Embedded on-board diagnostic (OBD) device for a vehicle

US10049510B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10049510-B2
Application numberUS-201615265726-A
CountryUS
Kind codeB2
Filing dateSep 14, 2016
Priority dateSep 14, 2015
Publication dateAug 14, 2018
Grant dateAug 14, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Embodiments described herein provide various examples of a low cost, low power, fully automated, unobtrusive, and vehicle-independent radio frequency (RF) communication device to be plugged into a standard on-board diagnostic (OBD) port inside a vehicle to access OBD diagnostic data. According to one aspect, an OBD device for a vehicle is disclosed. This OBD device includes: an OBD adapter configured to be plugged into an OBD port of a vehicle and a first RFID module electrically coupled to the OBD adapter. The first RFID module is further configured to receive OBD data of a vehicle from an associated OBD port via the OBD adapter and communicate at least a portion of the received OBD data to a first RFID reader when the first RFID module is queried by the first RFID reader.

First claim

Opening claim text (preview).

What is claimed is: 1. An on-board diagnostic (OBD) device for a vehicle, comprising: an OBD adapter configured to be plugged into an OBD port of a vehicle; a first radio frequency identification (RFID) module electrically coupled to the OBD adapter and configured to: receive OBD data of a vehicle from an associated OBD port via the OBD adapter; and communicate at least a portion of the received OBD data to a first RFID reader when the first RFID module is queried by the first RFID reader; and a second RFID module electrically coupled to the OBD adapter and configured to: receive OBD data of a vehicle from an associated OBD port via the OBD adapter; and communicate at least a portion of the received OBD data to a second RFID reader when the second RFID module is queried by the second RFID reader. 2. The OBD device of claim 1 , wherein the first RFID module is an ultra-high frequency (UHF) RFID module configured to communicate with the first RFID reader using an UHF frequency band. 3. The OBD device of claim 1 , wherein the first RFID reader is installed at a first location by the roadside, and wherein the first RFID module is configured to communicate with the first RFID reader when a vehicle carrying the OBD device passes through the first location. 4. The OBD device of claim 1 , wherein the first RFID reader is installed at a second location in a gantry above the ground, and wherein the first RFID module is configured to communicate with the first RFID reader when a vehicle carrying the OBD device passes under the second location. 5. The OBD device of claim 1 , wherein the first RFID reader is a handheld RFID reader. 6. The OBD device of claim 1 , wherein the OBD adapter is configured as a pass-through connector such that when the OBD adapter is plugged into an OBD port of a vehicle, the OBD adapter allows another ODB device to access the OBD port without obstruction. 7. The OBD device of claim 6 , wherein the pass-through connector includes a pass-through port that is substantially identical to the OBD port, so that when the OBD adapter is plugged into the OBD port, another ODB device can continue to access the OBD port by plugging into the pass-through port. 8. The OBD device of claim 1 , wherein the first RFID module is configured as a passive RFID module which functions without requiring power from either a vehicle or the OBD device, whereby allowing the first RFID module to communicate with the first RFID reader when the OBD device is switched off or non-functional. 9. The OBD device of claim 1 , wherein the second RFID module is a high frequency (HF) RFID module configured to communicate with the second RFID reader using a HF frequency band. 10. The OBD device of claim 1 , wherein the second RFID module is configured to communicate with a near-field communication (NFC)-enabled device by providing the at least a portion of the received OBD data to the NFC-enabled device. 11. The OBD device of claim 1 , wherein the second RFID module is one of a Bluetooth™ module, a Wi-Fi module, and an NFC module. 12. The OBD device of claim 1 , wherein the second RFID module is configured as a passive RFID module which functions without requiring power from either a vehicle or the OBD device, whereby allowing the second RFID module to communicate with the second RFID reader when the OBD device is switched off or non-functional. 13. The OBD device of claim 1 , wherein the OBD device further comprises a microprocessor coupled between the OBD adapter and the first RFID module and configured to process the received OBD data via the OBD adapter. 14. The OBD device of claim 13 , wherein the microprocessor is coupled to the first RFID module through an I 2 C control bus. 15. The OBD device of claim 1 , wherein the first RFID modules is further configured to communicate with an RFID-enabled license plate installed on the vehicle. 16. The OBD device of claim 1 , wherein the receive OBD data include one or more of: vehicle's VIN number, mileage, fuel level, tire pressure monitoring system (TPMS) threshold, and a set of diagnostic trouble codes. 17. The OBD device of claim 1 , wherein the OBD device is configured to operate without requiring a network connection, a data service, or a pairing to another networked device. 18. A method for providing OBD data of a vehicle to an RFID reader, comprising: receiving a first query for OBD data from a first RFID reader and a second query for OBD data from a second RFID reader; receiving, by an UHF RFID module and a HF RFID module electrically coupled to an OBD port of the vehicle, current OBD data of the vehicle; transmitting, from the UHF RFID module, the current OBD data to the first RFID reader in response to the first query; and transmitting, from the HF RFID module, the current OBD data to the second RFID reader in response to the second query. 19. The method claim 18 , wherein the RFID reader is installed at a first location by the roadside, and wherein the UHF RFID module transmits the current OBD data to the RFID reader when the vehicle passes through the first location. 20. The method claim 18 , wherein the RFID reader is installed at a second location in a gantry above the ground, and wherein the UHF RFID module transmits the current OBD data to the RFID reader when the vehicle passes under the second location. 21. A method for providing OBD data of a vehicle to an RFID reader, comprising: querying, from an OBD port of the vehicle, OBD data of the vehicle using an OBD adapter of an OBD device coupled with the OBD port; storing at least a portion of the received OBD data into a memory of the OBD device; and receiving a first query from a first RFID reader for the OBD data of the vehicle; transmitting at least a first portion of the stored OBD data to the first RFID reader using an a first RFID module of the OBD device; receiving a second query from a second RFID reader for the ODB data of the vehicle; and transmitting at least a second portion of the stored ODB data to the second RFID reader using a second RFID module of the OBD device. 22. The method claim 21 , wherein querying the OBD data and storing the at least a portion of the received OBD data into the memory of the OBD device are performed periodically at a predetermined time interval.

Assignees

Inventors

Classifications

  • the interrogation device being adapted for miscellaneous applications · CPC title

  • communicating information to a remotely located station (transmission systems for measured values G08C) · CPC title

  • G07C5/0808Primary

    Diagnosing performance data (testing of vehicles G01M17/00; testing of electrical installation on vehicles G01R31/005) · CPC title

  • using a vehicle scan tool · CPC title

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What does patent US10049510B2 cover?
Embodiments described herein provide various examples of a low cost, low power, fully automated, unobtrusive, and vehicle-independent radio frequency (RF) communication device to be plugged into a standard on-board diagnostic (OBD) port inside a vehicle to access OBD diagnostic data. According to one aspect, an OBD device for a vehicle is disclosed. This OBD device includes: an OBD adapter conf…
Who is the assignee on this patent?
Neology Inc
What technology area does this patent fall under?
Primary CPC classification G07C5/0808. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Aug 14 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).