CN210037584U - Device for testing copper content in furnace slag - Google Patents

Device for testing copper content in furnace slag Download PDF

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Publication number
CN210037584U
CN210037584U CN201822128674.6U CN201822128674U CN210037584U CN 210037584 U CN210037584 U CN 210037584U CN 201822128674 U CN201822128674 U CN 201822128674U CN 210037584 U CN210037584 U CN 210037584U
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China
Prior art keywords
slag
clamping
crushing
copper content
testing
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CN201822128674.6U
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武胜奎
李富林
陈迎春
杨俊奎
张珊
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Qinghai Copper LLC
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Qinghai Copper LLC
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Abstract

The utility model belongs to the technical field of the metallurgical technology and specifically relates to a copper content testing arrangement in slag is related to. The utility model provides a copper content testing arrangement includes in the slag: the device comprises a clamping device, a mixing device and a testing device; the crushing device comprises a crushing box, a pushing assembly and a crushing assembly; the clamping and crushing component is arranged in the clamping and crushing box, the pushing component penetrates through the side wall of the clamping and crushing box and is in sliding fit with the side wall of the clamping and crushing box, and the end part of the pushing component, which is positioned at one end in the clamping and crushing box, is connected with the clamping and crushing component; mixing arrangement includes the agitator, agitator one end and press from both sides garrulous bottom of the case portion intercommunication for receive and press from both sides garrulous slag, the agitator other end and testing arrangement intercommunication. The utility model provides a copper content testing arrangement has alleviated solution and the difficult mixing of slag in the correlation technique in the slag, and test work is difficult to the technical problem who expandes.

Description

Device for testing copper content in furnace slag
Technical Field
The utility model belongs to the technical field of the metallurgical technology and specifically relates to a copper content testing arrangement in slag is related to.
Background
In the copper smelting industry, the copper extraction from copper sulphide concentrate is usually carried out by pyrometallurgical methods, and the current treatment of copper smelting slag is aimed at recovering copper elements from copper smelting slag, which includes various slag produced during the copper smelting production process, mostly smelting slag, but also a small part of converting slag, etc., wherein the copper smelting slag mainly includes 0.90-3.0% of Cu, 35-44% of Fe, and 25-35% of SiO 2.
The copper contained in the slag also has great practical value, so that the determination of the copper in the slag of the copper smelting furnace is required.
However, the slag is usually in a block shape, and is not easy to react with the solution, the subsequent test work is inconvenient to expand, and the time for mixing the solution and the slag powder is slow, so that the test efficiency is low, and the use is inconvenient.
SUMMERY OF THE UTILITY MODEL
An object of the utility model is to provide a copper content testing arrangement in slag to alleviate the technical problem that solution and slag are difficult for mixing among the correlation technique, test work is difficult to expand.
The utility model provides a copper content testing arrangement in slag, include: the device comprises a clamping device, a mixing device and a testing device;
the crushing device comprises a crushing box, a pushing assembly and a crushing assembly;
the clamping and crushing component is arranged in the clamping and crushing box, the pushing component penetrates through the side wall of the clamping and crushing box and is in sliding fit with the side wall of the clamping and crushing box, and one end, located in the clamping and crushing box, of the pushing component is connected with the clamping and crushing component;
mixing arrangement includes the agitator, agitator one end with press from both sides garrulous bottom of the case portion intercommunication for receive and press from both sides garrulous slag, the agitator other end with testing arrangement intercommunication.
Further, in the above-mentioned case,
press from both sides garrulous subassembly including relative first clamp splice and the second clamp splice that sets up, just first clamp splice with the opposite face of second clamp splice forms the slag and presss from both sides garrulous space, the second clamp splice is kept away from the one end of first clamp splice with the push assembly connects, the second clamp splice is in push assembly's promotion is followed down the bottom of the box plane of clamp splice is to being close to or keeping away from the direction of first clamp splice removes.
Further, in the above-mentioned case,
the pushing assembly comprises a motor, a cam, a cross rod and an elastic piece;
the horizontal pole wears to locate press from both sides garrulous case lateral wall, the elastic component cover is located the horizontal pole, the cam is located the horizontal pole is kept away from the one end of second clamp splice, the motor with cam drive is connected, the cam is in intermittent type nature promotes under the drive of motor the horizontal pole makes the second clamp splice is to being close to the direction motion of first clamp splice.
Further, in the above-mentioned case,
the disc is arranged between the crushing box and the stirring barrel, a plurality of through holes are formed in the disc, and the through holes are distributed along the circumferential direction of the disc at intervals.
Further, in the above-mentioned case,
the stirring device is characterized in that a stirring shaft and a plurality of stirring rods fixed on the stirring shaft are arranged in the stirring barrel, and the stirring rods are spirally arranged along the length direction of the stirring shaft.
Further, in the above-mentioned case,
the mixing device comprises a heating furnace, a control valve and a liquid inlet pipe; one end of the liquid inlet pipe is communicated with the heating furnace, the other end of the liquid inlet pipe is communicated with the stirring barrel, and the control valve is used for controlling the liquid inlet pipe to be communicated or disconnected.
Further, in the above-mentioned case,
the mixing device is further provided with a liquid outlet pipe, the liquid outlet pipe is arranged at the bottom of the stirring barrel, and the liquid outlet pipe is communicated with the stirring barrel and the testing device respectively.
Further, in the above-mentioned case,
the testing device comprises a water bath, a filtering component, a temporary storage box and a spectrophotometer which are connected in sequence;
the drain pipe is kept away from the one end of agitator with the water-bath intercommunication, the water-bath pass through the leacher with filtering component connects, filtering component filters the slag extremely in the temporary storage box, spectrophotometer is used for detecting copper content in the mixed liquid in the temporary storage box.
Further, in the above-mentioned case,
and a supercharger is arranged on the filtering component.
Further, in the above-mentioned case,
the bottom of the temporary storage box is an inclined plane which inclines downwards from one side of the opening of the temporary storage box to the other side.
The utility model provides a copper content testing arrangement in slag, include: the device comprises a clamping device, a mixing device and a testing device; the crushing device comprises a crushing box, a pushing assembly and a crushing assembly; the clamping and crushing component is arranged in the clamping and crushing box, the pushing component penetrates through the side wall of the clamping and crushing box and is in sliding fit with the side wall of the clamping and crushing box, and one end, located in the clamping and crushing box, of the pushing component is connected with the clamping and crushing component; mixing arrangement includes the agitator, agitator one end and press from both sides garrulous bottom of the case portion intercommunication for receive and press from both sides garrulous slag, the agitator other end and testing arrangement intercommunication.
The utility model provides a copper content testing arrangement is broken with the slag through the garrulous subassembly of clamp that sets up in the garrulous case of clamp for the more convenient follow-up detection of slag promotes the subassembly and is used for providing power for pressing from both sides garrulous subassembly, and presss from both sides garrulous bottom of the case portion and sets up the agitator and be used for receiving the slag after pressing from both sides garrulous, and shift the slag to testing arrangement in, with solution and the difficult mixing of slag in alleviating correlation technique, the technical problem that test work is difficult to expand.
Drawings
In order to more clearly illustrate the technical solutions of the embodiments of the present invention or the related art, the drawings required to be used in the description of the embodiments or the related art will be briefly introduced below, and it is obvious that the drawings in the following description are some embodiments of the present invention, and for those skilled in the art, other drawings can be obtained according to these drawings without creative efforts.
Fig. 1 is a schematic view of an overall structure of a device for testing copper content in slag provided by an embodiment of the present invention;
fig. 2 is a schematic diagram of a part of an enlarged structure of a device for testing copper content in slag provided by an embodiment of the present invention.
Icon: 100-a crushing device; 110-crushing box; 120-a pushing assembly; 121-a motor; 122-a cam; 123-a cross bar; 124-an elastic member; 130-a morcellating assembly; 131-a first clamp splice; 132-a second clamp block; 200-a mixing device; 210-a stirring barrel; 211-a stirring shaft; 212-a stirring rod; 220-a disc; 221-a through hole; 230-a heating furnace; 240-control valve; 250-a liquid inlet pipe; 260-a liquid outlet pipe; 300-a test device; 310-water bath; 311-a leacher; 320-a filter assembly; 321-a supercharger; 330-temporary storage box; 340-spectrophotometer.
Detailed Description
The technical solution of the present invention will be described clearly and completely with reference to the accompanying drawings, and obviously, the described embodiments are some, but not all embodiments of the present invention. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative work belong to the protection scope of the present invention.
In the description of the present invention, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings, and are only for convenience of description and simplification of description, but do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus, should not be construed as limiting the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance.
In the description of the present invention, it is to be noted that, unless otherwise explicitly specified or limited, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally connected; can be mechanically or electrically connected; they may be connected directly or indirectly through intervening media, or they may be interconnected between two elements. The specific meaning of the above terms in the present invention can be understood in specific cases to those skilled in the art.
Fig. 1 is a schematic view of an overall structure of a device for testing copper content in slag provided by an embodiment of the present invention; fig. 2 is a schematic diagram of a part of an enlarged structure of a device for testing copper content in slag provided by an embodiment of the present invention.
The embodiment of the utility model provides a copper content testing arrangement includes in the slag: the crushing device 100, the mixing device 200 and the testing device 300;
the morcellating device 100 includes a morcellating bin 110, a pushing assembly 120, and a morcellating assembly 130; the clamping and crushing assembly 130 is arranged inside the clamping and crushing box 110, the pushing assembly 120 penetrates through the side wall of the clamping and crushing box 110 and is in sliding fit with the side wall of the clamping and crushing box 110, and one end, located inside the clamping and crushing box 110, of the pushing assembly 120 is connected with the clamping and crushing assembly 130;
the mixing device 200 comprises a stirring barrel 210, one end of the stirring barrel 210 is communicated with the bottom of the crushing box 110 and used for receiving crushed slag, and the other end of the stirring barrel 210 is communicated with the testing device 300.
Compared with the prior art, can press from both sides into the garrulous end with the slag granule through setting up in this embodiment, be convenient for subsequent test, it is specific, including pressing from both sides garrulous case 110 in pressing from both sides garrulous device 100, the upper portion that presss from both sides garrulous case 110 is the entry that presss from both sides garrulous case 110, also is the slag entry, presss from both sides the inside garrulous subassembly 130 that presss from both sides of garrulous case 110 that sets up of garrulous case 110, promotes subassembly 120 and wears to locate the lateral wall that presss from both sides garrulous case 110, for pressing from both sides garrulous subassembly 130 and provide power.
The bottom of the crushing box 110 is communicated with the stirring barrel 210 in the mixing device 200, the crushed particles fall into the stirring barrel 210 and are mixed with the mixed liquid in the stirring barrel 210, the mixed liquid dissolves part of the slag, and then the slag and the mixed liquid are transferred to the testing device 300 for filtering and testing.
Further, the crushing assembly 130 comprises a first clamping block 131 and a second clamping block 132 which are oppositely arranged, a slag crushing space is formed by the opposite surfaces of the first clamping block 131 and the second clamping block 132, one end, far away from the first clamping block 131, of the second clamping block 132 is connected with the pushing assembly 120, and the second clamping block 132 moves along the bottom plane of the crushing box 110 under the pushing of the pushing assembly 120 in a direction close to or far away from the first clamping block 131 to crush the slag.
In this embodiment, the slag crushing space formed between the first and second blocks 131 and 132 communicates with the slag inlet, and the pushing assembly 120 pushes the second block 132 to be movable in a direction perpendicular to the slag inlet direction toward or away from the first block 131.
Press from both sides garrulous case 110 upper portion and be provided with the baffle, baffle one end is fixed on the outer wall that presss from both sides garrulous case 110, the parallel garrulous case 110 upper portion outer wall of clamp of the other end extends, that is, the baffle setting is close to slag entry one end at second clamp splice 132, the baffle contacts with second clamp splice 132, and the length more than or equal to of baffle second clamp splice 132 and the distance between the first clamp splice 131, the effect of baffle is when empting the slag, avoid the slag to get into second clamp splice 132 and press from both sides the gap between garrulous case 110 and influence the removal of second clamp splice 132.
Furthermore, the opposite surfaces of the first clamping block 131 and the second clamping block 132 are provided with protruding thorns, and the protruding thorns can better clamp the slag.
And the first clamping block 131 and the second clamping block 132 can be arranged to be clamped, and the protruding thorns on the opposite surfaces of the first clamping block 131 and the second clamping block 132 are just engaged.
The first clamping block 131 and the second clamping block 132 provided in this embodiment are cubic blocks with trapezoidal cross sections, and the first clamping block 131 and the second clamping block 132 may be provided in other various structures.
The pushing assembly 120 includes a motor 121, a cam 122, a cross bar 123 and an elastic member 124; the cross rod 123 penetrates through the side wall of the crushing box 110, the elastic piece 124 is sleeved on the cross rod 123, the cam 122 is located at one end, far away from the second clamping block 132, of the cross rod 123, the motor 121 is in transmission connection with the cam 122, and the cam 122 intermittently pushes the cross rod 123 under the driving of the motor 121, so that the second clamping block 132 moves towards the direction close to the first clamping block 131.
The cross rod 123 is arranged through the side wall of the crushing box 110 close to one side of the second clamping block 132 and is in sliding fit with the side wall of the crushing box 110, one end of the cross rod 123 positioned inside the crushing box 110 is connected with the second clamping block 132, one end of the cross rod 123 positioned outside the crushing box 110 is in contact with the outer peripheral surface of the cam 122, and because the thickness length direction of the cam 122 is vertical to the side wall of the crushing box 110, and the edge of the cam 122 is a curved surface structure, the contact of the cam 122 with the cross bar 123 is intermittent when the cam 122 is rotated about the driving axis of the motor 121 by the driving of the motor 121, and when the cam 122 pushes the cross bar 123, the cross bar 123 pushes the second clamping block 132 to move in a direction to approach the first clamping block 131, the elastic member 124 is compressed, when the cam 122 is separated from the cross bar 123, the cross bar 123 drives the second clamping block 132 to move away from the first clamping block 131 under the restoring force of the elastic member 124, so that a complete reciprocating motion can be formed.
The elastic member 124 is sleeved on the cross rod 123, and may be disposed between the second clamping block 132 and the inner wall of the crushing box 110, or disposed between the outer wall of the crushing box 110 and the cam 122, and when the whole device is not operated, the cross rod 123 is not subjected to an external force, at this time, the elastic member 124 is not stressed, and is in a natural state, and when the cam 122 pushes the cross rod 123, the elastic member 124 is deformed by pressure.
In the present embodiment, a spring is used as the elastic member 124 to provide the elastic force, and other structures having elastic force may be adopted.
A stop block can be further arranged at one end, located outside the crushing box 110, of the cross rod 123, the stop block is connected with one end, close to the cam 122, of the cross rod 123, the stop block is in contact with the outer peripheral surface of the cam 122, the cam 122 can push the cross rod 123 to move through the stop block, meanwhile, the stop block can be used for supporting the elastic piece 124, and the elastic piece 124 can be clamped between the outer wall of the crushing box 110 and the stop block.
The cross section of the cam 122 provided in this embodiment is a gourd shape, that is, the width of one end of the cam 122 is smaller than the width of the other end, so that the stopper and the cross bar 123 can be pushed to move toward the first clamping block 131 in the length direction of the gourd-shaped cam 122, and when the cam 122 is in the width direction of the gourd-shaped cam 122, the elastic member 124 has a tendency of recovering deformation, that is, the elastic force generated by the elastic member 124 drives the cross bar 123 to move away from the first clamping block 131.
Still can set up a plurality of crossbars 123, make a plurality of crossbars 123 evenly set up and keep away from first clamp 131 one side at second clamp splice 132, and a plurality of crossbars 123 extending direction is parallel to each other, then a plurality of crossbars 123 can provide even driving force for second clamp splice 132.
Further, a disc 220 is arranged between the crushing box 110 and the stirring barrel 210, a plurality of through holes 221 are arranged on the disc 220, and the plurality of through holes 221 are distributed at intervals along the circumferential direction of the disc 220.
The disc 220 is arranged at the bottom of the crushing box 110, the axis of the through hole 221 penetrates through the disc 220 in the thickness direction of the disc 220, the size of the slag passing through can be limited by adjusting the size of the through hole 221, namely, the through hole 221 can be in various sizes, and therefore the slag crushed to a certain size can automatically fall into the stirring barrel 210 through the through hole 221 under the action of gravity.
The through holes 221 may be formed in an array on the disk 220, may be formed in a radiation pattern, or the like on the disk 220.
Still can set up disc 220 and have first region and second region, have above-mentioned through-hole 221 on the first region, the second region is solid construction, and disc 220 links to each other with first driving motor, first driving motor can drive disc 220 and rotate along the direction of parallel clamp crushing case 110 bottom plane, then just put in the slag to press from both sides crushing case 110 in, control first driving motor makes the second region rotatory to press from both sides crushing case 110 bottom, then the slag can be abundant smashed in pressing from both sides crushing case 110, when the slag is smashed and is ended, control first driving motor rotatory first region to press from both sides crushing case 110 bottom, make the slag after pressing from both sides the bits of broken glass enter agitator 210 through-hole 221.
A blanking pipe can be further arranged on one side of the disc 220 close to the stirring barrel 210, and the blanking pipe is in a funnel shape and can collect slag into the stirring barrel 210.
The stirring barrel 210 is provided with a stirring shaft 211 and a plurality of stirring rods 212 fixed on the stirring shaft 211, and the plurality of stirring rods 212 are spirally arranged along the length direction of the stirring shaft 211.
The stirring shaft 211 is parallel to the slag entering direction, and the stirring rods 212 are spirally arranged on the stirring shaft 211 along the length direction of the stirring shaft 211 and extend radially outwards along the direction perpendicular to the stirring shaft 211.
The stirring rod 212 may have a flat plate structure or a spiral structure.
The one end that disc 220 was kept away from to (mixing) shaft 211 is connected with the transmission of second driving motor, and second driving motor drives (mixing) shaft 211 rotatory, through the stirring, makes mixed liquid and slag powder mix more evenly, and the mixing speed is faster.
The mixing device 200 comprises a heating furnace 230, a control valve 240 and a liquid inlet pipe 250; one end of the liquid inlet pipe 250 is communicated with the heating furnace 230, the other end is communicated with the stirring barrel 210, and the control valve 240 is used for controlling the connection or disconnection of the liquid inlet pipe 250.
The heating furnace 230 is used for preheating the mixed liquid, and the preheated mixed liquid enters the stirring barrel 210 through the liquid inlet pipe 250 to be mixed with the slag powder, and can accelerate the reaction of the mixed liquid and the slag, and the flow rate of the liquid inlet is controlled through the control valve 240.
The mixed solution can adopt ammonium hydrogen hydrochloride solution.
Further, the mixing device 200 is further provided with a liquid outlet pipe 260, the liquid outlet pipe 260 is arranged at the bottom of the stirring barrel 210, and the liquid outlet pipe 260 is respectively communicated with the stirring barrel 210 and the testing device 300.
A control valve 240 may also be disposed at the outlet tube 260 to control the flow of the mixed liquid flowing out of the mixing tank 210.
Further, the testing device 300 comprises a water bath 310, a filtering component 320, a temporary storage box 330 and a spectrophotometer 340 which are connected in sequence; the end of the liquid outlet pipe 260 far away from the mixing barrel 210 is communicated with a water bath 310, the water bath 310 is connected with a filtering component 320 through a leacher 311, the filtering component 320 filters the slag into a temporary storage box 330, and a spectrophotometer 340 is used for detecting the copper content in the mixed liquid in the temporary storage box 330.
The lower end of the leacher 311 is arranged lower than the lower end of the liquid outlet pipe 260 in the embodiment, so that the leacher 311 can better suck the mixed liquid.
Furthermore, a booster 321 is provided on the filter assembly 320, and the booster 321 can improve the filtering efficiency.
Furthermore, the bottom of the temporary storage box 330 is a slope, and the slope is inclined downwards from one side of the opening of the temporary storage box 330 to the other side.
Through the inclined plane of the lower wall of the temporary storage box 330, the mixed solution is collected to the lowest part of the inclined plane, so that the mixed solution is convenient to obtain, and finally the solution under the inclined plane of the temporary storage box 330 is adopted to carry out spectrophotometry test, so that the copper content in the slag can be obtained.
The motor 121, the first driving motor, the second driving motor, the heating furnace 230, the water bath 310, the leacher 311, the supercharger 321 and the spectrophotometer 340 are respectively electrically connected with an external power supply.
Finally, it should be noted that: the above embodiments are only used to illustrate the technical solution of the present invention, and not to limit the same; although the present invention has been described in detail with reference to the foregoing embodiments, it should be understood by those skilled in the art that: the technical solutions described in the foregoing embodiments may still be modified, or some or all of the technical features may be equivalently replaced; such modifications and substitutions do not depart from the spirit and scope of the present invention.

Claims (10)

1. A copper content testing arrangement in slag, characterized by includes: the device comprises a clamping device, a mixing device and a testing device;
the crushing device comprises a crushing box, a pushing assembly and a crushing assembly;
the clamping and crushing assembly is arranged inside the clamping and crushing box, the pushing assembly penetrates through the side wall of the clamping and crushing box and is in sliding fit with the side wall of the clamping and crushing box, and one end, located inside the clamping and crushing box, of the pushing assembly is connected with the clamping and crushing assembly;
mixing arrangement includes the agitator, agitator one end with press from both sides garrulous bottom of the case portion intercommunication for receive and press from both sides garrulous slag, the agitator other end with testing arrangement intercommunication.
2. The device for testing the copper content in the slag according to claim 1, wherein the crushing assembly comprises a first clamping block and a second clamping block which are oppositely arranged, the opposite surfaces of the first clamping block and the second clamping block form a slag crushing space, one end, far away from the first clamping block, of the second clamping block is connected with the pushing assembly, and the second clamping block moves towards or away from the first clamping block along the bottom plane of the crushing box under the pushing of the pushing assembly.
3. The apparatus for testing the copper content in slag according to claim 2, wherein the pushing assembly comprises a motor, a cam, a cross bar and an elastic member;
the horizontal pole wears to locate press from both sides garrulous case lateral wall, the elastic component cover is located the horizontal pole, the cam is located the horizontal pole is kept away from the one end of second clamp splice, the motor with cam drive is connected, the cam is in intermittent type nature promotes under the drive of motor the horizontal pole makes the second clamp splice is to being close to the direction motion of first clamp splice.
4. The device for testing the copper content in the slag according to claim 3, wherein a disc is arranged between the crushing box and the stirring barrel, a plurality of through holes are formed in the disc, and the through holes are distributed at intervals along the circumferential direction of the disc.
5. The device for testing the copper content in the slag according to claim 1, wherein a stirring shaft and a plurality of stirring rods fixed on the stirring shaft are arranged in the stirring barrel, and the stirring rods are spirally arranged along the length direction of the stirring shaft.
6. The apparatus for testing the copper content in the slag according to claim 1, wherein the mixing apparatus comprises a heating furnace, a control valve and a liquid inlet pipe; one end of the liquid inlet pipe is communicated with the heating furnace, the other end of the liquid inlet pipe is communicated with the stirring barrel, and the control valve is used for controlling the liquid inlet pipe to be communicated or disconnected.
7. The device for testing the copper content in the slag according to claim 1, wherein the mixing device is further provided with a liquid outlet pipe, the liquid outlet pipe is arranged at the bottom of the stirring barrel, and the liquid outlet pipe is respectively communicated with the stirring barrel and the testing device.
8. The device for testing the copper content in the slag according to claim 7, wherein the device comprises a water bath, a filtering component, a temporary storage tank and a spectrophotometer which are connected in sequence;
the drain pipe is kept away from the one end of agitator with the water-bath intercommunication, the water-bath pass through the leacher with filtering component connects, filtering component filters the slag extremely in the temporary storage box, spectrophotometer is used for detecting copper content in the mixed liquid in the temporary storage box.
9. The apparatus for testing the copper content in slag according to claim 8, wherein a booster is provided on the filter assembly.
10. The apparatus for measuring the copper content in slag according to claim 8, wherein the bottom of the holding tank is a slope which is inclined downward from one side of the opening of the holding tank to the other side.
CN201822128674.6U 2018-12-14 2018-12-14 Device for testing copper content in furnace slag Active CN210037584U (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111514797A (en) * 2020-04-28 2020-08-11 嘉兴学院 A chemical stirring device

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111514797A (en) * 2020-04-28 2020-08-11 嘉兴学院 A chemical stirring device

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