参数资料
型号: IRU3039CHTR
厂商: International Rectifier
文件页数: 9/22页
文件大小: 0K
描述: IC REG CTRLR BUCK PWM VM 20-MLPQ
标准包装: 1
PWM 型: 电压模式
输出数: 1
频率 - 最大: 400kHz
占空比: 88%
电源电压: 4.75 V ~ 20 V
降压:
升压:
回扫:
反相:
倍增器:
除法器:
Cuk:
隔离:
工作温度: 0°C ~ 70°C
封装/外壳: 20-MLPQ
包装: 剪切带 (CT)
其它名称: *IRU3039CHTR
IRU3039CHTRCT
IRU3039(PbF)
ESR ≤
? V O
? I O
I RMS = I OUT D × (1-D) ---(9)
Where:
D is the Duty Cycle, D=V OUT /V IN.
I RMS is the RMS value of the input capacitor current.
I OUT is the output current for each channel.
For V IN =20V, I OUT =8A and D=0.165, the I RMS =3A
For higher efficiency, a low ESR capacitor is recom-
mended. Choose three Poscap from Sanyo 25TQC15M
(25V, 15 μ F, 90m ? ) with a maximum allowable ripple
current of 3A.
Inductor Selection
The inductor is selected based on operating frequency,
requirements, yet have high enough ESR to satisfy sta-
bility requirements. The ESR of the output capacitor is
calculated by the following relationship:
---(10)
Where:
? V O = Output Voltage Ripple
? i = Inductor Ripple Current
? V O = 100mV and ? I ? 40% of 8A = 3.2A
This results to: ESR=31m ?
The Sanyo TPC series, Poscap capacitor is a good choice.
The 6TPC330M, 330 μ F, 6.3V has an ESR 40m ? . Se-
lecting two of these capacitors in parallel, results to an
ESR of ? 20m ? which achieves our low ESR goal.
transient performance and allowable output voltage ripple.
The capacitor value must be high enough to absorb the
Low inductor value results to faster response to step
load (high ? i/ ? t) and smaller size but will cause larger
output ripple due to increase of inductor ripple current.
As a rule of thumb, select an inductor that produces a
ripple current of 10-40% of full load DC.
For the buck converter, the inductor value for desired
operating ripple current can be determined using the fol-
lowing relation:
inductor's ripple current. The larger the value of capaci-
tor, the lower will be the output ripple voltage.
Power MOSFET Selection
The IRU3039 uses two N-Channel MOSFETs. The se-
lections criteria to meet power transfer requirements is
based on maximum drain-source voltage (V DSS ), gate-
source drive voltage (V GS ), maximum output current, On-
resistance R DS(ON) and thermal management.
V IN - V OUT = L ×
; ? t = D ×
L = (V IN - V OUT ) ×
V IN
? i
? t
V OUT
V IN ×? i × f S
Where:
V IN = Maximum Input Voltage
V OUT = Output Voltage
? i = Inductor Ripple Current
f S = Switching Frequency
? t = Turn On Time
D = Duty Cycle
1
f S
V OUT
;D=
---(11)
The MOSFET must have a maximum operating voltage
(V DSS ) exceeding the maximum input voltage (V IN ).
The gate drive requirement is almost the same for both
MOSFETs. Logic-level transistor can be used and cau-
tion should be taken with devices at very low V GS to pre-
vent undesired turn-on of the complementary MOSFET,
which results a shoot-through current.
The total power dissipation for MOSFETs includes con-
duction and switching losses. For the Buck converter,
P COND (Upper Switch) = I LOAD × R DS(ON) × D ×?
P COND (Lower Switch) = I LOAD × R DS(ON) × (1 - D) ×?
If ? i = 37%(I O ), then the output inductor will be:
L = 4.65 μ H
The Coilcraft DO5022HC series provides a range of in-
ductors in different values, low profile suitable for large
currents, 4.7 μ H, 13A is a good choice for this applica-
tion. This will result to a ripple approximately 37% of
the average inductor current is equal to the DC load cur-
rent. The conduction loss is defined as:
2
2
? = R DS(ON) Temperature Dependency
output current.
The R DS(ON) temperature dependency should be consid-
Output Capacitor Selection
The criteria to select the output capacitor is normally
based on the value of the Effective Series Resistance
(ESR). In general, the output capacitor must have low
enough ESR to meet output ripple and load transient
ered for the worst case operation. This is typically given
in the MOSFET data sheet. Ensure that the conduction
losses and switching losses do not exceed the package
ratings or violate the overall thermal budget.
www.irf.com
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