Universal Electronic Hubodometer
20210396544 · 2021-12-23
Inventors
Cpc classification
H04Q2209/43
ELECTRICITY
G01C22/00
PHYSICS
H04Q9/00
ELECTRICITY
H04W4/80
ELECTRICITY
G08C2201/93
PHYSICS
G01P15/00
PHYSICS
International classification
G01C22/00
PHYSICS
G01P15/00
PHYSICS
Abstract
A universal electronic hubodometer with a single sensor system and method capable of electronically monitoring and/or processing the rotations of an object (e.g., a hubcap, wheel-hub, wheel, or tire) and wirelessly communicating any measured data to a mobile device (e.g., a mobile phone, PDA, cell phone, smartphone, or tablet). In one embodiment the universal electronic hubodometer may be capable of electronically determining the revolutions of an object using a single accelerometer while managing to overcome the problems of current hubodometers.
Claims
1. A universal electronic hubodometer comprising: an accelerometer comprising a single accelerometer sensor for measuring force in any given direction; a microcontroller unit (MCU), wherein the MCU processes data generated by the accelerometer; a communication module, wherein the communication module wirelessly transmits any data processed by the MCU to a mobile device and wirelessly receives any data from the mobile device; and a power supply, wherein the power supply provides power to the accelerometer, the MCU, and the communication module; wherein the accelerometer, the MCU, the communication module, and the power supply are configured onto a printed circuit board (PCB) and disposed within an outer housing.
2. The universal electronic hubodometer of claim 1, wherein the accelerometer is disposed on the PCB at an angle between about 45° and about 75° relative to a center of the PCB.
3. The universal electronic hubodometer of claim 1, wherein the accelerometer is disposed on the PCB at a distance between about 5 mm and about 25 mm from a center of the PCB.
4. The universal electronic hubodometer of claim 1, further comprising a display unit disposed on a front face of the universal electronic hubodometer.
5. The universal electronic hubodometer of claim 4, wherein the data processed by the MCU may be transmitted to the display unit.
6. The universal electronic hubodometer of claim 1, further comprising a multifunctional button disposed on a front face of the universal electronic hubodometer.
7. The universal electronic hubodometer of claim 1, wherein the communication module comprises a wireless Bluetooth system.
8. The universal electronic hubodometer of claim 1, wherein the single accelerometer only detects force along a single axis or direction.
9. The universal electronic hubodometer of claim 1, wherein the mobile device is selected from a group consisting of a mobile phone, PDA, cell phone, smartphone, laptop, and tablet.
10. The universal electronic hubodometer of claim 1, wherein the mobile device comprises an application that allows the universal electronic hubodometer to be wirelessly programmed, calibrated, or otherwise controlled.
11. A method for monitoring rotation data of an object comprising: (A) attaching a universal electronic hubodometer to a hubcap on a wheel of a vehicle, wherein the universal electronic hubodometer comprises: an accelerometer comprising a single accelerometer sensor for measuring force in any given direction; a microcontroller unit (MCU), wherein the MCU processes data generated by the accelerometer; a communication module, wherein the communication module wirelessly transmits any data processed by the MCU to a mobile device and wirelessly receives any data from the mobile device; and a power supply, wherein the power supply provides power to the accelerometer, the MCU, and the communication module; wherein the accelerometer, the MCU, the communication module, and the power supply are configured onto a printed circuit board (PCB) and disposed within an outer housing; (B) allowing the accelerometer to activate upon detection of vibration and generate accelerometer data; (C) allowing the MCU to collect and process the generated accelerometer data into useful data comprising revolution count, distance, velocity, and acceleration of an object; and (D) transmitting the useful data to the communication module to allow an operator wireless access to the useful data via the mobile device.
12. The method of claim 11, wherein the universal electronic hubodometer is attached to the hubcap via L-shaped legs that extend from a back of the outer housing and are screwed into the hubcap.
13. The method of claim 11, wherein the accelerometer data is collected at a frequency of about 8 times per second.
14. The method of claim 11, wherein the universal electronic hubodometer further comprises a display unit disposed on a front face of the universal electronic hubodometer.
15. The method of claim 14, wherein the data processed by the MCU may be transmitted to the display unit.
16. The method of claim 11, wherein the universal electronic hubodometer further comprises a multifunctional button disposed on a front face of the universal electronic hubodometer.
17. The method of claim 11, wherein the communication module comprises a wireless Bluetooth system.
18. The method of claim 11, wherein the single accelerometer only detects force along a single axis or direction.
19. The method of claim 11, wherein the mobile device is selected from a group consisting of a mobile phone, PDA, cell phone, smartphone, laptop, and tablet.
20. The method of claim 11, wherein the mobile device comprises an application that allows the universal electronic hubodometer to be wirelessly programmed, calibrated, or otherwise controlled.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] For a detailed description of the preferred embodiments of the invention, reference will now be made to the accompanying drawings in which:
[0012]
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF THE INVENTION
[0017]
[0018] In embodiments, hubodometer 10 may comprise various electronic components disposed within an outer housing 14. Outer housing 14 may be an enclosure manufactured from any suitable materials such as, without limitation, metals, plastics, or combinations thereof. In embodiments, outer housing 14 may be durable and sealed, and therefore capable of providing protection to the electronic components of hubodometer 10 from environmental elements such as, without limitation, dust, dirt, debris, moisture, high and low temperatures, or combinations thereof. The shape and size of outer housing 14 may be dictated by the electronic components within. In embodiments, outer housing 14 may be cylindrically shaped and of a compact size suitable for placement on hubcap 20.
[0019] In embodiments, the electronic components of hubodometer 10 may comprise an accelerometer 2 capable of generating rotation data for an object to which it may be attached (e.g., a hubcap, wheel-hub, wheel, or tire). Accelerometer 2 of hubodometer 10 may comprise a single accelerometer sensor capable of measuring the force in any given direction. For instance, single accelerometer sensor may sense a force on one axis and generate an electrical voltage signal that may be proportional to an angel of the axis to the gravity direction. In embodiments, the single accelerometer sensor may utilize a single axis, or alternatively, multiple axes. In one embodiment, the single sensor accelerometer may be a 3-axis digital accelerometer. In an example, as illustrated in
[0020] In embodiments, accelerometer 2 may be disposed at any location within hubodometer 10. For instance, accelerometer 2 may be positioned about the center of hubodometer 10, or alternatively may be offset from the center (as is illustrated in
[0021] In embodiments, referring now to
[0022] In embodiments, display unit 42 may be disposed on a front face of hubodometer 10 (illustrated in
[0023] In embodiments, a communication module 44 may be provided to wirelessly communicate any necessary data or information between hubodometer 10 and a mobile device 46 and vice versa. Mobile device 46 may be, without limitation, a mobile phone, PDA, cell phone, smartphone, laptop, tablet, or combinations thereof. In some embodiments, mobile device 46 may be equipped with an application that not only provides data and information from hubodometer 10 to a mobile device, but further allows for hubodometer 10, or alternatively multiple hubodometers 10, to be programmed, calibrated, or otherwise controlled by the mobile device. For instance, the mobile device application may allow an operator to manually input the rotating radius (i.e., tire size) that corresponds with a particular hubodometer 10. In an alternative embodiment, the mobile device application may comprise a pre-built database of tire sizes to enable direct selection of the rotating radius, rather than requiring manual input. In embodiments, communication module 44 may comprise an antenna 56 to allow for any wireless communication with a mobile device comprising a suitable receiver 48. For instance, suitable receiver 48 may be a Bluetooth or wireless receiver disposed in the cabin of a vehicle. Alternatively, suitable receiver 48 may be installed at the entrances or exits of specific areas. The wireless communication systems utilized may include, without limitation, Bluetooth systems, Wi-Fi systems, and the like. In embodiments, Bluetooth system frequency ranges between about 2.4 GHz and about 2.6 GHz.
[0024] In embodiments, the electronic components of hubodometer 10 may further comprise power supply unit 52 in order to provide power to accelerometer 2, MCU 40, display unit 42, and communication module 44. Power supply unit 52 may be any suitable battery. In embodiments, the battery may be a long-lasting lithium-ion battery of any suitable grade. Further, the battery may be rechargeable or disposable. In order to save power, communication module 44 and display unit 42 may only be activated for necessary communication. Further to save power, the scanning frequency of MCU 40 may be dropped to lower levels under certain working conditions such as, without limitation, constant speeds or stopping. Finally, a pre-setting shipping model may also save power.
[0025] During operation, accelerometer 2 of hubodometer 10 may activate upon detection of a vibration. In embodiments, the accelerometer data may be collected at a frequency of about 8 times per second. MCU 40 may compare the two sequential pieces of accelerometer data by subtracting the first piece of accelerometer data from the second piece of accelerometer data. This may result in one piece of difference data. Next, two sequential pieces of difference data may be multiplied and the results evaluated. If the results are negative, hubodometer 10 may have rotated a half circle. In this way, the accumulated rotation of hubodometer 10 may be calculated and then multiplied by the tire circumference. This may result in MCU 40 calculating total distance traveled which may be capable of being transmitted to display unit 42 and/or communication module 44.
[0026] Each of the electronic components including, accelerometer 2, MCU 40, display unit 42, multifunctional button 50, communication module 44 and power supply unit 52 communication module 44 may be configured and/or incorporated onto a printed circuit board (PCB). Utilization of the PCB allows for all the electronic components of hubodometer 10 to be securely enclosed within outer housing 14. In embodiments, the front face of outer housing 4 and the PCB may be vertical to the ground. Further, the PCB may be mounted to a back of display unit 42.
[0027] Although the present invention and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations may be made herein without departing from the spirit and scope of the invention as defined by the appended claims.