Buzzer driving system and method thereof
By using an analog signal to drive the buzzer's drive system, and utilizing a boost unit and a drive unit to improve the buzzer's audio quality, the problem of monotonous buzzer sound effects is solved, and sound quality is improved while audio details are preserved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2026-03-31
AI Technical Summary
Existing buzzers are mainly driven by digital signals, resulting in a monotonous sound effect that is difficult to compare with the sound quality of loudspeakers. Furthermore, current technology cannot improve the audio quality of buzzers using analog signals.
The driving system for the buzzer, which uses analog signals, includes a boost unit and a driving unit. It outputs a driving voltage through analog audio signals and uses gain control circuits and amplification circuits to improve the audio signal quality.
It achieves buzzer sound quality comparable to loudspeakers, capable of displaying sound details in audio signals, while retaining the advantages of buzzers such as high volume, low cost, and durability.
Smart Images

Figure CN121768342A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a drive system and method for driving a buzzer, and more particularly to a drive system and method that can drive a buzzer to operate using analog signals. Background Technology
[0002] Buzzers are widely used as sound-generating devices in products such as alarms, multimedia devices, automotive electronic equipment, and toys. They can be mainly divided into piezoelectric and electromagnetic types. When a buzzer is powered on, the internal metal plate vibrates in the resonant cavity to produce sound.
[0003] Current buzzers are mainly driven by digital signals, so most buzzers can only produce a single tone, and sound details are easily filtered out by the buzzer, resulting in poor output sound quality that is difficult to compare with the output sound quality of a speaker. However, compared with a speaker, buzzers still have irreplaceable advantages such as small size, large volume, low cost, and resistance to damage. Therefore, how to solve the existing problems of buzzers is one of the important issues that relevant manufacturers want to address. Summary of the Invention
[0004] In view of this, the purpose of the present invention is to provide a buzzer driving system and method that can drive a buzzer to operate by analog signals, so as to improve the sound quality of the buzzer and enable the buzzer to display the sound details in the audio signal.
[0005] To achieve the aforementioned objective, the buzzer driving system of the present invention is electrically connected to a buzzer. The buzzer driving system includes a driving unit and a boost unit. The driving unit receives an analog audio signal and outputs a driving voltage to the buzzer according to the analog audio signal. The boost unit is electrically connected to the driving unit and boosts an input voltage to generate an operating voltage to the driving unit.
[0006] Based on the purpose of this invention, this invention also provides a method for driving a buzzer, comprising: boosting an input voltage to generate an operating voltage; receiving an analog audio signal; and outputting a driving voltage according to the analog audio signal.
[0007] Compared to existing technologies that drive buzzers using pulse width modulation signals, the buzzer driving system and method of this invention generate the driving voltage required by the buzzer using analog signals. This allows the buzzer to no longer be limited to responding to digital signals and emitting a single tone, but to display sound quality and sound details comparable to ordinary loudspeakers through analog signals, thus ensuring the audio quality emitted by the buzzer. Attached Figure Description
[0008] Figure 1This is a block diagram illustrating an embodiment of the buzzer driving system of the present invention.
[0009] Figure 2 This is another block diagram of an embodiment of the buzzer driving system of the present invention.
[0010] Figure 3 This is another block diagram of an embodiment of the buzzer driving system of the present invention.
[0011] Figure 4 This is a flowchart of the driving method for the buzzer of the present invention.
[0012] 1. Buzzer drive system; 2. Buzzer; 10. Boost unit; 20. Drive unit; 21. Gain control circuit; 211. Differential amplifier; 212. Amplifier; 22. First stage amplifier circuit; 23. Second stage amplifier circuit; ref standard voltage; Rf feedback resistor; Rin input resistor; S10~S30 steps. Detailed Implementation
[0013] The main objective of this invention is to provide a driving system and method that can drive a buzzer 2 to operate using analog signals, so that the operation of the buzzer 2 is not limited by analog or digital signals, and can benefit from the characteristics of analog signals, so that the sound emitted by the buzzer 2 is no longer just a single tone, but has more sound details.
[0014] The following detailed description of possible embodiments of the present invention is provided with reference to the accompanying drawings. However, it should be noted that the following implementation details are not intended to limit the scope of the claims made by the present invention, but are merely for the convenience of those skilled in the art to understand.
[0015] Please refer to Figure 1 As shown, the buzzer drive system 1 of the present invention is electrically connected to a buzzer 2 and includes a boost unit 10 and a drive unit 20. The buzzer drive system 1 is a system independent of the buzzer 2 and is set separately from the buzzer 2. Therefore, it can be directly used on the existing buzzer 2 without adjusting the architecture of the buzzer 2.
[0016] The boost unit 10 can be electrically connected to an external input power source and receive an input voltage provided by that power source. The boost unit 10 boosts the input voltage to generate an operating voltage and outputs the operating voltage to the drive unit 20. The voltage value of the operating voltage output by the boost unit 10 can be preset to a certain value according to the operating requirements of the drive unit 20 and the buzzer 2, while the voltage value of the input voltage may fluctuate depending on the condition of the input power source.
[0017] For example, the operating voltage can be 18V by default, and the input voltage can fall within the range of 2V to 5V. Regardless of how the input voltage fluctuates, the boost unit 10 will boost the input voltage to the default 18V and output it to the drive unit 20 to ensure the stability of the operation of the drive unit 20 and to prevent it from being affected by changes in the input voltage.
[0018] The drive unit 20 is electrically connected to the boost unit 10 and the buzzer 2. The drive unit 20 receives an analog audio signal corresponding to the buzzer 2 and outputs a drive voltage to the buzzer 2 according to the analog audio signal, so that the buzzer 2 emits a sound according to the drive voltage.
[0019] The drive unit 20 is powered by the operating voltage provided by the boost unit 10 to maintain operation. The boost unit 10 raises the voltage level of the output stage of the drive unit 20 by the operating voltage, thereby increasing the voltage value of the drive voltage generated by the drive unit 20 and correspondingly enhancing the volume emitted by the buzzer 2 when driven by the drive voltage.
[0020] Please refer to Figure 2 and Figure 3 As shown, the driving unit 20 includes a gain control circuit 21, a first-stage amplifier circuit 22, and a second-stage amplifier circuit 23. The gain control circuit 21 amplifies the analog audio signal according to a certain amplification factor to generate a single-ended signal, and the driving unit 20 outputs the driving voltage to the buzzer 2 according to the single-ended signal. The driving unit 20 can set the amplification factor of the gain control circuit 21 according to a boost factor of the boost unit 10 to boost the input voltage to the operating voltage. In other words, the amplification factor corresponds to the boost factor.
[0021] The first-stage amplifier circuit 22 has a first input terminal, a second input terminal, and an output terminal. The first input terminal of the first-stage amplifier circuit 22 is electrically connected to the gain control circuit 21 to receive the single-ended signal. The second input terminal of the first-stage amplifier circuit 22 is electrically connected to a standard voltage (ref). The output terminal of the first-stage amplifier circuit 22 is electrically connected to the positive terminal of the buzzer 2. After amplifying the single-ended signal, the first-stage amplifier circuit 22 outputs a first voltage through its output terminal.
[0022] The second-stage amplifier circuit 23 has a first input terminal, a second input terminal, and an output terminal. The first input terminal of the second-stage amplifier circuit 23 is electrically connected to the output terminal of the first-stage amplifier circuit 22 to receive the first voltage. The second input terminal of the second-stage amplifier circuit 23 is electrically connected to the standard voltage ref, and the output terminal of the second-stage amplifier circuit 23 is electrically connected to the negative terminal of the buzzer 2. After amplifying the first voltage, the second-stage amplifier circuit 23 outputs a second voltage through its output terminal.
[0023] The driving voltage corresponds to the difference between the first voltage and the second voltage. The driving unit 20 outputs the driving voltage to the buzzer 2 through the first stage amplifier circuit 22 and the second stage amplifier circuit 23 to drive the buzzer 2 to emit a sound effect corresponding to the driving voltage.
[0024] In one embodiment, the analog audio signal may include a human voice audio signal, a speech audio signal, or a music audio signal. In another embodiment, the analog audio signal may include an audio signal generated after processing the human voice audio signal, speech audio signal, or music audio signal into a specific frequency band, wherein the audio signal processing may include, but is not limited to, attenuating or enhancing the intensity of the audio signal in the specific frequency band. In another embodiment, the analog audio signal may include an audio signal generated after low-pass filtering a digital signal (e.g., a PWM signal).
[0025] exist Figure 2 In this embodiment, the gain control circuit 21 of the driving unit 20 is a differential amplifier 211. The differential amplifier 211 has a pair of differential input terminals and an output terminal. The pair of differential input terminals are used to receive the analog audio signal, and the output terminal of the differential amplifier 211 is electrically connected to the first input terminal of the first-stage amplifier circuit 22. The differential amplifier 211 amplifies the analog audio signal according to the amplification factor to generate the single-ended signal, and outputs the single-ended signal to the first input terminal of the first-stage amplifier circuit 22 through its output terminal. The analog audio signal can be a differential signal. The differential amplifier 211 receives the positive signal from the analog audio signal through one positive input terminal of the pair of differential input terminals and receives the negative signal from the analog audio signal through one negative input terminal of the pair of differential input terminals.
[0026] In addition to amplifying the voltage of the analog audio signal through the differential amplifier 211, the present invention can also suppress the common-mode noise of the analog audio signal through the differential amplifier 211, thereby improving the quality of the single-ended signal.
[0027] exist Figure 3In one embodiment, the gain control circuit 21 of the driving unit 20 includes an amplifier 212, an input resistor Rin, and a feedback resistor Rf. A negative input terminal of the amplifier 212 is connected in series with the input resistor Rin, and the feedback resistor Rf is connected in series between the negative input terminal and an output terminal of the amplifier 212. A positive input terminal of the amplifier 212 receives the standard voltage ref, and the output terminal of the amplifier 212 is electrically connected to the first input terminal of the first-stage amplifier circuit 22. The amplification factor of the gain control circuit 21 corresponds to a resistance ratio of the feedback resistor Rf to the input resistor Rin. The driving unit 20 can control the amplification factor by adjusting the resistance values of the feedback resistor Rf and the input resistor Rin, wherein the input resistor Rin and the feedback resistor Rf can each be a variable resistor.
[0028] The buzzer 2 can be a piezoelectric buzzer 2, the main structure of which includes a piezoelectric component, a metal sheet and a housing. The piezoelectric component can be made of piezoelectric ceramic material. When subjected to voltage, the piezoelectric component deforms due to the piezoelectric effect, which drives the metal sheet to vibrate and produce sound. In addition to covering the piezoelectric component and the metal sheet, the housing also constitutes the resonant cavity of the piezoelectric component and the metal sheet.
[0029] Compared to ordinary speakers, the buzzer 2 has the advantages of low power consumption, loud sound, small size, low cost and not easy to damage. Moreover, the structure and material characteristics of the buzzer 2 make it highly durable and stable even in extreme environments such as high temperature or humidity. Compared to speakers that are easily damaged and have a high unit price, the buzzer 2 has irreplaceable advantages.
[0030] Please refer to Figure 4 As shown, the buzzer driving method of the present invention is applied to the buzzer 2 and can be executed by the buzzer driving system 1. The buzzer driving method includes the following steps:
[0031] S10: Boost an input voltage to generate an operating voltage. Step S10 can be performed by the boost unit 10, and the input voltage is boosted to the operating voltage at a boost ratio.
[0032] S20: Receive an analog audio signal. Step S20 can be executed by the drive unit 20, and the analog audio signal can be a differential signal.
[0033] S30: Output a drive voltage to the buzzer 2 according to the analog audio signal. Step S30 can be executed by the drive unit 20.
[0034] In a preferred embodiment, step S30 sets an amplification factor based on the boost factor, amplifies the analog audio signal using the amplification factor to generate a single-ended signal, and outputs the drive voltage based on the single-ended signal. The drive voltage corresponds to the difference between a first amplified voltage and a second amplified voltage, the first amplified voltage being generated by signal amplification of the single-ended signal, and the second amplified voltage being generated by signal amplification of the first amplified voltage.
[0035] In summary, the buzzer driving system 1 and method of the present invention can process analog audio signals to generate the driving voltage required for the buzzer 2. Compared with the existing method of driving the buzzer 2 by pulse width modulation signals, the present invention not only allows the buzzer 2 to no longer be limited to the application of digital signals and only emit a single tone, but also allows the original audio sound details to be preserved through analog signals, so that the buzzer 2 can exhibit sound quality comparable to ordinary loudspeakers, while retaining the advantages of the buzzer 2 such as large volume, low component cost and high durability.
[0036] This invention is disclosed herein only by preferred embodiments. However, it should be understood by anyone skilled in the art that the above embodiments are merely for describing the invention and are not intended to limit the scope of the claims. Any variations or substitutions that are equivalent or equivalent to the above embodiments should be interpreted as being covered within the spirit or scope of this invention. Therefore, the scope of protection of this invention should be based on the scope defined by the claims.
Claims
1. A buzzer driving system, electrically connected to a buzzer, characterized in that, include: A driving unit receives an analog audio signal and outputs a driving voltage to the buzzer according to the analog audio signal; A boost unit, electrically connected to the drive unit, boosts an input voltage to generate an operating voltage to the drive unit.
2. The buzzer driving system as described in claim 1, characterized in that, The driving unit includes a gain control circuit, and the gain control circuit amplifies the analog audio signal according to a magnification factor to generate a single-ended signal. The driving unit outputs the driving voltage to the buzzer according to the single-ended signal.
3. The buzzer driving system as described in claim 2, characterized in that, The analog audio signal is a differential signal; The gain control circuit includes a differential amplifier with a pair of differential input terminals, which receive the analog audio signal and output the single-ended signal through an output terminal.
4. The buzzer driving system as described in claim 2, characterized in that, The drive unit sets the amplification factor according to a boost factor of the input voltage to the operating voltage.
5. The buzzer driving system as described in claim 4, characterized in that, The gain control circuit includes an amplifier, an input resistor, and a feedback resistor. The negative input terminal of the amplifier is connected in series with the input resistor, and the feedback resistor is connected in series between the negative input terminal of the amplifier and an output terminal of the amplifier. The drive unit controls the amplification factor by adjusting the resistance ratio of the input resistor to the feedback resistor according to the boost ratio.
6. The buzzer driving system as described in claim 2, characterized in that, The driving unit includes: A first-stage amplifier circuit, electrically connected to the gain control circuit, outputs a first amplified voltage at an output terminal based on the single-ended signal received at a negative input terminal and a reference voltage received at a positive input terminal; and A second-stage amplifier circuit is electrically connected to the output terminal of the first-stage amplifier circuit, and outputs a second-stage amplifier voltage at an output terminal based on the first amplified voltage received at a negative input terminal and the reference voltage received at a positive input terminal. The driving voltage corresponds to the difference between the first amplified voltage and the second amplified voltage.
7. A method for driving a buzzer, characterized in that, include: Boost an input voltage to generate an operating voltage; Receive an analog audio signal; A driving voltage is output based on the analog audio signal.
8. The method for driving a buzzer as described in claim 7, characterized in that, A magnification factor is set according to a boost factor that boosts the input voltage to the operating voltage; The analog audio signal is amplified according to the amplification factor to generate a single-ended signal, and the driving voltage is output according to the single-ended signal.
9. The method for driving a buzzer as described in claim 8, characterized in that, The signal amplifies the single-ended signal to generate a first amplified voltage, and the signal amplifies the first amplified voltage to generate a second amplified voltage, the driving voltage corresponding to the difference between the first amplified voltage and the second amplified voltage.
10. The method for driving a buzzer as described in claim 7, characterized in that, The analog audio signal is a differential signal.