IP Library Granted Patent US 12,608,098
Granted Patent B2
US 12,608,098 · App. 18/946,864 · Granted Apr 21, 2026

Driving device and method for generating driving voltage

Inventors: Chuan-Chi Fan (Hsinchu County, TW); Jung-Kuei Hsu (Hsinchu County, TW); Yung-Fu Lin (Hsinchu County, TW); Wen-Ger Wong (Hsinchu County, TW); Chia-Chun Hsu (Hsinchu County, TW); Cheng-Chung Hsu (Hsinchu County, TW)
Assignee: ILI TECHNOLOGY CORP.
G06F3/0416H02M3/073H02M3/071
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Quick Facts
Patent No.
US 12,608,098
App. No.
18/946,864
Granted
Apr 21, 2026
Kind
B2
Abstract

A driving device and a method for generating a driving voltage are provided. The method for generating the driving voltage is applicable to a driving device of a touch panel. The method includes: generating multiple different reference voltages; providing a voltage selector to select and output each of the reference voltages in each of multiple time intervals to generate a driving voltage; and setting a time length for each of the time intervals according to whether a signal power of the driving device is greater than a set value.

Claims (32)

1 . A method for generating a driving voltage, applicable to a driving device of a touch panel, comprising:

generating a plurality of different reference voltages;

providing a voltage selector to, in each of a plurality of time intervals, select and output each of the reference voltages to generate the driving voltage; and

setting a duration of each of the time intervals according to whether a signal power of the driving device is greater than a set value,

wherein in a first phase, a voltage value of the driving voltage increases sequentially in the corresponding time intervals, and in a second phase, the voltage value of the driving voltage decreases sequentially in the corresponding time intervals.

2 . The method for generating the driving voltage according to claim 1 , wherein a rising voltage waveform of the driving voltage in the first phase is symmetrical to a falling voltage waveform of the driving voltage in the second phase.

3 . The method for generating the driving voltage according to claim 1 , wherein the step of setting the duration of each of the time intervals according to whether the signal power of the driving device is greater than the set value further comprises:

when the signal power is greater than or equal to the set value, the duration is increased by a step value; and

when the signal power is less than the set value, the duration is decreased by the step value.

4 . The method for generating the driving voltage according to claim 1 , wherein the time intervals have the same duration.

5 . The method for generating the driving voltage according to claim 1 , wherein the step of generating the different reference voltages comprises:

receiving a benchmark voltage, and performing voltage multiplication on the benchmark voltage to generate at least one adjusted voltage; and

generating the reference voltages respectively according to the benchmark voltage, the at least one adjusted voltage, and a ground voltage.

6 . The method for generating the driving voltage according to claim 1 , wherein in each of the time intervals, the voltage value of the driving voltage is less than each of the reference voltages.

7 . The method for generating the driving voltage according to claim 6 , wherein in the first phase, when the driving voltage rises to the highest voltage value of the reference voltages, and maintains for a preset duration, the voltage value of the driving voltage is kept at the highest voltage value of the reference voltages, wherein the preset duration is greater than the duration of the time interval.

8 . The method for generating the driving voltage according to claim 1 , wherein in each of the time intervals, the voltage value of the driving voltage is at least 86% of each of the reference voltages.

9 . A driving device, configured to drive a touch panel, comprising:

a reference voltage generator, receiving a benchmark voltage, and providing a plurality of different reference voltages; and

a voltage selector, coupled to the reference voltage generator, receiving the reference voltages, and in each of a plurality of time intervals, respectively selecting and outputting each of the reference voltages to generate a driving voltage,

wherein the voltage selector sets a duration of each of the time intervals according to whether a signal power of the driving device is greater than a set value, and

wherein in a first phase, the voltage value of the driving voltage increases sequentially in the corresponding time intervals, and in a second phase, the voltage value of the driving voltage decreases sequentially in the corresponding time intervals.

10 . The driving device according to claim 9 , wherein the rising voltage waveform of the driving voltage in the first phase is symmetrical to the falling voltage waveform of the driving voltage in the second phase.

11 . The driving device according to claim 9 , wherein the voltage selector comprises:

a switch circuit, receiving the reference voltages; and

a controller, coupled to and controlling the switch circuit,

wherein when the signal power is greater than or equal to the set value, the controller increases the duration of each of the time intervals by a step value, and

wherein when the signal power is less than the set value, the controller decreases the duration of each of the time intervals by a step value.

12 . The driving device according to claim 9 , wherein the time intervals have the same duration.

13 . The driving device according to claim 9 , wherein the reference voltage generator performs voltage multiplication on the benchmark voltage to generate at least one adjusted voltage, and generates the reference voltages respectively according to the benchmark voltage, the at least one adjusted voltage, and a ground voltage.

14 . The driving device according to claim 9 , wherein in each of the time intervals in the first phase, the voltage value of the driving voltage is less than each of the reference voltages.

15 . The driving device according to claim 14 , wherein in the first phase, when the voltage selector raises the driving voltage to the highest voltage value of the reference voltages, and maintains for a preset duration, the voltage value of the driving voltage is kept at the highest voltage value of the reference voltages, wherein the preset duration is greater than the duration of the time interval.

16 . The driving device according to claim 9 , wherein in each of the time intervals in the first phase, the voltage value of the driving voltage is at least 86% of each of the reference voltages.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 28, 2024
From: FAN, CHUAN-CHI; HSU, JUNG-KUEI; LIN, YUNG-FU; WONG, WEN-GER; HSU, CHIA-CHUN; HSU, CHENG-CHUNG
To: ILI TECHNOLOGY CORP.
Reel/Frame 069428/0713 →
Priority Claims (1)
TW 113101175 · Jan 11, 2024 · national
Continuity (1)
Related Publication 20250231635A1 · Jul 17, 2025
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