This invention relates to the creation and control of electric fields en mass to create, shape or affect other fields by producing field movement or field shapes or field presence within another independently controlled electric field or to produce an electric field, pluralities of electric fields or a larger electric field of a particular shape or intensity or warp configuration or with a particular motion or with the properties to move another field, move a charge or move, orient, propel or change the trajectory of relatively free floating dipole, non-dipole, or autonomous vehicular objects that generate and control a singular field, control polarity or a plurality of their own electric fields to maneuver and navigate a matrix of pluralities of fields in an environment which may be or consist of liquid, gas, plasma or solids to do work or produce additional field shapes or topology.
In recent years parallel processing, multi-core processors and parallelism in graphics processors have continued pushing the envelope in computing operations done per second. Methods of computational field dynamics have required large render times with prior-art. Many simplified processors in parallel rather than a few fast centralized processors may enable the state of the art to advance.
In view of these advantages to do field dynamics operations in real-time this invention embraces parallel computing through the use of a matrix or other structure which responds to op-code like commands concurrently with logic and or at least one instance of loop capable execution and is populated by a plurality or pluralities of electric field processor emitters wherein each electric field processor emitter has logic and or at least one instance of loop capable execution wherein the matrix control can issue an op code like command over the matrix to all the electric field processor emitters which includes autonomous navigators or Bead-like Energetic Autonomous Navigators (B.E.A.N.s) wherein an instance of execution or logic in the electric field processor emitter and Bead-like Energetic Autonomous Navigator respond concurrently to render, move or change electric fields or to influence other independently controlled fields or to give B.E.A.N.s work commands in real-time.
Similar to computational field dynamics simulation using grid points to visualize experiments with various parameter changes to affect characteristics or a parameter say field gradient electric field force the characteristics and or parameters affecting an electric field are altered in a similar manner using an actual device that generates and controls an electric field which in turn populate in plurality a grid like or matrix like structure to create, control or change: its own created electric field/s, an independent electric field/s, an electro-magnetic field/s, an object, the properties near or on the surface of or surrounding an object, a process, or to command and power pluralities of free ranging, wireless, vehicular micro-robots called B.E.A.N.s (Bead-like Energetic Autonomous Navigators) which also are electric field processor emitters and include Integrated Electric Field Processor Emitters (I.E.F.P.E.).
A key difference from a computational field dynamics simulation is that real fields are used and in real-time. Combined with B.E.A.Ns which have I.E.F.P.E./s on-board. A variety of objects can be added with various characteristics into the arena containing both a matirx of I.E.F.P.E.s and free ranging I.E.F.P.E.s in the form of B.E.A.N.s. Parallelism is achieved since each electric field processor emitter is a processor capable of responding to commands issued in parallel so the entire matrix responds in unison and with synchronization. One is now free from the latency required to do similar work required for rendering a field dynamics or field simulation or visualization.
In view of these advantages it is the object of this invention to use a matrix or other structure which responds to op code like commands with logic or at least one instance of loop capable execution and is populated by a plurality or pluralities of Integrated Electric Field Processor Emitters wherein each I.E.F.P.E. has logic or at least one instance of loop capable execution wherein the matrix control is capable of issuing an op code like command over the matrix to all the I.E.F.P.E. wherein each I.E.F.P.E. may respond concurrently to render, move or change electric fields or to influence other independently controlled fields in real-time.
Pluralities of processors, capacitors, small-transformers, transistors, resistors, diodes, conductors, and electromechanical micro machinery are integrated together or fabricated as an integrated device for controlling and producing or emitting an electric field. The Integrated Electric Field Processor Emitter requires only a low 2.4 volts or less to become energized and emit a non-trivial electric field.
This Integrated Electric Field Processor Emitter placed on board a Bead-like object which can float freely or be threaded on a wire and obtains its energy from Rf, a piezoelectric material, light, or a field can be used to control orientation, polarity, charge, trajectory, or propulsion.
Placed in a matrix, lattice or on-board a free ranging autonomous vehicular like object these Electric Field Processor Emitters form a parallel processing system which can generate synchronized waves of electric fields or sequences of electric field activations.
Individual Integrated Electric Field Processor Emitters can be produced with prior art semiconductor manufacturing techniques to reduce cost. Integrating the conductors, capacitor, diodes, resistors and transformer, and other circuitry together in a tight space allows low voltage to be used to power the individual emitter preventing metal interconnects and other circuitry from creating unwanted additional field effects or antenna like effects on the field.
The capacitor structure such as metalized films or other capacitive dielectric material (Ta2O5 or Niobium Oxide for example) and other needed circuitry and metalized/metal/conductor structures may lay below a planar BSG, BPSG structure which has metal conductor edge exposures necessary to emit the electric field in a space above plane or at a point in a lattice which remains clear of other objects or structures allowing one to place an object or flow of particles, liquids, solids or gases through a lattice or other confined space or orifice with a field generating device in this area to be manipulated or controlled.
The substrata or material wherein the Integrated Electric Field Processor Emitter is situated is not limited to silicon but may also be another translucent material, plastic or other material wherein for example a clear screen-protector like device encapsulating an I.E.F.P.E. matrix can be placed over the front of a tablet computer or mobile phone to trigger a touch screen. It is also possible to embed the I.E.F.P.E. within a material or within a device or structure/s to provide field control or generation within the material or within a device/s.
Micro mechanical motion employed at the emitter locations in a matrix or on-board the moveable or autonomous object can be used to move the conductor/s into or out of an electrostatic condition or change polarity or re-orient the polarity or change asymmetry in the conductor by employing flippers or filament conductor movements or conductor movements to cause field emission to be stronger on one side than the other to orient or turn. Each emitter location has a logic or a register transfer language like command processor or op code micro processor that responds in real-time. The micro electro mechanical motion can also be used to propel an on wire Bead-like Energetic Autonomous Navigator to another position on a wire or to propel a wireless B.E.A.N..
The matrix or other structure responds to op code like commands wherein the matrix control can issue an opcode like command over the matrix to all the I.E.F.P.E and each I.E.F.P.E. may respond concurrently to render, move or change electric fields in real-time. A subset of matrix commands are listed below that are issued to a matrix which in turn commands electric field processor emitters with parallelism:
{x,y . . . xn,yn} {time quantum}
Possible parameters
{charge properties} {grain}left
{charge properties} {grain}right
{charge properties} {grain} up
{charge properties} {grain} down
{charge properties} {grain} upleft
{charge properties} {grain}upright
{charge properties} {grain}downleft
{charge properties} { grain} downright
{charge properties} {x,y . . . xn,yn}{grain}left
{charge properties} {x,y . . . xn,yn}{grain}right
{charge properties} {x,y . . . xn,yn} {grain}up
{charge properties} {x,y . . . xn,yn} {grain} down
{charge properties} {x,y . . . xn,yn} {grain}upleft
{charge properties} {x,y . . . xn,yn} { grain}upright
{charge properties} {x,y . . . xn,yn} { grain} downleft
{charge properties} {x,y . . . xn,yn} { grain} downright
dialate from x,y
constrict from x,y
steady−voltage value, time quantum
steady+voltage value, time quantum
−limit voltage,+limit voltage zero cross, time quantum−, time quantum+step voltage, no of steps, step quantum time and voltage peak+,peak−
1-100000
move left grain x
move right grain x
move in from x, y −40
increase radius point x,y 1 to 30
Other more complex commands are issued for B.E.A.N. operation which are issued in parallel to these autonomous ranging vehicles such as return home, go to this position at propel speed x, dispense, emit in a specified direction, intensity u, yaw, pitch, attach, and hover.
Numerous medical applications exist. Internal suturing or clotting methods can be produced to allow the physician to administer B.E.A.N.s intravenously for example. These then can travel throughout the body which can be bathed in an electric I.E.F.P.E. matrix or lattice of fields facilitating the free travel of B.E.A.N.s throughout the body to use appropriate onboard sensing to find a certain physical feature or other to go to work clotting, removing, boring carrying waste material from a work site out of the body. The patient may have to lay on a surface which may have millions of I.E.F.P.E.s to energize and control the B.E.A.N.s or a portable kit may be in a cast-like form or head-gear used to allow a continuous use of B.E.A.N.s on a patient who may require longer periods of treatment or permanent treatment.
Delivery of medicines wherein a specific site of the body can be marked with the electric field matrix so that a specific area can be targeted or B.E.A.N.s can seek out appropriate sites to administer treatment. Numerous other forms of work can be done.
A 3-D display system utilizing a plurality particles which can be manipulated in space by the electric field shape and modulation control by a plurality of transmission points or a massive plurality of pluralities of field transmission end points or conductor edges among a plurality of conductors.
Pluralities of electric field emitters may be divided into networks or pluralities of grids or matrices within matrices or grids within grids or some asymmetric plurality. Each of these groupings may have a matrix controller that issues commands to a plurality of electric field processor emitters.
A mesh, asymmetric mesh, matrix, lattice, or grid of devices wherein each device is comprised of processing logic co-located with electric potential generating circuitry structures; capacitors, diodes, resistors, transistors, micro-transformers, micro coils, and as needed micro electro mechanical machines. Each device in the matrix structure respond to commands in unison/parallel. Each device in the matrix is an Integrated Electric Field Processor Emitter.
The integrated nature of these field processor emitters can be realized on a large scale or a small 900 micron or smaller scale using prior art semiconductor manufacturing techniques. I.E.F.P.E. (Integrated Electric Field Processor Emitters) avoid antenna effect like problems and allows low supply voltage while allowing an electric potential (or higher voltages) to be produced locally . In combination with micro machine structures a persistent electric potential may exist while moving a conductor out of symmetry or to a different position (via micro machine force multiplier moving structures for example) to vary the devices generated electrostatic condition from peak field emission to field emission off. This can be used to produce a modulation and or change in voltage. A modulation may also be produced by turning supply voltage on and off or creating an alternating current like condition in the charge circuit.
A cascade of modulations or pluralities of I.E.F.PE.s in the matrix can be used to produce a wave like electric field structure or other type of motion or sequence of movements . Because each emitter is controlled by a processor, all emitter response is concurrent allowing the entire matrix to respond. Massive parallelism is achieve by high speed transistor transistor logic within each emitter.
Larger devices may be used as well if small scale devices are not needed or are not economical. These devices can be manufactured and packaged using prior art semiconductor manufacturing techniques and can be done on a wafer scale 200 mm, 300 mm and larger. 300 mm wafers can be cut and butt up with one another to form very large matrix structures.
Similar to the computational field dynamics simulations using grid points to visualize experiments with various parameter changes to affect characteristics or a parameter say velocity or field gradient electric field force or boundary forces, the characteristics and or parameters affecting an electric field can be altered or experimented with using this matrix of IEFPEs as well but with the key difference being that it is done with a real field, and in real-time. Responses of the matrix behave in real-time unlike prior art computational field dynamics software used for visualization requiring a rendering latency and super-computing capabilities in prior-art.
Filing Document | Filing Date | Country | Kind |
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PCT/US13/72463 | 11/29/2013 | WO | 00 |