LM2700MTX-ADJ/NOPB National Semiconductor, LM2700MTX-ADJ/NOPB Datasheet - Page 8

IC CONV DC/DC STEPUP 14-TSSOP

LM2700MTX-ADJ/NOPB

Manufacturer Part Number
LM2700MTX-ADJ/NOPB
Description
IC CONV DC/DC STEPUP 14-TSSOP
Manufacturer
National Semiconductor
Type
Step-Up (Boost)r
Datasheet

Specifications of LM2700MTX-ADJ/NOPB

Internal Switch(s)
Yes
Synchronous Rectifier
No
Number Of Outputs
1
Voltage - Output
1.26 ~ 17.5 V
Current - Output
2.5A
Frequency - Switching
600kHz, 1.25MHz
Voltage - Input
2.2 ~ 12 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
14-TSSOP
For Use With
LM2700MT-ADJEV - BOARD EVALUATION LM2700MT-ADJ
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Power - Output
-
Other names
LM2700MTX-ADJ

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Operation
20012302
FIGURE 1. Simplified Boost Converter Diagram
(a) First Cycle of Operation (b) Second Cycle Of Operation
CONTINUOUS CONDUCTION MODE
The LM2700 is a current-mode, PWM boost regulator. A
boost regulator steps the input voltage up to a higher output
voltage. In continuous conduction mode (when the inductor
current never reaches zero at steady state), the boost regu-
lator operates in two cycles.
INTRODUCTION TO COMPENSATION
In the first cycle of operation, shown in Figure 1 (a), the
transistor is closed and the diode is reverse biased. Energy
is collected in the inductor and the load current is supplied by
C
.
OUT
The second cycle is shown in Figure 1 (b). During this cycle,
the transistor is open and the diode is forward biased. The
energy stored in the inductor is transferred to the load and
output capacitor.
The ratio of these two cycles determines the output voltage.
The output voltage is defined approximately as:
where D is the duty cycle of the switch, D and D' will be
required for design calculations.
SETTING THE OUTPUT VOLTAGE
The output voltage is set using the feedback pin and a
resistor divider connected to the output as shown in Figure 3.
The feedback pin voltage is 1.26V, so the ratio of the feed-
20012305
back resistors sets the output voltage according to the fol-
lowing equation:
FIGURE 2. (a) Inductor current. (b) Diode current.
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