HYBRID METAL-OXIDE SEMICONDUCTOR FIELD-EFFECT TRANSISTOR WITH VARIABLE GATE IMPEDANCE AND IMPLEMENTATION METHOD THEREOF
20230039285 · 2023-02-09
Inventors
- Wen Nan HUANG (Zhubei City, TW)
- Ching Kuo CHEN (Zhubei City, TW)
- Shiu Hui LEE (Zhubei City, TW)
- Tung Ming LAI (Zhubei City, TW)
- Cho Lan PENG (Zhubei City, TW)
- Chuo Chien TSAO (Zhubei City, TW)
Cpc classification
International classification
Abstract
A hybrid metal-oxide semiconductor field-effect transistor with variable gate impedance and an implementation method thereof, wherein the hybrid metal-oxide semiconductor field-effect transistor has the characteristic of changing the on-resistance according to different drive voltages. By use of a feedback loop and a variable gate drive voltage generator which can vary the generated gate drive voltage based on different loads, the present disclosure can still adjust the gate drive voltage under different load conditions without requiring a plurality of metal-oxide semiconductor field-effect transistors in series/parallel to achieve the lowest power loss.
Claims
1. A hybrid metal-oxide semiconductor field-effect transistor circuit with variable gate impedance for modulating a gate drive voltage according to a load so as to reduce power loss, comprising: a hybrid metal-oxide semiconductor field-effect transistor having a gate, and an on-resistance changeable with the gate drive voltage, wherein the hybrid metal-oxide semiconductor field-effect transistor is composed of a super junction metal-oxide semiconductor field-effect transistor and an insulated gate bipolar transistor; a first feedback loop electrically connected to the gate of the hybrid metal-oxide semiconductor field-effect transistor and a variable gate drive voltage generator, such that a first electrical signal generated by the hybrid metal-oxide semiconductor field-effect transistor due to the load is transmitted to the variable gate drive voltage generator; wherein the variable gate drive voltage generator uses the first electrical signal as a control signal with which the gate drive voltage is generated.
2. The hybrid metal-oxide semiconductor field-effect transistor circuit with variable gate impedance as claimed in claim 1, wherein a variable passive component assembly is electrically connected to the gate of the hybrid metal-oxide semiconductor field-effect transistor and the variable gate drive voltage generator, respectively, and wherein the variable passive component assembly cooperates with the variable gate drive voltage generator based on the first electrical signal to control and compensate the gate drive voltage or to enhance the waveform of the gate drive voltage.
3. The hybrid metal-oxide semiconductor field-effect transistor circuit with variable gate impedance as claimed in claim 2, wherein a second feedback loop is electrically connected to the gate of the hybrid metal-oxide semiconductor field-effect transistor and the variable gate drive voltage generator, respectively, such that a second electrical signal generated by the variable passive component assembly is transmitted to the variable gate drive voltage generator through the second feedback loop, and wherein the gate drive voltage generated by the variable gate drive voltage generator is controlled by the second electrical signal.
4. (canceled)
5. The hybrid metal-oxide semiconductor field-effect transistor circuit with variable gate impedance as claimed in claim 3, wherein the first electrical signal and the second electrical signal are one of IG, VGS, IDS, VDS, or a combination thereof.
6. An implementation method of using a hybrid metal-oxide semiconductor field-effect transistor circuit with variable gate impedance, wherein a gate drive voltage is modulated according to a load for reducing power loss, comprising the following steps: receiving a first electrical signal, wherein the hybrid metal-oxide semiconductor field-effect transistor generates a first electrical signal due to the load, and wherein the first electrical signal is transmitted through a first feedback loop to a variable gate drive voltage generator, wherein the hybrid metal-oxide semiconductor field-effect transistor is composed of a super junction metal-oxide semiconductor field-effect transistor and an insulated gate bipolar transistor; generating the gate drive voltage, wherein the variable gate drive voltage generator uses the first electrical signal as a control signal for modulating a drive voltage and then generates the gate drive voltage; and driving the hybrid metal-oxide semiconductor field-effect transistor, wherein the gate drive voltage is transmitted by the variable gate drive voltage generator to the hybrid metal-oxide semiconductor field-effect transistor for driving the hybrid metal-oxide semiconductor field-effect transistor.
7. The implementation method as claimed in claim 6, wherein the step of generating the drive voltage includes a sub-step of sensing a current through a variable passive component assembly for generating a second electrical signal, and wherein the second electrical signal is transmitted by a second feedback loop to the variable gate drive voltage generator so as to modulate the gate drive voltage generated by the variable gate drive voltage generator.
8. The implementation method as claimed in claim 7, wherein the step of driving the hybrid metal-oxide semiconductor field-effect transistor includes a sub-step of compensating the gate drive voltage or enhancing a waveform thereof through the variable passive component assembly.
9. (canceled)
10. The implementation method as claimed in claim 7, wherein the first electrical signal and the second electrical signal are one of IG, VGS, IDS, VDS, or a combination thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
[0007]
[0008]
[0009]
[0010]
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0013] Referring to
[0014] The hybrid metal-oxide semiconductor field-effect transistor (Hybrid MOSFET) 11 includes a gate U, a source S, and a drain D. The hybrid metal-oxide semiconductor field-effect transistor 11 can, for example, achieve the effects of both super junction metal-oxide semiconductor field-effect transistor (SJ MOSFET, with high-speed switching and low on-resistance at low current) and insulated gate bipolar transistor (IGBT, with high voltage withstand and low on-resistance at high current). In this way, it performs well in both heavy load (with high current) and light load (with low current). In addition, the on-resistance (Rdson) of the hybrid metal-oxide semiconductor field-effect transistor 11 can be changed with a gate drive voltage (V.sub.GS). For example, when the gate drive voltage is relatively larger, the on-resistance is smaller; on the contrary, when the gate drive voltage is relatively smaller, the on-resistance is larger.
[0015] One end of the first feedback loop 12 is electrically connected to the drain D of the hybrid metal-oxide semiconductor field-effect transistor 11 while the other end of the first feedback loop 12 is electrically connected to the variable gate drive voltage generator 13. The first feedback loop 12 can transmit a first electrical signal, such as the drain current I.sub.D, generated by the hybrid metal-oxide semiconductor field-effect transistor 11 due to the load, to the variable gate drive voltage generator 13.
[0016] The variable gate drive voltage generator 13 is respectively electrically connected to the gate G of the hybrid metal-oxide semiconductor field-effect transistor 11 and the first feedback loop 12 for applying a gate drive voltage to the gate G of the hybrid metal-oxide semiconductor field-effect transistor 11 to control the conduction or disconnection of the hybrid metal-oxide semiconductor field-effect transistor 11. In addition, the variable gate drive voltage generator 13 uses a first electrical signal E1 generated by the load as a control signal and further generates a corresponding gate drive voltage based thereon. In this way, different gate driving voltages can be applied to the hybrid metal-oxide semiconductor field-effect transistor 11 under different load conditions.
[0017] Referring to
[0018] Referring to
[0019] Step S1 of receiving a first electrical signal, wherein, when the first electrical signal E1 generated by the load passes through the hybrid metal-oxide semiconductor field-effect transistor 11, the first feedback loop 12 transmits the first electrical signal E1 to the variable gate drive voltage generator 13. Meanwhile, the variable gate driving voltage generator 13 can determine the load size through the first electrical signal E1.
[0020] Step S2 of generating a drive voltage, wherein the variable gate driving voltage generator 13 uses a first electrical signal E1 as a control signal and performs modulation based on the control signal to generate a gate drive voltage V.
[0021] Step S3 of driving, wherein the variable gate drive voltage generator 13 transmits the gate drive voltage V to the hybrid metal-oxide semiconductor field-effect transistor 11, thereby driving it in an ON state. Different gate drive voltages V generate relatively different on-resistance, thereby effectively reducing the power loss according to different load conditions.
[0022] Optionally, the variable gate drive voltage generator 13 has at least one threshold, so that the gate drive voltage V can be adjusted according to different loads (ie, the first electrical signal E1) to achieve the minimum power loss. Regarding the influence of the gate drive voltage V generated under different load conditions on the power loss of the hybrid metal-oxide semiconductor field-effect transistor 11, the following two conditions are described for heavy load (with large current) and light load (with low current). However, it is hereby clarified according to the present disclosure that the gate drive voltage V is not limited to the two conditions.
[0023] Referring to
[0024] Referring to
[0025] Referring to
[0026]
[0027] According to the present disclosure, the first electrical signal and the second electrical signal generated by the variable passive component assembly serve as control signal to be sent to the variable gate drive voltage generator through the first feedback loop and the second feedback loop. The variable gate drive voltage generator can. generate different gate drive voltages according to the load conditions. Under heavy load, a relatively high gate drive voltage is generated for reducing the on-resistance, Under light load, a relatively low gate drive is generated for reducing the drive loss that accounts for most of the overall loss of the system. Accordingly, the present invention can effectively reduce power loss regardless of light load or heavy load, and. does not require a plurality of metal-oxide semiconductor field-effect transistors in series/parallel, which can effectively reduce cost and volume while also improving system efficiency.
REFERENCE SIGN
[0028] 1 hybrid metal-oxide semiconductor field-effect transistor with variable gate impedance [0029] 11 hybrid metal-oxide semiconductor field-effect transistor [0030] 12 first feedback loop [0031] 13 variable gate drive voltage generator [0032] 14 variable passive component assembly [0033] 15 second feedback loop [0034] G gate [0035] S source [0036] D drain [0037] E1 first electrical signal [0038] E2 second electrical signal [0039] HE1 first electrical signal for heavy load [0040] LE2 first electrical signal for light load [0041] HV gate drive voltage [0042] LV gate drive voltage [0043] gate drive voltage [0044] S1 step of receiving a first electrical signal [0045] S2 step of generating a drive voltage [0046] S3 step of driving