MATERIAL SEPARATION AND CONVEYANCE USING TUNED WAVES
20170216888 · 2017-08-03
Inventors
Cpc classification
B03B13/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B03B13/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Systems, methods and computer readable media for material separation and conveying using tuned waves are disclosed.
Claims
1. A system comprising: a controller programmed to separate materials using tuned waves; an input device configured to measure material response to stimulation; and an output device configured to generate tuned waves based on one or more control signals received from the controller.
2. The system of claim 1, wherein the controller is configured to provide independent control over output signals to each output device.
3. The system of claim 1, wherein the controller is configured to control one or more of a frequency, an amplitude, signal phasing, and signal duration of the one or more control signals.
4. The system of claim 1, further comprising a plate configured with a two-axis of inclination and disposed so as to communicate the tuned waves from the output devices.
5. The system of claim 1, wherein the controller is further configured to control one or more of fluid flow, fluid pressure, and fluid flow direction for wet material separation/conveyance.
6. The system of claim 1, wherein the controller is configured to perform operations including: providing material via a material hopper; configuring a controller with material separation/conveyance parameters based on one or more components of the material; generating, at the controller, one or more modulated signals in accordance with the parameters, each modulated signal corresponding to an output device; amplifying the modulated signals; supplying the amplified modulated signals to an output device; and causing the material to be separated in response to application of the modulated signals from the output device via a resonator plate.
7. The system of claim 6, wherein the controller is further configured to receive a feedback signal from a feedback sensor and provide the feedback signal to the controller.
8. The system of claim 7, wherein the controller is further configured to adjust, with the controller, the modulated signal based on the received feedback signal.
9. A method comprising: providing material via a material hopper; configuring a controller with material separation/conveyance parameters based on one or more components of the material; generating, at the controller, one or more modulated signals in accordance with the parameters, each modulated signal corresponding to an output device. amplifying the modulated signals; supplying the amplified modulated signals to an output device; and causing the material to be separated in response to application of the modulated signals from the output device via a resonator plate.
10. The method of claim 9, further comprising receiving a feedback signal from a feedback sensor and providing the feedback signal to the controller.
11. The method of claim 10, further comprising adjusting, with the controller, the modulated signal based on the received feedback signal.
12. The method of claim 9, further comprising orienting one or more of the output devices to a predetermined angle of incidence via a gimble corresponding to each output device.
13. The method of claim 10, wherein the feedback sensor is an ultrasonic sensor.
14. The method of claim 9, further comprising moving each separated components of the material to a respective output chute.
15. A nontransitory computer readable medium having stored thereon instructions that, when executed by a processor, cause the processor to perform operations including: providing material via a material hopper; configuring a controller with material separation/conveyance parameters based on one or more components of the material; generating, at the controller, one or more modulated signals in accordance with the parameters, each modulated signal corresponding to an output device. amplifying the modulated signals; supplying the amplified modulated signals to an output device; and causing the material to be separated in response to application of the modulated signals from the output device via a resonator plate.
16. The nontransitory computer readable medium of claim 15, wherein the operations further comprise receiving a feedback signal from a feedback sensor and providing the feedback signal to the controller.
17. The nontransitory computer readable medium of claim 16, wherein the operations further include adjusting, with the controller, the modulated signal based on the received feedback signal.
18. The nontransitory computer readable medium of claim 15, wherein the operations further include orienting one or more of the output devices to a predetermined angle of incidence via a gimble corresponding to each output device.
19. The nontransitory computer readable medium of claim 16, wherein the feedback sensor is an ultrasonic sensor.
20. The nontransitory computer readable medium of claim 15, wherein the operations further include moving each separated components of the material to a respective output chute.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0036] In general, material separation using tuned waves can include energizing an aggregate material with a specific frequency or set of frequencies. The frequency can be determined by measuring a physical response of the aggregate material to output device stimulation and receiving the response via an electrical and/or software interface and storing the received response for integration into a final output profile of the tuned wave separation system.
[0037] An example frequency bandwidth can be on the order of less than or equal to about 200 Hz, for example. An actual bandwidth can also be determined empirically based on testing of material responses.
[0038] In operation, output device (e.g., acoustical emitter) modulation is determined by one or more software controlled output signals in accordance with the above-mentioned frequency response. Output device physical orientation can be determined by a geometric relationship between the emitter and aggregate material present for separation. For example, outputs may be phased so that no more than 120 degrees of separation will exist for any one of the emitters within the physical machine structure. Some implementations can be used to create a vortex of sound (or tuned wave energy) in order to separate aggregate material.
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[0042] In operation, the processor 408 can output a modulated signal 414 to an amplifier 416. The amplified signal can be supplied to a wave generator 420, which can supply an amplified output 422 to a resonator plate 424 in contact with material to be separated (or conveyed) 426. The system 400 can also include a feedback loop 418 for providing a feedback channel so that the processor can automatically adjust system parameters.
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[0044] The waves are received by a receiving device 506 and used to stimulate the material 508. The stimulated material may exhibit vibration or other motion based on mechanical wave energy absorption, reflection and density of material 510. The material can be guided via a manual or automatic guide system to collection bins 512.
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[0046] In operation, the processor 602 may execute the material separation and/or conveyance tuned wave application 610 stored in the memory 606. The material separation and/or conveyance tuned wave application 610 can include software instructions that, when executed by the processor, cause the processor to perform operations for material separation and/or conveyance tuned wave in accordance with the present disclosure (e.g., the material separation and/or conveyance tuned wave application 610 can perform one or more of steps 402-426 and/or 502-512 described above and, in conjunction, can access the database 612). The material separation and/or conveyance tuned wave application 610 can also operate in conjunction with the operating system 604.
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[0052] In addition to separating material, the tuned wave methods and systems described herein can be used to convey material. While examples have been described in terms of separating one or more materials from an aggregate material, it will be appreciated that other types of materials can be separated and/or conveyed using tuned wave systems and methods as described herein, such as waste streams (trash and/or recycling streams), food products, agricultural products and the like. In general any material where a need may exist to separate constituents (or convey material) may be processed using an implementation of the tuned wave separation/conveyance techniques described herein.
[0053] It will be appreciated that the modules, processes, systems, and sections described above can be implemented in hardware, hardware programmed by software, software instructions stored on a nontransitory computer readable medium or a combination of the above. A system as described above, for example, can include a processor configured to execute a sequence of programmed instructions stored on a nontransitory computer readable medium. For example, the processor can include, but not be limited to, a personal computer or workstation or other such computing system that includes a processor, microprocessor, microcontroller device, or is comprised of control logic including integrated circuits such as, for example, an Application Specific Integrated Circuit (ASIC). The instructions can be compiled from source code instructions provided in accordance with a programming language such as Java, C, C++, C#.net, assembly or the like. The instructions can also comprise code and data objects provided in accordance with, for example, the Visual Basic™ language, or another structured or object-oriented programming language. The sequence of programmed instructions, or programmable logic device configuration software, and data associated therewith can be stored in a nontransitory computer-readable medium such as a computer memory or storage device which may be any suitable memory apparatus, such as, but not limited to ROM, PROM, EEPROM, RAM, flash memory, disk drive and the like.
[0054] Furthermore, the modules, processes systems, and sections can be implemented as a single processor or as a distributed processor. Further, it should be appreciated that the steps mentioned above may be performed on a single or distributed processor (single and/or multi-core, or cloud computing system). Also, the processes, system components, modules, and sub-modules described in the various figures of and for embodiments above may be distributed across multiple computers or systems or may be co-located in a single processor or system. Example structural embodiment alternatives suitable for implementing the modules, sections, systems, means, or processes described herein are provided below.
[0055] The modules, processors or systems described above can be implemented as a programmed general purpose computer, an electronic device programmed with microcode, a hard-wired analog logic circuit, software stored on a computer-readable medium or signal, an optical computing device, a networked system of electronic and/or optical devices, a special purpose computing device, an integrated circuit device, a semiconductor chip, and/or a software module or object stored on a computer-readable medium or signal, for example.
[0056] Embodiments of the method and system (or their sub-components or modules), may be implemented on a general-purpose computer, a special-purpose computer, a programmed microprocessor or microcontroller and peripheral integrated circuit element, an ASIC or other integrated circuit, a digital signal processor, a hardwired electronic or logic circuit such as a discrete element circuit, a programmed logic circuit such as a PLD, PLA, FPGA, PAL, or the like. In general, any processor capable of implementing the functions or steps described herein can be used to implement embodiments of the method, system, or a computer program product (software program stored on a nontransitory computer readable medium).
[0057] Furthermore, embodiments of the disclosed method, system, and computer program product (or software instructions stored on a nontransitory computer readable medium) may be readily implemented, fully or partially, in software using, for example, object or object-oriented software development environments that provide portable source code that can be used on a variety of computer platforms. Alternatively, embodiments of the disclosed method, system, and computer program product can be implemented partially or fully in hardware using, for example, standard logic circuits or a VLSI design. Other hardware or software can be used to implement embodiments depending on the speed and/or efficiency requirements of the systems, the particular function, and/or particular software or hardware system, microprocessor, or microcomputer being utilized. Embodiments of the method, system, and computer program product can be implemented in hardware and/or software using any known or later developed systems or structures, devices and/or software by those of ordinary skill in the applicable art from the function description provided herein and with a general basic knowledge of the software engineering and material science arts.
[0058] Moreover, embodiments of the disclosed method, system, and computer readable media (or computer program product) can be implemented in software executed on a programmed general purpose computer, a special purpose computer, a microprocessor, or the like.
[0059] It is, therefore, apparent that there is provided, in accordance with the various embodiments disclosed herein, methods, systems and computer readable media for material separation and conveyance using tuned waves.
[0060] While the disclosed subject matter has been described in conjunction with a number of implementations, it is evident that many alternatives, modifications and variations would be, or are, apparent to those of ordinary skill in the applicable arts. Accordingly, Applicants intend to embrace all such alternatives, modifications, equivalents and variations that are within the spirit and scope of the disclosed subject matter.