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您現(xiàn)在的位置：買賣IC網(wǎng) > PDF目錄374018 > ADP1073AR-5 (ANALOG DEVICES INC) Circular Connector; No. of Contacts:55; Series:LJT06R; Body Material:Aluminum; Connecting Termination:Crimp; Connector Shell Size:23; Circular Contact Gender:Pin; Circular Shell Style:Straight Plug; Insert Arrangement:23-55 PDF資料下載

參數(shù)資料

型號(hào)：	ADP1073AR-5
廠商：	ANALOG DEVICES INC
元件分類：	穩(wěn)壓器
英文描述：	Circular Connector; No. of Contacts:55; Series:LJT06R; Body Material:Aluminum; Connecting Termination:Crimp; Connector Shell Size:23; Circular Contact Gender:Pin; Circular Shell Style:Straight Plug; Insert Arrangement:23-55
中文描述：	0.4 A SWITCHING REGULATOR, 23 kHz SWITCHING FREQ-MAX, PDSO8
封裝：	SOIC-8
文件頁(yè)數(shù)：	7/16頁(yè)
文件大?。?/td>	442K
代理商：	ADP1073AR-5

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ADP1073

–7–

REV. 0

limit feature can be used to limit switch current. Simply select a

resistor (using Figure 4) that will limit the maximum switch

current to the I

PEAK

value calculated for the minimum value of

. This will improve efficiency by producing a constant I

PEAK

as V

increases. See the Limiting the Switch Current section of

this data sheet for more information.

Note that the switch current limit feature does not protect the

circuit if the output is shorted to ground. In this case, current is

limited only by the dc resistance of the inductor and the forward

voltage of the diode.

Inductor Selection—Step-Down Converter

The step-down mode of operation is shown in Figure 16. Unlike

the step-up mode, the ADP1073’s power switch does not satu-

rate when operating in the step-down mode. Switch current

should therefore be limited to 600 mA for best performance in

this mode. If the input voltage will vary over a wide range, the

LIM

pin can be used to limit the maximum switch current.

The first step in selecting the step-down inductor is to calculate

the peak switch current as follows:

PEAK

OUT

–

OUT

(6)

where

= duty cycle (0.72 for the ADP1073)

= voltage drop across the switch

= diode drop (0.5 V for a 1N5818)

OUT

= output current

OUT

= the output voltage

= the minimum input voltage

As previously mentioned, the switch voltage is higher in step-

down mode than in step-up mode. V

is a function of switch

current and is therefore a function of V

, L, time and V

OUT

For most applications, a V

value of 1.5 V is recommended.

The inductor value can now be calculated:

(

MIN

)

–

OUT

PEAK

(7)

where

= switch ON time (38

If the input voltage will vary (such as an application which must

operate from a battery), an R

LIM

resistor should be selected

from Figure 4. The R

LIM

resistor will keep switch current con-

stant as the input voltage rises. Note that there are separate

LIM

values for step-up and step-down modes of operation.

For example, assume that +3.3 V at 150 mA is required from a

9 V battery with a 6 V end-of-life voltage. Deriving the peak

current from Equation 6 yields:

PEAK

150

0.72

3.3

0.5

6 –1.5

0.5

317

The peak current can than be inserted into Equation 7 to calcu-

late the inductor value:

6–1.5–3.3

317

144

Since 144

H is not a standard value, the next lower standard

value of 100

H would be specified.

To avoid exceeding the maximum switch current when the

input voltage is at +9 V, an R

LIM

resistor should be specified.

Inductor Selection—Positive-to-Negative Converter

The configuration for a positive-to-negative converter using the

ADP1073 is shown in Figure 17. As with the step-up converter,

all of the output power for the inverting circuit must be supplied

by the inductor. The required inductor power is derived from

the formula:

OUT

(

)

OUT

(

)

(8)

The ADP1073 power switch does not saturate in positive-to-

negative mode. The voltage drop across the switch can be

modeled as a 0.75 V base-emitter diode in series with a 0.65

resistor. When the switch turns on, inductor current will rise at

a rate determined by:

(

)

1–

–

(9)

where

' = 0.65

+ R

L(DC)

– 0.75

For example, assume that a –5 V output at 75 mA is to be gen-

erated from a +4.5 V to +5.5 V source. The power in the induc-

tor is calculated from Equation 8:

0.5

During each switching cycle, the inductor must supply the fol-

lowing energy:

(

)

(75

)

413

OSC

413

kHz

21.7

Using a standard inductor value of 330

H, with 1

dc resis-

tance, will produce a peak switch current of:

PEAK

4.5

–0.75

0.65

1–

–1.65

330

393

Once the peak current is known, the inductor energy can be

calculated from Equation 9:

2(330

)

(393

)

25.5

The inductor energy of 25.5

J is greater than the P

OSC

requirement of 21.7

J, so the 330

H inductor will work in this

application.

The input voltage varies between only 4.5 V and 5.5 V in this

example. Therefore, the peak current will not change enough to

require an R

LIM

resistor and the I

LIM

pin can be connected di-

rectly to V

. Care should be taken, of course, to ensure that the

peak current does not exceed 800 mA.

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