参数资料
型号: MIC261203YJL EV
厂商: Micrel Inc
文件页数: 15/31页
文件大小: 0K
描述: BOARD EVAL FOR MIC261203YJL
标准包装: 1
系列: HyperLight Load®, SuperSwitcher IIG™
主要目的: DC/DC,步降
输出及类型: 1,隔离
输出电压: 5V
电流 - 输出: 12A
输入电压: 5.5 ~ 28 V
稳压器拓扑结构: 降压
频率 - 开关: 600kHz
板类型: 完全填充
已供物品:
已用 IC / 零件: MIC261203
其它名称: 576-4014
Micrel, Inc.
Functional Description
The MIC261203 is an adaptive ON-time synchronous
MIC261203
The maximum duty cycle is obtained from the 300ns
t OFF(min) :
step-down DC/DC regulator with an internal 5V linear
regulator and a Power Good (PG) output. It is designed
to operate over a wide input voltage range from 4.5V to
28V and provides a regulated output voltage at up to 7A
D max =
t S - t OFF(min)
t S
= 1 -
300ns
t S
Eq. 2
of output current. An adaptive ON-time control scheme is
employed in to obtain a constant switching frequency
and to simplify the control compensation. Over-current
protection is implemented without the use of an external
sense resistor. The device includes an internal soft-start
function which reduces the power supply input surge
current at start-up by controlling the output voltage rise
time.
Theory of Operation
The MIC261203 is able to operate in either continuous
mode or discontinuous mode. The operating mode is
determined by the output of the Zero Cross comparator
(ZC) as shown in Figure 1.
Continuous Mode
In continuous mode, the output voltage is sensed by the
MIC261203 feedback pin FB via the voltage divider R1
and R2, and compared to a 0.8V reference voltage V REF
at the error comparator through a low gain
transconductance (g m ) amplifier. If the feedback voltage
decreases and the output of the g m amplifier is below
0.8V, then the error comparator will trigger the control
logic and generate an ON-time period. The ON-time
period length is predetermined by the “FIXED t ON
ESTIMATION” circuitry:
where t S = 1/600kHz = 1.66 μ s.
It is not recommended to use MIC261203 with a OFF-
time close to t OFF(min) during steady-state operation. Also,
as V OUT increases, the internal ripple injection will
increase and reduce the line regulation performance.
Therefore, the maximum output voltage of the
MIC261203 should be limited to 5.5V and the maximum
external ripple injection should be limited to 200mV.
Please refer to “Setting Output Voltage” subsection in
Application Information for more details.
The actual ON-time and resulting switching frequency
will vary with the part-to-part variation in the rise and fall
times of the internal MOSFETs, the output load current,
and variations in the V DD voltage. Also, the minimum t ON
results in a lower switching frequency in high V IN to V OUT
applications, such as 24V to 1.0V. The minimum t ON
measured on the MIC261203 evaluation board is about
100ns. During load transients, the switching frequency is
changed due to the varying OFF-time.
To illustrate the control loop operation, both the steady-
state and load transient scenarios will be analyzed.
Figure 2 shows the MIC261203 control loop timing
during steady-state operation. During steady-state, the
g m amplifier senses the feedback voltage ripple, which is
proportional to the output voltage ripple and the inductor
t ON(estimat ed) =
V OUT
V IN × 600kHz
Eq. 1
current ripple, to trigger the ON-time period. The ON-
time is predetermined by the t ON estimator. The
termination of the OFF-time is controlled by the feedback
voltage. At the valley of the feedback voltage ripple,
where V OUT is the output voltage and V IN is the power
stage input voltage.
At the end of the ON-time period, the internal high-side
driver turns off the high-side MOSFET and the low-side
driver turns on the low-side MOSFET. The OFF-time
period length depends upon the feedback voltage in
most cases. When the feedback voltage decreases and
the output of the g m amplifier is below 0.8V, the ON-time
period is triggered and the OFF-time period ends. If the
OFF-time period determined by the feedback voltage is
less than the minimum OFF-time t OFF(min) , which is about
300ns, then the MIC261203 control logic will apply the
t OFF(min) instead. t OFF(min) is required to maintain enough
energy in the boost capacitor (C BST ) to drive the high-
side MOSFET.
which occurs when V FB falls below V REF , the OFF period
ends and the next ON-time period is triggered through
the control logic circuitry.
July 2011
15
M9999-071311-A
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