Method and apparatus for the control of a flotation separation process, including parameters of the flotation process and reagent addition to optimize mineral recovery
10678207 ยท 2020-06-09
Assignee
Inventors
Cpc classification
G05B19/401
PHYSICS
G05B2219/37583
PHYSICS
B03D1/028
PERFORMING OPERATIONS; TRANSPORTING
International classification
B07C5/34
PERFORMING OPERATIONS; TRANSPORTING
G05B19/401
PHYSICS
Abstract
A method and apparatus are provided to control of a flotation separation process, including parameters of the flotation process and reagent addition to optimize mineral recovery. The apparatus includes a signal processor or processing module configured at least to receive signalling containing information about at least one acoustic characteristic of a froth layer in a flotation cell or tank of a flotation separation process; and determine a control characteristic related to the flotation separation process based at least partly on the signalling received. The signal processor or processing module may also be configured at least to: provide corresponding signalling containing information to control the flotation separation process based at least partly on the control characteristic determined.
Claims
1. An apparatus comprising: a flotation cell or flotation tank for separating minerals and said cell or tank having an ore solution, gas bubbles and a froth layer; an acoustic waveguide placed in said cell or tank and said waveguide interacts with said ore solution and gas bubbles and optimally receives an acoustic attenuation related to the froth layer in said cell or tank, a separate acoustic detection device mounted exterior to the cell or tank which receives the acoustic signal from the acoustic waveguide, a signal processor or processing module configured at least to: receive signaling containing information about said acoustic attenuation related to said froth layer in said cell or tank from said acoustic detection device; and determine corresponding signaling containing information about a control characteristic related to the operation of said cell or tank, based at least partly on the signaling received from said acoustic detection device.
2. Apparatus according to claim 1, wherein the signal processor or processing module is configured to provide the corresponding signaling as control signaling to control the operation of the cell or tank based at least partly on the control characteristic determined.
3. Apparatus according to claim 1, wherein the control characteristic relates to parameters of the operation of the cell or tank and reagent addition to optimize minerals recovery.
4. Apparatus according to claim 2, wherein the signal processor or processing module is configured to control reagent dosing, ore feed rate, ore feed density, froth depth, superficial gas velocity or other aspects of the flotation cell or tank to maximize ore recovery, based upon the control characteristic determined.
5. Apparatus according to claim 1, said apparatus further comprises a second acoustic detecting device including a microphone wherein the signal processor or processing module is configured to receive the signaling from said microphone.
6. Apparatus according to claim 5, wherein the signal processor or processing module is configured to monitor the at least one acoustic characteristic of ore based at least partly on the signaling received from the microphone.
7. Apparatus according to claim 5, wherein the microphone is placed either above the froth layer, or directly in the froth layer, or below the froth layer.
8. Apparatus according to claim 1, wherein the signal processor or processing module is configured to receive the signaling a second from acoustic detection device, including a microphone, placed below the froth layer and monitor acoustics of said cell or tank reflected at an interface between the froth layer and a layer below the froth layer, including or also known as a pulp zone, based at least partly on a difference in an acoustic impedance between the froth layer and the pulp zone.
9. Apparatus according to claim 1, wherein the signal processor or processing module is configured to receive signals from two or more acoustic detection devices placed above and below the froth layer, in and below the froth layer, or entirely within the froth layer, and monitor the acoustic attenuation through the froth layer, between the froth layer and the pulp zone, between the froth layer and the air above the froth layer, or any combination, based at least partly on the signals received.
10. Apparatus according to claim 1, wherein the signal processor or processing module is configured to receive the signaling from acoustic detection devices positioned at a number of locations, including above, within, and/or below the froth layer and monitor the acoustic characteristics of the froth layer.
11. Apparatus according to claim 1, wherein the signal processor or processing module is configured to receive the signaling from said acoustic detection device and monitor acoustic characteristics of bubbles in a pulp zone below the froth layer to control the flotation cell or tank to optimize ore recovery.
12. Apparatus according to claim 1, wherein the signal processor or signal processing module is configured to receive the signaling from an acoustic detection device augmented with acoustic sources configured, arranged or placed in, under, next to or above the froth layer.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The drawing includes
(2)
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DETAILED DESCRIPTION OF BEST MODE OF THE INVENTION
(7)
(8) In
(9) The apparatus 10 may also include at least one acoustic detection means or device generally indicated as 20 shown in
(10) According to some embodiments of the present invention, acoustic sensing may be used to monitor the characteristics of the froth layer 14 in the flotation cell 16 to thereby maximize the recovery of ore. The acoustic characteristics of the froth layer 14 may then be used to control, e.g., the reagent dosing, ore feed rate, ore feed density, froth depth, superficial gas velocity or other aspects of the flotation cell, e.g., to maximize ore recovery.
(11) According to some embodiments of the present invention, the acoustic characteristics of the ore may be monitored by using the acoustic detection means 20, such as by using one or more microphones. The acoustic detection means 20 may be placed above the froth layer 14 like elements AD20.sub.1, AD20.sub.4, directly in or near the froth layer 14 like elements AD20.sub.2, AD20.sub.5, or below the froth layer 14 like elements AD20.sub.3, AD20.sub.6, consistent with that shown in
(12) According to some embodiments of the present invention, where the acoustic detection means 20 is placed below the froth layer 14, such as elements AD20.sub.3, AD20.sub.6, the acoustic detection means may be configured to monitor the acoustics of the froth cell or tank 16 reflected at the interface between the froth layer 14 and the layer below, known as the pulp zone and generally indicated by reference label 15, due to the difference in acoustic impedance between the froth layer 14 and the pulp zone 15.
(13) According to some embodiments of the present invention, the acoustic detection means 20 may be positioned at a number of locations, such as above, within, and/or below the froth layer to monitor the acoustic characteristics of the froth layer. In
(14) According to some embodiments of the present invention, acoustic detection sensors, such as AD20.sub.2, AD20.sub.4 and AD20.sub.6, may be mounted external to the flotation cell 16, e.g., including on an outside wall 17. In such embodiments, an acoustic guide or waveguide 18 may be placed within the flotation cell or tank 16 to optimize the acquisition of the acoustic signal. For example, the acoustic waveguide 18 may be placed within the flotation cell or tank 16 such that the acoustic waveguide 18 interacts with the solution in the flotation cell or tank 16 and gas bubbles, and the separate acoustic detection means AD20.sub.2, AD20.sub.4 and AD20.sub.6 are mounted on the exterior, e.g., on the outside wall 17, of the flotation cell or tank 16 to acquire the acoustic signal from the acoustic waveguide 18.
(15) According to some embodiments of the present invention, the acoustic detection means 20 may also be used to monitor the acoustic characteristics of bubbles in the pulp zone 15 to control the flotation cell or tank 16 to optimize ore recovery.
(16) According to some embodiments of the present invention, the acoustic detection techniques described herein may also be augmented with acoustic sources AS.sub.1, AS.sub.2, AS.sub.3, AS.sub.4, AS.sub.5 placed in the froth layer 14 like elements AS.sub.4, under the froth layer 14 like elements AS.sub.1, AS.sub.2, next to the froth layer 14 like elements AS.sub.3 or above the froth layer 14 like element AS.sub.5. Acoustic sources are known in the art, and the scope of the invention is not intended to be limited to any particular type or kind thereof either now known or later developed in the future. Moreover, a person skilled in the art would be able to place, implement, arrange or configure the acoustic source in, under, next to or above the froth layer 14 consistent with that shown in
The Flotation Process
(17) The present invention is described in relation to a flotation separation process, e.g., which may be configured to form part of the flotation process shown in
FIG. 4
The Method
(18) According to some embodiments, the present invention may take the form of a method to control of a flotation separation process, including parameters of the flotation process and reagent addition to optimize mineral recovery. By way of example,
The Signal Processor or Processing Module 12
(19) According to some embodiments of the present invention, the functionality of the signal processor or processing module 12 may be implemented using hardware, software, firmware, or a combination thereof.
(20) By way of example, and consistent with that shown and described herein, the signal processor or signal processing module 12 may be configured with at least one processor and at least one memory including computer program code, where the at least one memory and the computer program code are configured, with the at least one processor, to cause the apparatus at least to receive the signalling and determine the control characteristic in order to implement the present invention consistent with that disclosed herein.
(21) In a typical software implementation, the signal processor or signal processing module 12 may include one or more microprocessor-based architectures having a microprocessor, a random access memory (RAM), a read only memory (ROM), input/output devices and control, data and address buses connecting the same. A person skilled in the art would be able to program such a microprocessor-based implementation to perform the functionality described herein without undue experimentation. The scope of the invention is not intended to be limited to any particular type or kind of signal processing implementation using technology either now known or later developed in the future.
Applications Re Other Industrial Processes
(22) By way of example, the present invention is described in relation to, and part of, a mineral extraction processing system for extracting minerals from ore. However, the scope of the invention is intended to include other types or kinds of industrial processes either now known or later developed in the future, including any mineral process, such as those related to processing substances or compounds that result from inorganic processes of nature and/or that are mined from the ground, as well as including either other extraction processing systems or other industrial processes, where the sorting, or classification, of product by size is critical to overall industrial process performance.
The Scope of the Invention
(23) While the invention has been described with reference to an exemplary embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, may modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment(s) disclosed herein as the best mode contemplated for carrying out this invention.