Point of Reference Displacement and Motion Sensor
20170269203 · 2017-09-21
Inventors
Cpc classification
G01P13/00
PHYSICS
G01P3/00
PHYSICS
G01S17/42
PHYSICS
G01S13/58
PHYSICS
G01S7/003
PHYSICS
G01S7/028
PHYSICS
G01S13/86
PHYSICS
G01C19/5776
PHYSICS
International classification
G01S13/86
PHYSICS
G01C19/5776
PHYSICS
G01S17/42
PHYSICS
G01P3/00
PHYSICS
G01S13/42
PHYSICS
G01P13/00
PHYSICS
Abstract
Sensors, devices, systems, devices, and methods for providing wireless modular self-contained units with battery power supply that can use radar, ultrasonic, and IR measuring techniques and sensors for directional detection of impeding objects, persons, or moving targets, and can be used with mobile smart phones and the like. The modular sensor units can be used as a displacement and motion measurement sensor for point of reference measurement applications. The displacement sensing method can use radar, ultrasonic, and IR measuring techniques for directional detection of impeding objects, persons, or moving targets. Upon the detection of the said target, algorithms make use of the direction, angle of ascent, and speed to provide real time position data represented in discrete format. The said sensors are modular in embodiment allowing for multiple sensors to be positioned in strategic regions on the person or system of interest to study the said frame using the method of moments to dissect the object in varying degrees of granularity. The sensor shall connect wirelessly to a mobile handheld (i.e. the end user's smartphone) device for real-time data acquisition along with seamless integration into an existing IMU only based system requiring information beyond six degrees of freedom as normally represented by gyros, and accelerometers.
Claims
1. A point of reference displacement and motion sensor module comprising: a portable housing; a motion and displacement sensor inside the portable housing; a wireless transmitter inside the housing; and a battery power supply inside the housing, wherein the motion and displacement sensor senses information from a target to transmit in a wireless communication to a remote location.
2. The point of reference displacement sensor module of claim 1, wherein the motion and displacement sensor includes: an electromagnetic/radar transceiver and receiver inside the housing; or an infrared transceiver and receiver inside the housing.
3. The point of reference displacement sensor module of claim 3, wherein the radar transceiver and receiver includes; at least one of radar, ultrasonic and Doppler radar.
4. The point of reference displacement sensor module of claim 1, wherein the battery power supply includes: a coin cell battery.
5. The point of reference displacement sensor module of claim 1, further comprising in combination: a smart phone spaced apart from the sensor module for receiving data from the sensor module.
6. The point of reference displacement sensor module of claim 1, wherein the motion and displacement sensor includes sensors of measuring speed and direction from the target.
7. The point of reference displacement sensor module of claim 1, wherein the motion and displacement sensor corroborates inertial measurement data with displacement information for 7 degrees of freedom in motion analysis.
8. The point of reference displacement sensor module of claim 1, wherein the motion and displacement sensor includes: sensors for mapping motion of the target.
9. The point of reference displacement sensor module of claim 1, wherein the portable housing includes: a generally disc shape.
10. The point of reference displacement sensor module of claim 9, wherein the portable housing includes: a front side having an upper raised generally semi-circular surface; and a lower stepped in recessed semi-circular surface.
11. The point of reference displacement sensor module of claim 10, wherein the portable housing includes: a rear side with a generally flat circular surface.
12. The point of reference displacement sensor module of claim 11, further comprising: a holster with a cavity for allowing the lower stepped in recessed semi-circular surface portion to be inserted therein.
13. The point of reference displacement sensor module of claim 12, wherein the holster includes: a pair of upwardly protruding curved legs for wrapping about sides of the portable housing, when the lower stepped in recessed semi-circular surface portion of the housing is inserted into the cavity of the holster.
14. The point of reference displacement sensor module of claim 10, wherein the portable housing includes: a pair of portals spaced apart from one another on a front surface of the generally disc shape portable housing.
15. The point of reference displacement sensor module of claim 14, wherein the pair of portals includes: an IR transmitter which emits an IR pulse that is detected by an IR photodetector which contains a filter to lessen sensitivity to ambient light for improving sensor range.
16. The point of reference displacement sensor module of claim 8, wherein the generally disc shape portable housing include: a recessed charging port 530 for accepting a USB cable to allow for the battery power supply to be recharged.
17. The point of reference displacement sensor module of claim 8, wherein the generally disc shape portable housing include: a recessed on and off button switch for turning the sensor module on and off, the on and off button switch being recessed so as to not inadvertently power the sensor off while concealed in an object that might absorb shock.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0028] Before explaining the disclosed embodiments of the present invention in detail it is to be understood that the invention is not limited in its applications to the details of the particular arrangements shown since the invention is capable of other embodiments. Also, the terminology used herein is for the purpose of description and not of limitation.
[0029] In the Summary above and in the Detailed Description of Preferred Embodiments and in the accompanying drawings, reference is made to particular features (including method steps) of the invention. It is to be understood that the disclosure of the invention in this specification does not include all possible combinations of such particular features. For example, where a particular feature is disclosed in the context of a particular aspect or embodiment of the invention, that feature can also be used, to the extent possible, in combination with and/or in the context of other particular aspects and embodiments of the invention, and in the invention generally.
[0030] In this section, some embodiments of the invention will be described more fully with reference to the accompanying drawings, in which preferred embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will convey the scope of the invention to those skilled in the art. Like numbers refer to like elements throughout, and prime notation is used to indicate similar elements in alternative embodiments.
[0031] A list of components will now be described.
[0032] 1 modular self-contained sensor unit
[0033] 10 microprocessor
[0034] 20 IMU 60F inertial measurement unit with six degrees of freedom,
[0035] 30 RF (radio frequency) synthesizer emits discrete sinewave tones. The incident wave is transmitted as electromagnetic waves that is both absorbed and reflected off of the target. The reflected waves are exploited for magnitude and phase.
[0036] 35 refers to a circulator used as a reference signal
[0037] 40 flash memory is an on board non-volatile memory that stores calibration and other user definable data that survives powering the device on/off.
[0038] 50 refers to a quantizer (an analog to digital converter)
[0039] 60 Radiating Element (antenna)
[0040] 70 photo detector for transporting the electromagnetic waves through free space air.
[0041] 75 IR (infrared) transceiver transmits and receives sinewaves as photonic light energy, with IR demodulator
[0042] 80 antenna for electromagnetic waves
[0043] 85 RF demodulator
[0044] 100 transmitted and received echo waveform
[0045] 110 target can be any surface that that beams come into contact with
[0046] 200 spring mass system
[0047] 210 mass
[0048] 220 spring
[0049] 230 anchor reference point
[0050] 240 displacement
[0051] 250 modular sensor unit
[0052] 260 time of flight
[0053] 270 surface
[0054] 300 person to Person Situational Awareness Embodiment of a jogging person
[0055] 310 sensor unit module
[0056] 320 sensor unit module
[0057] 330 sensor unit module
[0058] 340 2D camera
[0059] 345 mount surface
[0060] 400 modular sensor unit and smart phone embodiment
[0061] 405 circuit board
[0062] 410 receiving information bandwidth
[0063] 420 coin cell battery
[0064] 430 chip antenna
[0065] 440 smart phone
[0066] 500 modular sensor unit housing
[0067] 510 front side
[0068] 512 Upper raised portion
[0069] 514 stepped area
[0070] 515 field of view
[0071] 516 recessed bevel
[0072] 520 IR indicator
[0073] 530 charging port
[0074] 540 on/off button
[0075] 550 IR transmitter (one of the optical components)
[0076] 560 IR photodetector (another one of the optical components)
[0077] 570 rear side
[0078] 575 fasteners, such as screws, bolts, and the like.
[0079] 590 flat surface
[0080] 580 battery indicator
[0081] 600 screen shot
[0082] 605 recorded displacement data
[0083] 610 email
[0084] 615 velocity graph
[0085] 617 accelerometer data
[0086] 700 track motion embodiment
[0087] 710 sensor
[0088] 720 moving cart
[0089] 730 holster
[0090] 732 left side curved leg
[0091] 735 inside cavity of holster 730
[0092] 738 right side curved leg
[0093] 750 track
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[0095] The IMU (inertial measuring unit) 60F 20 can include but is not limited to an IMU used in U.S. Pat. No. 4,589,610 to Schmidt, which is incorporated by reference in its' entirety. U.S. Pat. No. 4,589,610 to Schmidt describes an example of using an IMU to deduce motion in a guidance system. The subject invention is taking this IMU information and reporting it to the end user through an app so that children can learn about the motion of objects in free space. In order to get position data, Kalman filters can be applied and in doing so these are high quality estimates. We are adding the displacement sensor into the mix so that the missile or toy knows it's absolute range to a target.
[0096] Other types of sensors can be used such as but not limited to radar and ultrasonic transducers, piezo-vibrators. and the like.
[0097] Referring to
[0098] The received signal is processed using an antenna 80 for the electromagnetic wave where the received signal is demodulated using an RF demodulator 85. The received signal is processed using photodetector 70 for the photonic wave where the received signal is demodulated using an IR demodulator 75. This phase delta 100 is used to compute the distance to the target in the digital signal processing unit on the microprocessor 10. The inertial measurement data 20 (i.e. acceleration, and angular acceleration data) are combined in a vector form and stored on the on-board flash memory 40.
[0099] Three axis of acceleration, and three axes of angular acceleration results in six degrees of freedom (6OF). The processed sensor data is both stored on the flash 40 and transmitted in real time using a personal area network which can include Bluetooth, Wi-Fi, and other radio protocols providing truly untethered telemetry data.
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[0102] Take the case of an athlete 300 shadow performing in front of a wall 345. In some cases, a 2-D camera 340 can be mounted as a secondary aid in training for performance and power by monitoring technique. Multiple sensors 310, 320, and 330 can be placed at key places of motion along the body 300 can relay said information back to a host mobile device (
[0103] A personal area network (PAN) is the interconnection of information technology devices within the range of an individual person, typically within a range of 10 meters. Transmitting data wireless over a short distance. Bluetooth and Wi-Fi Direct are examples of personal area networks (PANs).
[0104] The distance of each sensor 310, 320, and 330 as measured with respect to the wall 345 can be combined to analyze a sprinter's running motion on a treadmill by correlating the runners arm stride 310 with their quad explosion 320 to determine if they are overcompensating for weak lower leg muscles 330.
[0105] The sensor units 310, 320, 330 can provide depth from the camera 340 to make for three-dimensional data points for motion tracking of the individual points on the subject of interest. The information can be used for tracking during animation to provide ultra-realistic modeling of the person in a computer animation.
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[0107] The electronic circuit assembly 400 part of sensor unit 1 is responsible for housing circuit board 405 along with chip antenna 430 for transmitting and receiving information 410 from the smart phone or mobile computing device 440. The said unit is low energy device capable of running for extended periods of time off of a single coin cell 420.
[0108] The sensor unit 400 is not a throw-away device upon depletion of the coin-cell battery 420. The chip antenna 430 can be low profile in design and collocated with the rest of sensor electronics using an RF (radio frequency) substrate on the top side of the PWB.
[0109] The advantage of such design is that there are no additional mechanisms to connect to the bicycle that might suffer damage due the normal rigors of an e-garment. The bandwidth 410 of the chip antenna 430 is commensurate with the low-power radio already utilized in industry standard smartphones, so the smartphone 440 does not require any special adapters to communicate.
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[0111] Under an outwardly extending upper portion 512 there stepped area 514 leading to a recessed bevel 516 for mounting the sensor unit 500 in a motion cart enclosure 730 shown and described in relation to
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[0114] The sensor unit 500 can be used to corroborate inertial measurement data with the displacement information for 7 degrees of freedom in motion analysis. The sensor unit 500 can be modular for user specific regions of motion observation for a combinatorial motion map of said targets of interest.
[0115] The sensor unit 500 reports said information in multiple data outputs for digital realization using smart devices and other mobile computing platforms.
[0116] The wireless modular sensor units 500 can be used for real-time data acquisition along with seamless integration into an existing IMU only based system requiring information beyond six degrees of freedom as normally represented by gyros, and accelerometers.
[0117] The sensor units 500 used in the novel system are designed to maximize battery life by placing the sensors in a low-power mode until target excitations exceed a threshold invent on the sensor. Upon excitation, the sensor shall begin collecting data analyzing targets coming within proximity of the sensor. The software shall place the sensor back in the sleep mode when excitations cease over a specified time interval.
[0118] The wireless link shall support the Wi-Fi, Zigbee, Bluetooth, and ANT+ communication protocol. The chosen antenna and RF (radio frequency) substrate are fully compatible with all competing lower-power standards/communication radios.
[0119] The sensor unit 500 can use software running on the host mobile device shall compute the sensor data for analysis per the desired outputs as specified by the end user to include useful information in physics lab experiments like displacement graphs, acceleration graphs, and range plots etc.
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[0124] The term “approximately” can be +/−10% of the amount referenced. Additionally, preferred amounts and ranges can include the amounts and ranges referenced without the prefix of being approximately.
[0125] While the invention has been described, disclosed, illustrated and shown in various terms of certain embodiments or modifications which it has presumed in practice, the scope of the invention is not intended to be, nor should it be deemed to be, limited thereby and such other modifications or embodiments as may be suggested by the teachings herein are particularly reserved especially as they fall within the breadth and scope of the claims here appended.