WIRELESS TIRE PRESSURE MONITORING SYSTEM AND METHOD FOR ALLOCATING POSITION OF WIRELESS TIRE PRESSURE SENSOR
20230234405 · 2023-07-27
Inventors
Cpc classification
G01L17/005
PHYSICS
B60C23/0416
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A wireless tire pressure monitoring system and a method for operating the tire pressure monitoring system to locate each wireless tire pressure sensor. The wireless host is connected to the wireless receiver. Each wireless tire pressure sensor sends info to the wireless host and the wireless receiver. The wireless host and the wireless receiver allocate the positions of the wheels where the wireless tire pressure sensors are installed by the info received from wireless tire pressure sensors. The wireless receiver analyses and calculates the received info, and forwards the result to the wireless host to process a cross-comparison to precise allocate the positions of the wireless tire pressure sensors. The method does not need to replace or add new wireless tire pressure sensors, and does not need to obtain new serial numbers. The positions of the wireless tire pressure sensor are precisely allocated by the method of the present invention.
Claims
1. A wireless tire pressure monitoring system comprising: a wireless tire pressure sensor adapted to be installed to a wheel rim of a vehicle, the wireless tire pressure sensor including a sensing module and an emitting module; a wireless host adapted to be installed to the vehicle, the wireless host including a control module and a first receiving/emitting module, the control module including a function of allocation by signals received, the first receiving/emitting module receiving signals from the wireless tire pressure sensor; a wireless receiver connected to the wireless host and the wireless tire pressure sensor by a wireless system, the wireless receiver located at a position different from a position of the wireless host, the wireless receiver including an operation module and a second receiving/emitting module, the second receiving/emitting module receiving and emitting signals; wherein the wireless tire pressure sensor sends signals to the first receiving/emitting module and the second receiving/emitting module by the emitting module, the first receiving/emitting module and the second receiving/emitting module detect strength of the signals emitted from the wireless tire pressure sensor, the first receiving/emitting module and the second receiving/emitting module send the signals received from the wireless tire pressure sensor to the control module and the operation module to be analyzed, the operation module forwards a result of the analyzed signals to the first receiving/emitting module and the control module in sequence by the second receiving/emitting module.
2. The wireless tire pressure monitoring system as claimed in claim 1, wherein the second receiving/emitting module detects a phase angle of the signals from the emitting module and the second receiving/emitting module, the control module calculates a position of the wireless tire pressure sensor by the phase angle.
3. The wireless tire pressure monitoring system as claimed in claim 1 further comprising a monitor which displays the phase angle that the control module calculates, the monitor adapted to assist a user to operate a positioning device of the wireless receiver.
4. The wireless tire pressure monitoring system as claimed in claim 1, wherein the wireless system is one of or more than one of a RFID, GRPS, Bluetooth, Wi-Fi, IrDA, UWB, Zigbee and NFC.
5. A method for allocating position of a wireless tire pressure sensor of a wireless tire pressure monitoring system, comprising: a connection step: a wireless receiver connected to a wireless host by a wireless system, the wireless receiver then searching and connecting each wireless tire pressure sensor; a setting step: operating the wireless receiver to set a position of the wireless receiver, and to assist allocation to each wireless tire pressure sensor; a transmission step: each wireless tire pressure sensor sending a tire pressure info to the wireless host and the wireless receiver; a calculating and forwarding step: the wireless host and the wireless receiver receiving the tire pressure info from each wireless tire pressure sensor, and calculating a position of each wireless tire pressure sensor by the tire pressure info that each wireless tire pressure sensor sends, the wireless host and the wireless receiver allocating the position of each wireless tire pressure sensor by one of or more than one of a signal strength and a phase angle of the tire pressure info, the wireless receiver forwarding a result of calculation made by the wireless receiver to the wireless host, and a completion step: the wireless host cross-comparing a result of calculation of the position of each wireless tire pressure sensor made by the wireless host, and the result of calculation of the position of each wireless tire pressure sensor made by the wireless receiver to allocate each wireless tire pressure sensor.
6. The method as claimed in claim 5 further comprising a confirming step which confirms a result of the completion step, the wireless host confirms a result of the confirming step and further applications.
7. The method as claimed in claim 5, wherein the wireless system is one of or more than one of a RFID, GRPS, Bluetooth, Wi-Fi, IrDA, UWB, Zigbee and NFC.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0022] Referring to
[0023] A wireless host 2 is installed to the vehicle, and includes a control module 22 and a first receiving/emitting module 21. The control module 22 includes the function of allocation by signals received. The first receiving/emitting module 21 receives signals from the wireless tire pressure sensor 1.
[0024] A wireless receiver 3 is connected to the wireless host 2 and the wireless tire pressure sensor 1 by a wireless system. The wireless receiver 3 is located at a position different from a position of the wireless host 2. The wireless receiver 3 includes an operation module 31 and a second receiving/emitting module 32. The second receiving/emitting module 32 receives and emit signals.
[0025] The wireless tire pressure sensor 1 sends signals to the first receiving/emitting module 21 and the second receiving/emitting module 32 by the emitting module 12. The first receiving/emitting module 21 and the second receiving/emitting module 32 detect strength of the signals emitted from the wireless tire pressure sensor 1. The first receiving/emitting module 21 and the second receiving/emitting module 32 send the signals received from the wireless tire pressure sensor 1 to the control module 22 and the operation module 31 to be analyzed. The operation module 31 forwards the result of the analyzed signals to the first receiving/emitting module 21 and the control module 22 in sequence by the second receiving/emitting module 32.
[0026] As shown in
[0027] As shown in
[0028] As shown in
[0029] Furthermore, the system of the present invention includes a monitor which displays the info that the control module 22 calculates, and assists the user to operate a positioning device of the wireless receiver 3.
[0030] As shown in
[0031] As shown in
[0032] The setting step S11 is that a user operates the wireless receiver 3 to set a position of the wireless receiver 3 itself, and to assist allocation to each wireless tire pressure sensor 1.
[0033] The transmission step S12 is that each wireless tire pressure sensor 1 sends the tire pressure info to the wireless host 2 and the wireless receiver 3.
[0034] The calculating and forwarding step S13 is that the wireless host 2 and the wireless receiver 3 receive the tire pressure info from each wireless tire pressure sensor 1, and calculate the position of each wireless tire pressure sensor 1 by the tire pressure info that each wireless tire pressure sensor 1 sends. The wireless host 2 and the wireless receiver 3 allocate the position of each wireless tire pressure sensor 1 by one of or more than one of the signal strength and the phase angle of the tire pressure info. The wireless receiver 3 forwards the result of calculation made by the wireless receiver 3 to the wireless host 2.
[0035] The completion step is that the wireless host 2 cross-compares the result of calculation of the position of each wireless tire pressure sensor 1 made by the wireless host 2, and the result of calculation of the position of each wireless tire pressure sensor 1 made by the wireless receiver 3 to precisely allocate each wireless tire pressure sensor 1.
[0036] The method may include a confirming step S15 which confirms the result of the completion step S14. The wireless host 2 confirms a result of the confirming step S14 and further applications.
[0037] The wireless system mentioned in the method is one of or more than one of a RFID, GRPS, Bluetooth, Wi-Fi, IrDA, UWB, Zigbee and NFC.
[0038] The present invention further comprises the function of transferring tire info and verifies the tire info. The sensing module 11 of each wireless tire pressure sensor 1 detects the tire info, and the tire info is sent to the wireless host 2 and the wireless receiver 3 by the emitting module 12. The wireless receiver 3 then actively or passively sends the tire info to the wireless host 2. By the multiple verifications, the info that the wireless host 2 can be kept completely and does not loss.
[0039] While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.