参数资料
型号: MAX1875EEG+
厂商: Maxim Integrated Products
文件页数: 13/21页
文件大小: 0K
描述: IC REG CTRLR BUCK PWM VM 24-QSOP
产品培训模块: Lead (SnPb) Finish for COTS
Obsolescence Mitigation Program
标准包装: 50
PWM 型: 电压模式
输出数: 2
频率 - 最大: 660kHz
占空比: 90%
电源电压: 4.75 V ~ 23 V
降压:
升压:
回扫:
反相:
倍增器:
除法器:
Cuk:
隔离:
工作温度: -40°C ~ 85°C
封装/外壳: 24-SSOP(0.154",3.90mm 宽)
包装: 管件
Dual 180° Out-of-Phase PWM Step-
Down Controllers with POR
Setting the Switching Frequency
The controller generates the clock signal by dividing
down the internal oscillator or SYNC input signal when
driven by an external oscillator, so the switching frequen-
cy equals half the oscillator frequency (f SW = f OSC /2).
The internal oscillator frequency is set by a resistor
(R OSC ) connected from OSC to GND. The relationship
between f SW and R OSC is:
Switching Frequency section). The exact inductor value
is not critical and can be adjusted in order to make
trade-offs among size, cost, and efficiency. Lower
inductor values minimize size and cost, but also
improve transient response and reduce efficiency due
to higher peak currents. On the other hand, higher
inductance increases efficiency by reducing the RMS
current. However, resistive losses due to extra wire turns
can exceed the benefit gained from lower AC current
6 × 10 9
R OSC =
? - Hz
S
f SW
levels, especially when the inductance is increased
without also allowing larger inductor dimensions.
Find a low-loss inductor having the lowest possible DC
resistance that fits in the allotted dimensions. The
I PEAK LOAD ( MAX ) + ?
? LIR ?
? 2 ? LOAD ( MAX )
where f SW is in Hz, f OSC is in Hz, and R OSC is in ? . For
example, a 600kHz switching frequency is set with
R OSC = 10k ? . Higher frequencies allow designs with
lower inductor values and less output capacitance.
Consequently, peak currents and I 2 R losses are lower
at higher switching frequencies, but core losses, gate-
charge currents, and switching losses increase.
A rising clock edge on SYNC is interpreted as a syn-
chronization input. If the SYNC signal is lost, the inter-
nal oscillator takes control of the switching rate,
returning the switching frequency to that set by R OSC .
This maintains output regulation even with intermittent
SYNC signals. When an external synchronization signal
is used, R OSC should set the switching frequency to
one half SYNC rate (f SYNC ).
Inductor Selection
Three key inductor parameters must be specified for
inductor ’ s saturation rating must exceed the peak-
inductor current at the maximum defined load current
(I LOAD(MAX) ):
= I ? I
Setting the Valley Current Limit
The minimum current-limit threshold must be high
enough to support the maximum expected load current
with the worst-case low-side MOSFET on-resistance
value since the low-side MOSFET ’ s on-resistance is
used as the current-sense element. The inductor ’ s valley
current occurs at I LOAD(MAX) minus half of the ripple
current. The current-sense threshold voltage (V ITH )
should be greater than voltage on the low-side MOSFET
during the ripple-current valley:
V ITH DS ( ONMAX ) × I LOAD ( MAX ) × ? 1 -
> R
?
?
operation with the MAX1875/MAX1876: inductance
value (L), peak-inductor current (I PEAK ), and DC resis-
tance (R DC ). The following equation assumes a constant
,
?
LIR ?
2 ?
ratio of inductor peak-to-peak AC current to DC average
current (LIR). For LIR values too high, the RMS currents
are high, and therefore I 2 R losses are high. Large induc-
tances must be used to achieve very low LIR values.
Typically inductance is proportional to resistance (for a
given package type) which again makes I 2 R losses high
for very low LIR values. A good compromise between
size and loss is a 30% peak-to-peak ripple current to
average-current ratio (LIR = 0.3). The switching frequen-
cy, input voltage, output voltage, and selected LIR
determine the inductor value as follows:
where R DS(ON) is the on-resistance of the low-side
MOSFET (N L ). Use the maximum value for R DS(ON)
from the low-side MOSFET ’ s data sheet, and additional
margin to account for R DS(ON) rise with temperature is
also recommended. A good general rule is to allow
0.5% additional resistance for each ° C of the MOSFET
junction temperature rise.
Connect ILIM_ to VL for the default 100mV (typ) cur-
rent-limit threshold. For an adjustable threshold, con-
nect a resistor (R ILIM _) from ILIM_ to GND. The
relationship between the current-limit threshold (V ITH _)
L = OUT IN OUT
V   (V - V   )
V IN f SW I OUT LIR
where V IN , V OUT , and I OUT are typical values (so that
and R ILIM _ is:
R ILIM _ =
V ITH _
0 . 5 μ A
efficiency is optimum for typical conditions). The switch-
ing frequency is set by R OSC (see the Setting the
where R ILIM _ is in ? and V ITH _ is in V.
______________________________________________________________________________________
13
相关PDF资料
PDF描述
VI-JV2-EY-B1 CONVERTER MOD DC/DC 15V 50W
MAX5003CEE+ IC REG CTRLR FLYBK ISO VM 16QSOP
URU1J221MHD CAP ALUM 220UF 63V 20% RADIAL
MAX1960EEP+ IC REG CTRLR BUCK PWM VM 20-QSOP
MAX15046AAEE+ IC REG CTRLR BUCK PWM VM 16-QSOP
相关代理商/技术参数
参数描述
MAX1875EEG+ 功能描述:电压模式 PWM 控制器 Dual 180 Out PWM Step-Down RoHS:否 制造商:Texas Instruments 输出端数量:1 拓扑结构:Buck 输出电压:34 V 输出电流: 开关频率: 工作电源电压:4.5 V to 5.5 V 电源电流:600 uA 最大工作温度:+ 125 C 最小工作温度:- 40 C 封装 / 箱体:WSON-8 封装:Reel
MAX1875EEG+T 功能描述:电压模式 PWM 控制器 Dual 180 Out PWM Step-Down RoHS:否 制造商:Texas Instruments 输出端数量:1 拓扑结构:Buck 输出电压:34 V 输出电流: 开关频率: 工作电源电压:4.5 V to 5.5 V 电源电流:600 uA 最大工作温度:+ 125 C 最小工作温度:- 40 C 封装 / 箱体:WSON-8 封装:Reel
MAX1875EEG-T 功能描述:DC/DC 开关控制器 RoHS:否 制造商:Texas Instruments 输入电压:6 V to 100 V 开关频率: 输出电压:1.215 V to 80 V 输出电流:3.5 A 输出端数量:1 最大工作温度:+ 125 C 安装风格: 封装 / 箱体:CPAK
MAX1875EVKIT 功能描述:DC/DC 开关控制器 Evaluation Kit for the MAX1875 MAX1876 MAX1858 RoHS:否 制造商:Texas Instruments 输入电压:6 V to 100 V 开关频率: 输出电压:1.215 V to 80 V 输出电流:3.5 A 输出端数量:1 最大工作温度:+ 125 C 安装风格: 封装 / 箱体:CPAK
MAX1876AEEG 功能描述:DC/DC 开关控制器 RoHS:否 制造商:Texas Instruments 输入电压:6 V to 100 V 开关频率: 输出电压:1.215 V to 80 V 输出电流:3.5 A 输出端数量:1 最大工作温度:+ 125 C 安装风格: 封装 / 箱体:CPAK