CN214975875U - Mineral product sorting machine - Google Patents
Mineral product sorting machine Download PDFInfo
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- CN214975875U CN214975875U CN202022888722.9U CN202022888722U CN214975875U CN 214975875 U CN214975875 U CN 214975875U CN 202022888722 U CN202022888722 U CN 202022888722U CN 214975875 U CN214975875 U CN 214975875U
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Abstract
The application provides a mineral products sorter includes: a feed mechanism for feeding ore; the conveying mechanism is used for conveying the ore to a preset position after the ore is loaded from the feeding mechanism; the detection mechanism is used for detecting ores at a preset position; the sorting mechanism is used for sorting and picking up the detection result of the ore according to the detection mechanism; wherein the sorting mechanism comprises a spraying device, and the spraying device at least has two different fluid spraying modes so as to separate ores into at least three types. Therefore, the mineral product sorting machine can screen out three kinds of ores with different concentrations of the elements to be extracted at one time, and the production efficiency is improved.
Description
Technical Field
The application relates to the technical field of mineral product excavation, in particular to a mineral product sorting machine.
Background
In prior art mineral extraction, a large ore is usually broken into smaller ore pieces by using an extraction tool. Subsequently, the mineral product sorting machine sorts and picks up the mineral.
The mineral product sorting machine may include a feeding mechanism that continuously supplies the ore, a conveying mechanism that conveys the ore to a predetermined position, a detecting mechanism that detects the ore at the predetermined position, and a sorting mechanism that sorts and picks up a detection result of the ore according to the detecting mechanism.
In the process of realizing the prior art, the inventor finds that:
the existing mineral product sorting machine can only screen out mineral products rich in elements to be extracted and mineral slag poor in the elements to be extracted at one time, and is not beneficial to fine classification of ores with different contents of the elements to be extracted.
Accordingly, there is a need to provide a mineral separator of ore that can finely classify the ore.
SUMMERY OF THE UTILITY MODEL
The embodiment of the application provides a mineral product sorting machine capable of finely sorting.
Specifically, a mineral products sorter includes:
a feed mechanism for feeding ore;
the conveying mechanism is used for conveying the ore to a preset position after the ore is loaded from the feeding mechanism;
the detection mechanism is used for detecting ores at a preset position;
the sorting mechanism is used for sorting and picking up the detection result of the ore according to the detection mechanism;
wherein the sorting mechanism comprises a spraying device, and the spraying device at least has two different fluid spraying modes so as to separate ores into at least three types.
Further, the injection device further comprises an actuating piece;
the injection device is provided with an injection hole;
the actuating component shields the circumferential direction of the injection hole so as to change the area of the injection hole for injecting the fluid.
Further, the actuating component is a rod-shaped component;
in the first position, the actuating piece is inserted into the range covered by the injection hole;
in the second position, the actuating member exits the range covered by the injection hole.
Further, the actuating component is a grid component;
in the first position, the deformation of the actuating component is partially overlapped with the range covered by the injection hole;
in the second position, the actuator returns to a range not overlapping with the range covered by the injection hole.
Further, the injection device further comprises an actuating piece;
the injection device is provided with an injection hole;
the actuator moves in the injection direction of the injection hole to change the speed of the fluid injected from the injection hole.
Further, the injection device further comprises an actuating piece;
the injection device is provided with an injection hole;
the actuator is pivotable or translatable to change the direction in which fluid is ejected from the ejection orifice.
Further, the injection device further comprises an actuating piece;
the sorting mechanism is at least capable of accessing fluid at a first pressure and a second pressure;
the actuator moves to selectively engage fluid at a first pressure or to selectively engage fluid at a second pressure.
Further, the injection device has an injection hole;
the mineral product sorting machine can select different opening numbers or opening time lengths of the injection holes.
Further, the injection hole has a first aperture and a second aperture;
the mineral product sorting machine can selectively open the injection holes with the first aperture or selectively open the injection holes with the second aperture.
Further, the sorting mechanism comprises an air spraying device or a liquid spraying device.
The technical scheme provided by the embodiment of the application at least has the following beneficial effects:
the spraying device has at least two different fluid spraying modes so as to separate the ore into at least three types. Therefore, the mineral product sorting machine can screen out three kinds of ores with different concentrations of the elements to be extracted at one time, and the production efficiency is improved.
Drawings
The accompanying drawings, which are included to provide a further understanding of the application and are incorporated in and constitute a part of this application, illustrate embodiment(s) of the application and together with the description serve to explain the application and not to limit the application. In the drawings:
fig. 1 is a schematic structural diagram of a mineral product sorter according to an embodiment of the present application.
Fig. 2 is a schematic structural diagram of another mineral product sorter according to an embodiment of the present application.
Fig. 3 is a schematic structural view of an actuator in a first position relative to an injection hole according to an embodiment of the present disclosure.
Fig. 4 is a schematic structural diagram illustrating an actuating member in a second position relative to an injection hole according to an embodiment of the present disclosure.
Fig. 5 is a schematic structural view of an actuator in a first position relative to an injection hole according to another embodiment of the present disclosure.
Fig. 6 is a schematic structural view of an actuator in a second position relative to an injection hole according to another embodiment of the present disclosure.
Fig. 7 is a structural diagram of the translational motion of the actuator according to the embodiment of the present application.
Fig. 8 is a schematic view of a pivoting structure of an actuator according to an embodiment of the present invention.
100 mineral product sorting machine
11 feeding mechanism
12 conveying mechanism
121 buffer device
13 detection mechanism
14 sorting mechanism
141 actuating element
142 injection hole
Detailed Description
In order to make the objects, technical solutions and advantages of the present application more apparent, the technical solutions of the present application will be described in detail and completely with reference to the following specific embodiments of the present application and the accompanying drawings. It should be apparent that the described embodiments are only some of the embodiments of the present application, and not all of the embodiments. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present application.
Referring to fig. 1, the present application discloses a mineral separator 100 including:
a feeding mechanism 11 for feeding ore;
a transport mechanism 12 for transporting the ore to a predetermined position after loading the ore from the feed mechanism 11;
a detection mechanism 13 for detecting the ore at a predetermined position;
the sorting mechanism 14 is used for sorting and picking up the detection result of the ore according to the detection mechanism 13;
wherein the conveying mechanism 12 is provided with a buffer device for buffering the ore jumping on the conveying mechanism 12.
The mineral separator 100 may have various shapes, and may be represented as a metal mineral separator 100 or a nonmetal mineral separator 100 in a specific scene. A metal mineral separator 100 such as iron ore, copper ore, antimony ore, and various rare earth metal ores, etc. A non-metallic mineral separator 100, such as a diamond ore, coal mine, or the like. The mineral separator 100 functions to separate mineral products rich in elements to be extracted from slag that is poor in the elements to be extracted. The mineral separator 100 screens out minerals rich in the elements to be extracted for further processing to form material data beneficial to human beings.
The feed mechanism 11 is used for feeding ore. The ore supplied by the feeding mechanism 11 may be a primary raw material or a raw material that has been previously processed. The primary raw material can be obtained directly from the mine by crushing or cutting. The raw material for the rough treatment may be obtained from the primary raw material by simple particle size screening, for example, by removing ores with too large and too small diameters to obtain ores with a particle size within a certain range. Specifically, the feeding mechanism 11 may be provided with a restriction tank, a funnel tank, a vibrating screen, a classifying screen, and the like to obtain ore materials according with expectations. It is understood that the specific form of the feeding mechanism 11 herein obviously does not constitute a limitation to the specific protection scope of the present application.
The transport mechanism 12 is used to transport the ore to a predetermined location after loading the ore from the feed mechanism 11. It will be appreciated that the transport mechanism 12 has a location to load ore. The position of the ore in the device can be understood as the initial position of the ore on the transport means 12. The setting of the ore loading position is related to the specific configuration of the conveying mechanism 12 and the feeding mechanism 11. In one practical embodiment provided herein, the feeding mechanism 11 may be a hopper trough, the transport mechanism 12 may be a conveyor belt, and the location where ore is loaded may be a location below the hopper trough that is directly opposite the conveyor belt. The predetermined position may be understood as a point along the path of the ore at the transport mechanism 12 or a location along the path. In the design concept of the mineral separator 100, the predetermined position is used for judging the mineral or ore rich in the element to be extracted and the slag or ore poor in the element to be extracted for subsequent processing. The distance or length between the position where the ore is loaded and the predetermined position is a condition that restricts miniaturization of the conveyance mechanism 12 or restricts miniaturization of the mineral separator 100. When the ore has a relatively simple motion state at the preset position, the ore sorter 100 is beneficial to judging the ore.
In one embodiment provided by the present application, the transport mechanism 12 is provided with a buffer device 121 for buffering ore bouncing on the transport mechanism 12. Thus, the ore can be judged by the mineral separator 100 when the ore only moves in the conveying direction, or the ore is kept static relative to the conveying mechanism 12 at the preset position and does not move relative to the conveying mechanism 12 in the gravity direction, and the movement state of the ore at the preset position is relatively simple.
Further, in a preferred embodiment provided herein, the conveyor 12 has a ore loading position;
the buffer device 121 includes a roller disposed near the ore loading position of the conveyor 12.
It will be appreciated that the transport mechanism 12 may generally include a driving roller for driving movement and a driven roller for driven movement, and a conveyor belt mounted between the driving roller and the driven roller. In the embodiment provided herein, the buffer device 121 includes rollers disposed near the ore loading position of the transport mechanism 12. The ore loading position of the transport mechanism 12 is between the drive roller and the roller. Alternatively, the ore loading position of the transport mechanism 12 is between the driven roller and the roller. In this way, the rollers support the ore in conjunction with the drive or driven rollers and the conveyor belt. The impact force of ore falling on the conveying belt is resolved by a mechanism formed by the rollers, the driving roller and the conveying belt, or the impact force of ore falling on the conveying belt is resolved by a mechanism formed by the rollers, the driven roller and the conveying belt. In this way, the run-out of ore at the transport mechanism 12 can be buffered.
Further, in a preferred embodiment provided herein, the conveying mechanism 12 comprises a conveyor belt, the conveyor belt comprises a side facing the ore;
the rollers are arranged on the opposite side of the conveyor belt to the side facing the ore, and the distance between the rollers and the ore loading position of the conveying mechanism 12 in the ore conveying direction is 1 to 5 times of the ore diameter.
It will be appreciated that the further the rollers are located from the ore loading position of the conveyor mechanism 12, the greater the degree of belt deformation, which results in a greater contact area between the belt and the rollers, and the more significant the frictional heating phenomenon, which tends to significantly shorten the belt life. The closer the distance between the roller and the ore loading position of the conveying mechanism 12 is, the smaller the deformation degree of the conveying belt is, the less the buffering effect is, and the roller may be directly impacted by the ore, thereby affecting the service life of the roller. It has been determined through a number of tests that the spacing between the rollers and the ore loading location of the conveyor means 12 in the direction of ore transport is preferably between 1 and 5 times the diameter of the ore. The ore diameter here is the maximum value of the ore particle size range.
Further, in a preferred embodiment provided herein, the buffer device 121 includes a cushion pad.
It will be appreciated that in this embodiment, buffering of ore against bouncing on the conveyor mechanism 12 is relied upon primarily. Compared with the method of buffering the ore jumping on the conveying mechanism 12 by using the deformation of the conveying belt, the service life of the conveying belt can be greatly prolonged.
Further, in a preferred embodiment provided herein, the conveying mechanism 12 comprises a conveyor belt, the conveyor belt comprises a side facing the ore;
the buffer pads are arranged on the opposite side of the ore facing side of the conveyor belt, extend in the ore conveying direction from the ore loading position of the conveying mechanism 12 and have a length of 1 to 5 times the diameter of the ore.
The cushions extend in the ore conveying direction from the ore loading position of the conveying mechanism 12, and the cushions are wasted when the cushions extend for a length longer than a certain range. When the extension length of the cushion pad is too short, the cushion pad and the conveyor belt share the impact force of ore loading to the conveying mechanism 12, so that the friction heating phenomenon is more obvious and easier as the contact area between the conveyor belt and the driving roller and the driven roller is larger, and the service life of the conveyor belt is obviously shortened. It has been determined through a number of tests that the cushions preferably extend 1 to 5 times the diameter of the ore. The ore diameter here is the maximum value of the ore particle size range.
Further, in a preferred embodiment provided by the present application, the base of the conveying mechanism 12 is a woven fabric, and the side facing the ore is coated with wear-resistant rubber.
The base of the transfer mechanism 12 is a fabric to facilitate heat dissipation from the pores of the fabric. The side of the conveying mechanism 12 facing the ore is coated with wear-resistant rubber, so that the abrasion of the ore to the conveying mechanism 12 can be relieved. On one hand, the heat accumulation can be prevented from being aggravated to accelerate the abrasion of the transmission mechanism 12, on the other hand, the abrasion of the transmission mechanism 12 is relieved by using an abrasion-resistant material, and the problem that the service life of the transmission mechanism 12 is short is solved from two aspects.
And the detection mechanism 13 is used for detecting the ore at a preset position. In an implementable embodiment provided by the present application, mineral products rich in the element to be extracted are separated from slag poor in the element to be extracted using optical means. The detection mechanism 13 may use X-rays. The detection mechanism 13 may include an X-ray generation device and an X-ray detection device. The X-ray detection device can determine the enrichment degree of the elements to be extracted through optical phenomena such as transmission, diffraction and spectrum of X-rays, so that the separation of ores is carried out.
It will be appreciated that the detection mechanism 13 herein may be loaded with different identification or analysis models depending on the ore type to improve the efficiency and accuracy of ore sorting. For example, loading a recognition model for rare earth elements, loading a recognition model for coal mines or loading recognition models for different particle size ores, loading recognition models for different element enrichment concentrations.
The sorting mechanism 14 is used for sorting and picking up the detection result of the ore according to the detection mechanism 13. The function of the sorting mechanism 14 is to separate the identified mineral products that are rich in the element to be extracted from the slag that is poor in the element to be extracted. Wherein the sorting mechanism 14 comprises a spraying device having at least two different fluid spraying modes for separating ore into at least three types.
Further, in a preferred embodiment provided herein, the injection device further comprises an actuating member 141;
the injection device has injection holes 142;
the actuating member 141 is circumferentially shielded at the injection hole 142 to change an area of the injection hole 142 to inject the fluid.
Referring to fig. 3 and 4, further, in a preferred embodiment provided in the present application, the actuating member 141 is a rod-shaped member;
in the first position, the actuating member 141 protrudes into the range covered by the injection hole 142;
in the second position, the actuating member 141 exits the range covered by the injection hole 142.
Specifically, for example, the injection hole 142 has a longitudinal section for injecting the fluid. A rod-shaped actuator 141 for shielding the longitudinal section is provided in the injection hole 142 or on the outer surface of the injection hole 142. In the first position, the actuating member 141 protrudes into the range covered by the injection hole 142; in the second position, the actuating member 141 exits the range covered by the injection hole 142. Thus, the injection holes 142 do not inject fluid, the injection holes 142 inject fluid without obstacles, the injection holes 142 inject fluid with obstacles, and three different movement modes, namely free falling of ore, impact of fluid on ore and impact of obstacle fluid on ore, can be separated into three.
Referring to fig. 5 and 6, further, in a preferred embodiment provided in the present application, the actuating member 141 is a mesh member;
in the first position, the deformation of the actuating member 141 partially overlaps with the range covered by the injection hole 142;
in the second position, the actuator 141 returns to a range not overlapping with the range covered by the injection hole 142.
Specifically, the actuator 141 is a variable parallelogram mesh, for example. In the first position, the actuator 141 deforms to partially overlap the range covered by the injection hole 142. Some sides of the parallelogram block the injection holes 142 with a longitudinal section that injects fluid. In the second position, the parallelogram returns to a square, rectangle, or does not overlap the range covered by the spray holes 142 when all sides of the parallelogram do not obstruct the spray holes 142 from having the longitudinal section of the sprayed fluid. Thus, the three different movement modes of free falling of ore, impact of fluid on the ore and impact of obstacle fluid on the ore can be separated into three types, wherein the fluid is not ejected from the ejection holes 142, the fluid is ejected from the ejection holes 142 without obstacle, and the fluid is ejected from the ejection holes 142 with obstacle.
Further, in a preferred embodiment provided herein, the injection device further comprises an actuating member 141;
the injection device has injection holes 142;
the actuating member 141 moves in the injection direction of the injection hole 142 to change the speed of the fluid injected from the injection hole 142.
The injection hole 142 has an injection longitudinal section through which the fluid is injected. When the movable element 141 is disposed in the injection hole 142, it may be located at a first hole depth position or a second hole depth position having a different distance from the injection longitudinal section. When the movable element 141 is located outside the injection hole 142, it may also be located at a first or second location outside the hole at a different distance from the injection longitudinal section. Thus, the injection holes 142 do not inject fluid, the injection holes 142 inject fluid at the first obstacle, and the injection holes 142 inject fluid at the second obstacle, so that three different movement modes, namely, ore free falling, impact of the first obstacle fluid on the ore, and impact of the second obstacle fluid on the ore, can be separated into three.
Referring to fig. 7 and 8, further, in a preferred embodiment provided by the present application, the injection device further includes an actuating member 141;
the injection device has injection holes 142;
the actuating member 141 is pivotable or translatable to change the direction in which the fluid is ejected from the ejection holes 142.
Specifically, when the actuating member 141 pivots to the first angle and the second angle, the impact force of the jetting fluid on the ore is different. For example, when the fluid is ejected from the ejection holes 142 at an upward angle of 45 degrees with respect to the gravity direction, or when the fluid is ejected from the ejection holes 142 at an upward angle of 60 degrees with respect to the gravity direction, the impact force of the ejected fluid on the ore is different. Therefore, three different motion modes of free falling of ores, impact of the ores by the fluid in the first spraying direction and impact of the ores by the fluid in the second spraying direction can be separated into three.
Further, in a preferred embodiment provided herein, the injection device further comprises an actuating member 141;
the sorting mechanism is at least capable of accessing fluid at a first pressure and a second pressure;
the actuator 141 moves to selectively engage fluid at a first pressure or to selectively engage fluid at a second pressure.
For example, the actuator 141 may be used as a fluid selection switch to selectively connect a fluid at a first pressure or a fluid at a second pressure. Thus, three different motion modes of free falling of ore, impact of the ore by the first pressure fluid and impact of the ore by the second pressure fluid can be separated into three.
Further, in a preferred embodiment provided herein, the injection device has an injection hole 142;
the mineral classifier can select different opening numbers of the injection holes 142 or injection opening periods of the injection holes 142.
The mineral classifier can select different opening numbers of the injection holes 142 or injection opening periods of the injection holes 142. Three different motion modes of ore free falling, ore fluid impact by the first number of injection holes 142 and ore fluid impact by the second number of injection holes 142 can be separated into three. Alternatively, the ore can be separated into three types, free fall, impact of the ore with a first duration fluid, and impact of the ore with a second duration fluid.
Further, in a preferred embodiment provided herein, the injection hole 142 has a first aperture and a second aperture;
the mineral separator may selectively open the injection holes 142 of the first aperture or selectively open the injection holes 142 of the second aperture.
The mineral classifier can selectively open the injection holes 142 of the first aperture or selectively open the injection holes 142 of the second aperture. Three different motion modes of ore free fall, ore fluid impact by the injection holes 142 with the first aperture and ore fluid impact by the injection holes 142 with the second aperture can be separated into three.
The injection device has at least two different fluid injection modes so as to separate the ore into at least three types. Therefore, the mineral product sorting machine can screen out three kinds of ores with different concentrations of the elements to be extracted at one time, and the production efficiency is improved.
In one implementation provided herein, the sorting mechanism 14 comprises an air jet, a liquid jet, or a robot.
The ore is disengaged from the transport mechanism 12 after continued movement after the transport mechanism 12 has passed the predetermined position. The sorted pick-up may be performed for the identified ore before or during the disengagement of the ore from the transport mechanism 12.
For example, the flight path of ore as it exits from the conveyor 12, and thus the drop point of ore, may be varied by means of a jet device during the exit of ore from the conveyor 12. It can be understood that the gas injection device can realize the separation of ores meeting the conditions only by configuring compressed gas, and the realization cost is low.
For example, the flight path of ore as it exits from the conveyor 12, and thus the drop point of ore, may be varied by a liquid spraying device during the exit of ore from the conveyor 12. It can be understood that the liquid spraying device needs to be provided with pressure liquid, so that the realization cost is high, but the ore can be cleaned, and the convenience is brought to the subsequent treatment of the ore.
For example, a robot may be used to pick up ore that meets the conditions before it is detached from the conveyor 12. It can be understood that the ore meeting the conditions is picked up by the mechanical arm, so that the realization cost is high, but the ore is classified finely, so that convenience is brought to the subsequent treatment of the ore.
Further, in a preferred embodiment provided herein, the sorting mechanism 14 comprises an air or liquid spraying device;
the mineral separator 100 further includes a second mineral conveying device for conveying the separated mineral.
For example, the flight path of ore as it exits from the conveyor 12, and thus the drop point of ore, may be varied by means of a jet device during the exit of ore from the conveyor 12. It can be understood that the gas injection device can realize the separation of ores meeting the conditions only by configuring compressed gas, and the realization cost is low.
For example, the flight path of ore as it exits from the conveyor 12, and thus the drop point of ore, may be varied by a liquid spraying device during the exit of ore from the conveyor 12. It can be understood that the liquid spraying device needs to be provided with pressure liquid, so that the realization cost is high, but the ore can be cleaned, and the convenience is brought to the subsequent treatment of the ore.
When the falling position of the sorted ore satisfying the condition and the position to be processed next are spatially isolated from each other, the second ore transfer device may be used to transfer the sorted ore, thereby improving the production efficiency.
Further, in a preferred embodiment provided herein, the sorting mechanism 14 comprises an air or liquid spraying device;
the mineral separator 100 also includes a backfill device to convey the slag.
For example, the flight path of ore as it exits from the conveyor 12, and thus the drop point of ore, may be varied by means of a jet device during the exit of ore from the conveyor 12. It can be understood that the gas injection device can realize the separation of ores meeting the conditions only by configuring compressed gas, and the realization cost is low.
For example, the flight path of ore as it exits from the conveyor 12, and thus the drop point of ore, may be varied by a liquid spraying device during the exit of ore from the conveyor 12. It can be understood that the liquid spraying device needs to be provided with pressure liquid, so that the realization cost is high, but the ore can be cleaned, and the convenience is brought to the subsequent treatment of the ore.
It is understood that the ore material is likely to cause mine collapse after being removed from the mine. For safety reasons, in this embodiment the mineral separator 100 is also provided with a backfilling device to deliver slag to the point of extraction of the mineral material.
In the embodiment provided herein, the transport mechanism 12 is used to transport ore to a predetermined location after loading ore from the feed mechanism 11; the detection mechanism 13 is used for detecting ores at a preset position; the transport mechanism 12 is provided with a buffer device 121 for buffering the run-out of the ore in said transport mechanism 12. In this way, the buffer device 121 can buffer the run-out of the ore on the conveyance mechanism 12 as much as possible, and therefore, the length of the conveyance mechanism 12 in the conveyance direction can be made as small as possible, and the mineral separator 100 can be easily miniaturized.
It should be noted that the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. Without further limitation, the statement that there is an element defined as "comprising" … … does not exclude the presence of other like elements in the process, method, article, or apparatus that comprises the element.
The above description is only an example of the present application and is not intended to limit the present application. Various modifications and changes may occur to those skilled in the art. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application should be included in the scope of the claims of the present application.
Claims (9)
1. A mineral separator, comprising:
a feed mechanism for feeding ore;
the conveying mechanism is used for conveying the ore to a preset position after the ore is loaded from the feeding mechanism;
the detection mechanism is used for detecting ores at a preset position;
the sorting mechanism is used for sorting and picking up the detection result of the ore according to the detection mechanism;
wherein the sorting mechanism comprises a spraying device, and the spraying device at least has two different fluid spraying modes so as to separate ores into at least three types;
the injection device further comprises an actuating piece;
the injection device is provided with an injection hole;
the actuating component shields the circumferential direction of the injection hole so as to change the area of the injection hole for injecting the fluid.
2. The mineral separator of claim 1, wherein the actuator is a rod-like member;
in the first position, the actuating piece is inserted into the range covered by the injection hole;
in the second position, the actuating member exits the range covered by the injection hole.
3. The mineral separator of claim 1, wherein the actuator is a grid;
in the first position, the deformation of the actuating component is partially overlapped with the range covered by the injection hole;
in the second position, the actuator returns to a range not overlapping with the range covered by the injection hole.
4. The mineral separator of claim 1, wherein the actuator moves in the jet direction of the jet holes to vary the velocity of the fluid ejected from the jet holes.
5. The mineral separator of claim 1, wherein the actuator is pivotable or translatable to change the direction of fluid ejected from the ejection apertures.
6. The mineral separator of claim 1, wherein the separator mechanism is fluidly coupled to at least a first pressure and a second pressure;
the actuator moves to selectively engage fluid at a first pressure or to selectively engage fluid at a second pressure.
7. The mineral separator of claim 1, wherein the mineral separator selects different numbers of opening of the injection holes or injection opening periods of the injection holes.
8. The mineral separator of claim 1, wherein the jet orifice has a first aperture and a second aperture;
the mineral product sorting machine selectively opens the injection holes with the first aperture or selectively opens the injection holes with the second aperture.
9. The mineral separator of claim 1, wherein the separation mechanism includes an air or liquid jet device.
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Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN112495833A (en) * | 2020-12-04 | 2021-03-16 | 湖州霍里思特智能科技有限公司 | Mineral product sorting machine |
CN114273257A (en) * | 2021-12-28 | 2022-04-05 | 湖州霍里思特智能科技有限公司 | Intelligent sorting system |
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2020
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Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN112495833A (en) * | 2020-12-04 | 2021-03-16 | 湖州霍里思特智能科技有限公司 | Mineral product sorting machine |
CN114273257A (en) * | 2021-12-28 | 2022-04-05 | 湖州霍里思特智能科技有限公司 | Intelligent sorting system |
CN114273257B (en) * | 2021-12-28 | 2024-07-02 | 湖州霍里思特智能科技有限公司 | Intelligent sorting system |
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