of heat is exchanged with air heat to form flue gas with waste heat, the flue gas is filled in a silicon iron pouring space, the pouring base 21 is arranged on a horizontal plane, the flue gas waste heat recovery mechanism comprises a flue gas waste heat recovery pipe 31, a flue gas collection cover 32 and a fixed pull rod 33, wherein the flue gas collection cover 32 is arranged at the top ends of a first vertical plate 11 and a second vertical plate 12, so that the flue gas collection cover 32, the first vertical plate 11 and the second vertical plate 12 are internally provided with a silicon iron pouring space, two sides of the silicon iron pouring space are open, a through hole is formed in the flue gas collection cover 32, one end of the flue gas waste heat recovery pipe 31 is arranged in the through hole of the flue gas collection cover 32, the other end of the flue gas waste heat recovery pipe 31 is connected with an external device, so that the flue gas with waste heat in the silicon iron pouring space is conveyed to the external device and then is recycled by the external device, one end of the fixed pull rod 33 is arranged on the flue gas collection cover 32, the other end of the fixed pull rod 33 is arranged on a cross beam or a longitudinal beam of a pouring workshop, in order to collect the lower extreme at crossbeam or longeron with the flue gas that the cover 32 is fixed, fixed pull rod 33 is the rigid member, flue gas waste heat isolation mechanism includes first insulated door 41, second insulated door 42, third insulated door, fourth insulated door 44, first insulated door 41 sets up in 11 one sides of first riser, second insulated door 42 sets up in 11 opposite sides of first riser, the third insulated door sets up in second riser 12 one side, fourth insulated door 44 sets up in 12 opposite sides of second riser, first insulated door 41 is connected in ferrosilicon pouring space one side with the third insulated door to make first insulated door 41 and third insulated door form first isolated surface in ferrosilicon pouring space one side, with the contact surface of flue gas waste heat and outside air in reducing ferrosilicon pouring space, escape from the uncovered of ferrosilicon pouring space one side with the inside flue gas that has the waste heat in order to prevent ferrosilicon pouring space, second isolation door 42 is connected at ferrosilicon pouring space opposite side with fourth isolation door 44 to make second isolation door 42 and fourth isolation door 44 form the isolated face of second at ferrosilicon pouring space opposite side, with the contact surface of flue gas waste heat and outside air in reducing ferrosilicon pouring space, in order to prevent that the inside flue gas that has the waste heat in ferrosilicon pouring space from escaping in the uncovered of ferrosilicon pouring space opposite side.
Specifically, cover 32 is collected to first riser 11, second riser 12, flue gas is rigidity plate body or wall body, and the surface of collecting cover 32 at first riser 11, second riser 12, flue gas sets up the heat preservation to prevent that the flue gas waste heat in the ferrosilicon pouring space from collecting cover 32 and the external heat exchange of carrying out through first riser 11, second riser 12, flue gas, reduce the thermal loss in ferrosilicon pouring space.
Specifically, an air draft device can be further arranged between the pipeline connected with the external device at the other end of the flue gas waste heat recovery pipe 31, so that the recovery efficiency of the flue gas volume in the ferrosilicon pouring space of the flue gas waste heat recovery pipe 31 is accelerated.
Concretely, supporting mechanism's height is far greater than the height of pouring base 21, cause the inside ferrosilicon pouring space of supporting mechanism very big, and first isolation surface that first isolation door 41 is connected the formation with the third isolation door sets up in the uncovered of ferrosilicon pouring space one side, second isolation door 42 sets up in the uncovered of ferrosilicon pouring space opposite side with the second isolation surface that fourth isolation door 44 is connected the formation, with reduce the contact surface of flue gas waste heat and outside air in the ferrosilicon pouring space by a wide margin, reduce the direct heat exchange of flue gas waste heat and outside air in the ferrosilicon pouring space, in carrying to flue gas waste heat recovery pipe 31 in making the flue gas in the ferrosilicon pouring space as much as possible, improve the recovery total amount of flue gas waste heat recovery pipe 31 to the flue gas.
Specifically, the first moving wheel 51, the second moving wheel 52, the third moving wheel and the fourth moving wheel 54 are further provided with brake elements, and after the first moving wheel 51, the second moving wheel 52, the third moving wheel and the fourth moving wheel 54 are moved to preset positions, the first moving wheel 51, the second moving wheel 52, the third moving wheel and the fourth moving wheel 54 are fixed in the external chute by the brake elements.
The utility model discloses be provided with first removal wheel 51, second removal wheel 52 in the first riser 11 bottom of supporting mechanism one side, so that first riser 11 can follow the spout direction and freely move, the third removal wheel that sets up in the second riser 12 bottom of supporting mechanism opposite side, fourth removal wheel 54, so that second riser 12 can follow the spout direction and freely move, through setting up first removal wheel 51, second removal wheel 52, third removal wheel, fourth removal wheel 54, so that first riser 11, second riser 12 relatively move in the outside spout, the distance between first riser 11 and second riser 12 can grow or diminish, accomplish the pouring task with the outside ferrosilicon pouring device that is applicable to various models, the difficult general difficult problem of present outside ferrosilicon pouring device in to pouring base 21 pouring process is solved; collect cover 32 and supporting mechanism separation with the flue gas, collect the cover 32 with the flue gas and set up in the top of first riser 11, second riser 12 to make the flue gas collect cover 32, first riser 11, form the ferrosilicon pouring space that can change between the second riser 12, set up to the jumbo size through collecting cover 32 with the flue gas simultaneously, with the size that increases ferrosilicon pouring space, make first riser 11, second riser 12 have bigger relative displacement in ferrosilicon pouring space.
It is specific, can also set up the observation window of high difference respectively on first isolation door 41, second isolation door 42, third isolation door, the fourth isolation door 44, the observation window is made by high temperature resistant glass, is favorable to operating personnel from different angles, the not real-time course of outside silicon iron water pouring device output pouring molten iron to pouring base 21 in silicon iron pouring space, is favorable to operating personnel to follow different angles simultaneously, the not real-time course that the silicon iron flows from the overflow mouth and flows into to the ingot mould in the not high observation pouring base 21, operating personnel adjusts the silicon iron water pouring direction and the velocity of flow of outside silicon iron water pouring device output according to real-time course to realize the accuracy of outside silicon iron water pouring device output in silicon iron pouring space, high-efficient pouring.
Further, the first isolation door 41 and the third isolation door are symmetrically arranged on the first isolation surface, the first isolation door 41 and the third isolation door are rigid high-temperature-resistant plates, the second isolation door 42 and the fourth isolation door 44 are symmetrically arranged on the second isolation surface, and the second isolation door 42 and the fourth isolation door 44 are high-temperature-resistant rigid plates.
Specifically, the first isolation surface is arranged on one side of the silicon iron pouring space, the second isolation surface is arranged on the other side of the silicon iron pouring space, the first isolation surface and the second isolation surface have large surface areas, and the first isolation door 41 and the third isolation door are required to be rigid high-temperature-resistant plate bodies, so that the first isolation door 41 and the third isolation door are heated in the silicon iron pouring space without deformation, the first isolation door 41 is arranged on one side of the first vertical plate 11, and the third isolation door is arranged on one side of the second vertical plate 12; similarly, the second isolation door 42 and the fourth isolation door 44 are required to be high temperature resistant rigid plates.
Further, a plurality of first hinges 411 are arranged at the connection position of the first isolation door 41 and one side of the first vertical plate 11, so that the first isolation door 41 can freely rotate at one side of the first vertical plate 11, a plurality of second hinges 421 are arranged at the connection position of the second isolation door 42 and the other side of the first vertical plate 11, so that the second isolation door 42 can freely rotate at the other side of the first vertical plate 11, a plurality of third hinges are arranged at the connection position of the third isolation door and one side of the second vertical plate 12, so that the third isolation door can freely rotate at one side of the second vertical plate 12, and a plurality of fourth hinges 441 are arranged at the connection position of the fourth isolation door 44 and the other side of the second vertical plate 12, so that the fourth isolation door 44 can freely rotate at the other side of the second vertical plate 12.
Concretely, the silicon iron water pours before the pouring in the ferrosilicon pouring space, rotate first isolation door 41 to the uncovered of ferrosilicon pouring space one side, rotate the third isolation door to the uncovered of ferrosilicon pouring space one side, so that first isolation door 41 and third isolation door form first isolation face in ferrosilicon pouring space one side, rotate second isolation door 42 to the uncovered of ferrosilicon pouring space opposite side, rotate fourth isolation door 44 to the uncovered of ferrosilicon pouring space opposite side, so that second isolation door 42 and fourth isolation door 44 form second isolation face at ferrosilicon pouring space opposite side, with reduce the contact surface of flue gas waste heat and outside air in the ferrosilicon pouring space by a wide margin, reduce the direct heat exchange of flue gas waste heat and outside air in the ferrosilicon pouring space.
Further, the top end of the second isolation surface is adjacent to the flue gas collection cover 32 so as to reduce a gap between the second isolation surface and the flue gas collection cover 32 and further reduce heat exchange between the flue gas and the external air in the silicon iron pouring space, the bottom end of the second isolation surface is higher than the pouring base 21 so as to form a first gap between the second isolation surface and the pouring base 21, an overflow port is formed in the pouring base 21 so as to enable silicon iron water in the pouring base 21 to flow out from the overflow port, the overflow port is located in the first gap, the flowing silicon iron water flows into the ingot mold through the first gap, the top end of the first isolation surface is adjacent to the flue gas collection cover 32 so as to reduce the gap between the first isolation surface and the flue gas collection cover 32 and further reduce heat exchange between the flue gas and the external air in the silicon iron pouring space, the bottom end of the first isolation surface is higher than the bottom end of the second isolation surface so as to form a second gap between the first isolation surface and the pouring base 21, the second space is greater than first space to set up outside ferrosilicon water pouring device output in the second space, so that the ferrosilicon water that makes outside ferrosilicon water pouring device output flow out passes through the second space and flows into to pouring base 21.
Further, the second isolation door 42 and the fourth isolation door 44 are further provided with a plurality of first fixing pieces 422 at the connection position of the other side of the silicon iron casting space, each first fixing piece 422 comprises a first fixing block 4221, a second fixing block 4222 and a first T-shaped pin 4223, the first fixing block 4221 is arranged on one side of the second isolation door 42 far away from the second hinge 421, one side end of the second fixing block 4222 is provided with a semicircular through hole, the second fixing block 4222 is arranged on one side of the fourth isolation door 44 far away from the fourth hinge 441, one side end of the second fixing block 4222 is provided with a semicircular through hole, the first fixing block 4221 is connected with the second fixing block 4222 so as to enable the semicircular through hole of the first fixing block 4221 to be connected with the semicircular through hole of the second fixing block 4222 to form a first round hole for arranging the first T-shaped pin 4223, one end of the first T-shaped pin 4223 passes through the first round hole, the other end of the first T-shaped pin 4223 is arranged at the upper end of the first round hole to fix the first fixing block 4221 and the second fixing block 4222, so that the second isolating door 42 and the fourth isolating door 44 are fixed on the other side of the silicon iron pouring space, and potential harm to surrounding workers caused by the other side of the silicon iron pouring space can be reduced while heat exchange between smoke waste heat inside the silicon iron pouring space and outside air is greatly reduced; first isolation door 41 is provided with a plurality of second mounting with the third isolation door in ferrosilicon pouring space one side junction, the second mounting is the same with first mounting 422 structure to fix first isolation door 41, third isolation door, and then realize that first isolation door 41, third isolation door are fixed in ferrosilicon pouring space one side, when reducing ferrosilicon pouring space inside flue gas waste heat and outside air heat exchange by a wide margin, can also reduce ferrosilicon pouring space one side to staff's potential harm on every side.
Further, still be provided with the first ventilation hole 412 of a plurality of on the first insulated door 41 to make the outside air be connected with the ferrosilicon pouring space of keeping away from pouring base 21 one end, the outside air evenly gets into to the ferrosilicon pouring space in from the first ventilation hole 412 of a plurality of, and the outside air is added into for the flue gas in the ferrosilicon pouring space, in order to increase the flue gas content in the ferrosilicon pouring space, still be provided with a plurality of second ventilation hole 423, third ventilation hole 424 on the second insulated door 42, third ventilation hole 424 sets up in the one end that second insulated door 42 is close to pouring base 21, so that the outside air is linked together with the ferrosilicon pouring space that is close to pouring base 21 one end, and the outside air evenly gets into to the ferrosilicon pouring space in from a plurality of third ventilation hole 424, and the outside air is added into for the flue gas in the ferrosilicon pouring space, in order to increase the flue gas content in the ferrosilicon pouring space, the second ventilation holes 423 are formed in one end, far away from the pouring base 21, of the second isolation door 42, so that external air is communicated with the silicon iron pouring space far away from one end of the pouring base 21, the external air uniformly enters the silicon iron pouring space from the second ventilation holes 423, and the external air is added into smoke in the silicon iron pouring space to increase the smoke content in the silicon iron pouring space; so that the flue gas in the ferrosilicon pouring space is conveyed to the flue gas waste heat recovery pipe 31 as much as possible.
Specifically, the diameter of the third ventilation hole 424 is larger than that of the second ventilation hole 423, and after the third ventilation hole 424 is opened to a larger diameter due to the highest temperature near the pouring base 21, more external air can enter the silicon iron pouring space to heat the external air, so that the total amount of smoke in the silicon iron pouring space is increased; the temperature of the middle position of the silicon iron pouring space is lower than that of the position near the pouring base 21, and after the second ventilation holes 423 are formed into a smaller diameter, less external air can enter the silicon iron pouring space to heat the external air so as to increase the total amount of smoke in the silicon iron pouring space; simultaneously because the air flow that gets into to ferrosilicon pouring space from second ventilation hole 423 is less than the air flow that gets into to ferrosilicon pouring space from third ventilation hole 424, makes the flue gas temperature that second ventilation hole 423 got into ferrosilicon pouring space and the flue gas temperature that second ventilation hole 423 got into ferrosilicon pouring space tend to unanimously to improve the uniformity of flue gas temperature in the ferrosilicon pouring space.
Specifically, the ferrosilicon water in the pouring base 21 releases a large amount of heat in ferrosilicon pouring space, and a large amount of heat and air heat exchange form the flue gas that has the waste heat, and the flue gas is expanded after being heated, and the flue gas rises to near flue gas waste heat recovery pipe 31, and flue gas waste heat recovery pipe 31 carries the flue gas to external device in, simultaneously, can also set up updraft ventilator between the pipeline that the flue gas waste heat recovery pipe 31 other end and external device are connected to flue gas volume's recovery efficiency in the ferrosilicon pouring space is to the acceleration flue gas waste heat recovery pipe 31, improves the flue gas and retrieves the total amount. Outside air is constantly from first ventilation hole 412, second ventilation hole 423, third ventilation hole 424 and other gaps are inhaled to ferrosilicon pouring space in, inhaled outside air is heated in ferrosilicon pouring space and is become the flue gas, and heat in the ferrosilicon pouring space is difficult to follow first ventilation hole 412, second ventilation hole 423, third ventilation hole 424 and other gaps escape to the external environment, the effectual inside heat exchange with the outside air of ferrosilicon pouring space that has reduced, the heat that makes the molten iron of silicon heats more outside air and becomes the flue gas, promote the inside flue gas total amount in ferrosilicon pouring space, flue gas waste heat recovery pipe 31 carries more flue gas to the external device in, realize the highest recovery of flue gas waste heat in the ferrosilicon pouring space.
Further, a first heat-insulating layer is further arranged on the outer surface of the first isolating door 41 to greatly reduce heat exchange between the flue gas waste heat in the silicon iron pouring space and the external air, and a plurality of through holes identical to the first ventilation holes 412 are formed in the first heat-insulating layer, so that the external air passes through the through holes of the first heat-insulating layer and the first ventilation holes 412 and enters the silicon iron pouring space; still be provided with the second heat preservation on the surface of second insulated door 42 to reduce the heat exchange of flue gas waste heat and outside air in ferrosilicon pouring space by a wide margin, set up the through-hole that a plurality of and second ventilation hole 423, third ventilation hole 424 are the same on the second heat preservation, so that outside air passes through and enters into ferrosilicon pouring space inside from through-hole, second ventilation hole 423, the third ventilation hole 424 of second heat preservation.
The outer surface of the third isolating door is also provided with a third insulating layer so as to greatly reduce the heat exchange between the flue gas waste heat in the silicon iron pouring space and the outside air, and the third insulating layer is provided with a plurality of through holes which are the same as the first vent holes 412 so that the outside air passes through the through holes of the third insulating layer and the first vent holes 412 and enters the silicon iron pouring space; still be provided with the fourth heat preservation on the surface of fourth isolating door 44 to reduce the heat exchange of flue gas waste heat and outside air in the ferrosilicon pouring space by a wide margin, set up the through-hole that a plurality of and second ventilation hole 423, third ventilation hole 424 are the same on the fourth heat preservation, so that outside air passes through and enters into ferrosilicon pouring space inside from through-hole, second ventilation hole 423, the third ventilation hole 424 of fourth heat preservation.
Further, the top ends of the first vertical plate 11 and the second vertical plate 12 are further provided with a first heat-insulating baffle 111 to reduce a gap between the top ends of the first vertical plate 11 and the second vertical plate 12 and the flue gas collection cover 32, so as to prevent a large amount of outside air from entering the flue gas collection cover 32 from the gap between the top ends of the first vertical plate 11 and the second vertical plate 12 and the flue gas collection cover 32, the top ends of the first isolation door 41 and the third isolation door are further provided with a second heat-insulating baffle 413 to reduce a gap between the top ends of the first isolation door 41 and the third isolation door and the flue gas collection cover 32, so as to prevent a large amount of outside air from entering the flue gas collection cover 32 from the gap between the top ends of the first isolation door 41 and the third isolation door and the flue gas collection cover 32, the top ends of the second isolation door 42 and the fourth isolation door 44 are further provided with a third heat-insulating baffle 425 to reduce a gap between the top ends of the second isolation door 42 and the fourth isolation door 44 and the, to prevent a large amount of outside air from entering into the flue gas collecting hood 32 from the gaps between the top ends of the second and fourth isolation doors 42 and 44 and the flue gas collecting hood 32; avoid outside air and flue gas in the flue gas collection cover 32 to carry out the heat exchange, improve the flue gas and collect the flue gas recovery efficiency of cover 32 in to the ferrosilicon pouring space.
The method comprises the following specific implementation steps:
1) moving the first vertical plate 11 and the second vertical plate 12 to preset positions, and adjusting the size of a silicon iron pouring space among the first vertical plate 11, the second vertical plate 12 and the flue gas collecting cover 32 until an external silicon iron pouring device can finish a pouring task;
2) the silicon iron water flowing out of the output end of the external silicon iron water pouring device flows into the pouring base 21 through the second gap, the silicon iron water in the pouring base 21 flows out of the overflow port after being filled with the silicon iron water, the flowing silicon iron water flows into the ingot mold through the first gap, a large amount of heat is released by the silicon iron water in the process, and the air in the silicon iron pouring space is heated by the large amount of heat to become flue gas with waste heat;
3) the flue gas waste heat recovery pipe 31 conveys the flue gas to an external device, and an air draft device can be arranged to accelerate the recovery efficiency of the flue gas waste heat recovery pipe 31 on the flue gas amount in the ferrosilicon pouring space;
4) outside air is constantly from first ventilation hole 412, second ventilation hole 423, third ventilation hole 424 and other gaps inhaled to ferrosilicon pouring space in, and inhaled outside air is constantly heated in ferrosilicon pouring space and is become the flue gas, improves the flue gas total amount in the ferrosilicon pouring space, and the temperature of ferrosilicon liquid can not satisfy the flue gas recovery requirement in pouring base 21 to the ferrosilicon.
The embodiment of the utility model provides a module or unit in the device can merge, divide and delete according to actual need.
While the invention has been described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention.

Claims (8)

1. The utility model provides a portable ferrosilicon pouring flue gas waste heat recovery device which characterized in that: comprises a supporting mechanism, a moving mechanism, a silicon iron water containing mechanism, a flue gas waste heat recovery mechanism and a flue gas waste heat isolation mechanism, wherein the supporting mechanism is arranged on the moving mechanism, the moving mechanism is arranged in an external chute arranged at the lower end of a horizontal plane, the silicon iron water containing mechanism is arranged inside the bottom end of the supporting mechanism, the flue gas waste heat recovery mechanism is arranged at the top of the supporting mechanism, the flue gas waste heat isolation mechanism is arranged at two sides of the supporting mechanism, the supporting mechanism comprises a first vertical plate and a second vertical plate, the first vertical plate is arranged at one side of the silicon iron water containing mechanism, the second vertical plate is arranged at the other side of the silicon iron water containing mechanism, the moving mechanism comprises a first moving wheel, a second moving wheel, a third moving wheel and a fourth moving wheel, the first moving wheel and the second moving wheel are respectively arranged at two sides of the bottom end of the first vertical plate so as to enable the first vertical plate to, the third movable wheel and the fourth movable wheel are respectively arranged on two sides of the bottom end of the second vertical plate so that the second vertical plate can freely move along the direction of the chute, the silicon iron water containing mechanism is a pouring base, the pouring base is arranged on a horizontal plane, the flue gas waste heat recovery mechanism comprises a flue gas collecting cover, a flue gas waste heat recovery pipe and a fixed pull rod, the flue gas collecting cover is arranged at the top end of the first vertical plate and the second vertical plate so that the interiors of the flue gas collecting cover, the first vertical plate and the second vertical plate form a silicon iron pouring space, two sides of the silicon iron pouring space are open, a through hole is arranged in the flue gas collecting cover, one end of the flue gas waste heat recovery pipe is arranged in the through hole of the flue gas collecting cover, the other end of the flue gas waste heat recovery pipe is connected with an external device so as to convey the flue gas with waste heat in the silicon iron pouring space to the external device, one, the other end of the fixed pull rod is arranged on a cross beam or a longitudinal beam of the pouring plant, the flue gas waste heat isolation mechanism comprises a first isolation door, a second isolation door, a third isolation door and a fourth isolation door, the first isolation door is arranged on one side of a first vertical plate, the second isolation door is arranged on the other side of the first vertical plate, the third isolation door is arranged on one side of a second vertical plate, the fourth isolation door is arranged on the other side of the second vertical plate, the first isolation door and the third isolation door are connected on one side of a silicon iron pouring space so that the first isolation door and the third isolation door form a first isolation surface on one side of the silicon iron pouring space to prevent flue gas with waste heat in the silicon iron pouring space from escaping from an opening on one side of the silicon iron pouring space, the second isolation door and the fourth isolation door are connected on the other side of the silicon iron pouring space so that the second isolation door and the fourth isolation door form a second isolation surface on the other side of the silicon iron pouring space, so as to prevent the smoke with residual heat in the ferrosilicon pouring space from escaping from the opening at the other side of the ferrosilicon pouring space.
2. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: the first isolation door and the third isolation door are symmetrically arranged on the first isolation surface, the first isolation door and the third isolation door are rigid high-temperature-resistant plate bodies, the second isolation door and the fourth isolation door are symmetrically arranged on the second isolation surface, and the second isolation door and the fourth isolation door are high-temperature-resistant rigid plate bodies.
3. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: the first isolation door is provided with a plurality of first hinges at a connection part of one side of the first vertical plate, so that the first isolation door can freely rotate at one side of the first vertical plate, the second isolation door is provided with a plurality of second hinges at a connection part of the other side of the first vertical plate, so that the second isolation door can freely rotate at the other side of the first vertical plate, the third isolation door is provided with a plurality of third hinges at a connection part of one side of the second vertical plate, so that the third isolation door can freely rotate at one side of the second vertical plate, and the fourth isolation door is provided with a plurality of fourth hinges at a connection part of the other side of the second vertical plate, so that the fourth isolation door can freely rotate at the other side of the second vertical plate.
4. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: the top end of the second isolation surface is adjacent to the smoke collection cover, the bottom end of the second isolation surface is higher than the pouring base so that a first gap is formed between the second isolation surface and the pouring base, the top end of the first isolation surface is adjacent to the smoke collection cover, the bottom end of the first isolation surface is higher than the bottom end of the second isolation surface so that a second gap is formed between the first isolation surface and the pouring base, and the second gap is larger than the first gap.
5. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: the second isolation door and the fourth isolation door are also provided with a plurality of first fixing pieces at the connection part of the other side of the silicon iron pouring space, each first fixing piece comprises a first fixing block, a second fixing block and a first T-shaped pin, the first fixing block is arranged at one side of the second isolation door far away from the second hinge, a semicircular through hole is formed at one side end part of the second fixing block, the second fixing block is arranged at one side of the fourth isolation door far away from the fourth hinge, a semicircular through hole is formed at one side end part of the second fixing block, the first fixing block is connected with the second fixing block, so that the semicircular through hole of the first fixing block is connected with the semicircular through hole of the second fixing block to form a first round hole for arranging the first T-shaped pin, one end of the first T-shaped pin passes through the first round hole, and the other end of the first T-shaped pin is arranged at the upper, so as to fix the first fixed block and the second fixed block; first isolation door and third isolation door are provided with a plurality of second mounting in ferrosilicon pouring space one side junction, the second mounting is the same with first mounting structure to fix first isolation door, third isolation door.
6. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: still be provided with the first ventilation hole of a plurality of on the first isolation door to make outside air be connected with the ferrosilicon pouring space of keeping away from pouring base one end, still be provided with a plurality of second ventilation hole, third ventilation hole on the second isolation door, the third ventilation hole sets up in the one end that the second isolation door is close to the pouring base, so that outside air is linked together with the ferrosilicon pouring space of being close to pouring base one end, the second ventilation hole sets up in the one end that the pouring base was kept away from to the second isolation door, so that outside air is linked together with the ferrosilicon pouring space of keeping away from pouring base one end.
7. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: the outer surface of the first isolating door is also provided with a first heat-insulating layer so as to greatly reduce heat exchange between flue gas waste heat and external air in the silicon iron pouring space, and the first heat-insulating layer is provided with a plurality of through holes which are the same as the first ventilation holes so that the external air passes through the through holes of the first heat-insulating layer and the first ventilation holes and enters the silicon iron pouring space; still be provided with the second heat preservation on the surface of second insulated door to reduce the heat exchange of flue gas waste heat and outside air in the ferrosilicon pouring space by a wide margin, set up the through-hole that a plurality of and second venthole, third venthole are the same on the second heat preservation, so that outside air passes through and enters inside the ferrosilicon pouring space from through-hole, second venthole, the third venthole of second heat preservation.
8. The mobile ferrosilicon pouring flue gas waste heat recovery device of claim 1, characterized in that: first riser, second riser top still are provided with first heat preservation baffle to reduce the gap between first riser, second riser top and the flue gas collection cover, first dodge gate, third dodge gate top still are provided with second heat preservation baffle, collect the gap between the cover with reducing first dodge gate, third dodge gate top and flue gas, second dodge gate, fourth dodge gate top still are provided with third heat preservation baffle, collect the gap between the cover with reducing second dodge gate, fourth dodge gate top and flue gas.
CN201920392564.2U 2019-03-26 2019-03-26 Movable ferrosilicon pouring flue gas waste heat recovery device Active CN209894016U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201920392564.2U CN209894016U (en) 2019-03-26 2019-03-26 Movable ferrosilicon pouring flue gas waste heat recovery device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201920392564.2U CN209894016U (en) 2019-03-26 2019-03-26 Movable ferrosilicon pouring flue gas waste heat recovery device

Publications (1)

Publication Number Publication Date
CN209894016U true CN209894016U (en) 2020-01-03

Family

ID=68997940

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201920392564.2U Active CN209894016U (en) 2019-03-26 2019-03-26 Movable ferrosilicon pouring flue gas waste heat recovery device

Country Status (1)

Country Link
CN (1) CN209894016U (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111609747A (en) * 2020-04-26 2020-09-01 宁夏钢铁(集团)有限责任公司 System for recovering waste heat of damaged hot metal ladle

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111609747A (en) * 2020-04-26 2020-09-01 宁夏钢铁(集团)有限责任公司 System for recovering waste heat of damaged hot metal ladle

Similar Documents

Publication Publication Date Title
CN107803467B (en) A kind of running gate system of large size valve casing class steel-casting
CN206936355U (en) A kind of smelting-casting equipment continuous production layout structure
CN209894016U (en) Movable ferrosilicon pouring flue gas waste heat recovery device
CN103667765B (en) A kind of continuous producing apparatus of foam aluminium alloy
CN110440590B (en) Melting device for metal casting based on liquid level equal height
CN104384485A (en) Double-buffering casting system for directional hollow turbine work blade
CN210132029U (en) Remove foldable ferrosilicon pouring flue gas waste heat recovery device
CN103192039B (en) Method for removing inclusions by means of determining height of vertical section of continuous casting machine for extra-thick slabs
CN210132045U (en) Remove split formula ferrosilicon pouring flue gas waste heat recovery device
CN211438077U (en) Preparation device of large copper mold
CN211360651U (en) Atmosphere protection device for laser vibration material disk production
CN209773457U (en) ferrosilicon pouring flue gas waste heat recovery device
CN106493340A (en) A kind of novel magnesium alloy casting turns liquid system and device
CN203833963U (en) Novel mobile closed dust collection hood for ladle-to-ladle position in steel smelting workshop
CN109807292B (en) Movable folding type ferrosilicon pouring flue gas waste heat recovery device
CN207272171U (en) A kind of Zinc alloy die material making apparatus
CN205496532U (en) Vertical multithread vacuum high temperature alloy continuous casting device
CN213002599U (en) Mould lifts steadily and puts
CN208653212U (en) Foundry alloy melting vacuum induction melting furnace
CN114406254A (en) Closed dust removal room in molten metal pouring production line
US1792545A (en) Method of casting blooms of aluminum
CN205587643U (en) Slag gets into ladle of casting mould when preventing to pour into a mould
US2741814A (en) Apparatus for pouring ingots
CN206869103U (en) One kind cast chassis
JPH05293593A (en) Method and chute for casting metallic mold for tire

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant