© Semiconductor Components Industries, LLC, 2010
November, 2010 Rev. 12
1Publication Order Number:
NCP1050/D
NCP1050, NCP1051,
NCP1052, NCP1053,
NCP1054, NCP1055
Monolithic High Voltage
Gated Oscillator Power
Switching Regulator
The NCP1050 through NCP1055 are monolithic high voltage
regulators that enable end product equipment to be compliant with low
standby power requirements. This device series combines the required
converter functions allowing a simple and economical power system
solution for office automation, consumer, and industrial products.
These devices are designed to operate directly from a rectified AC line
source. In flyback converter applications they are capable of providing
an output power that ranges from 6.0 W to 40 W with a fixed AC input
of 100 V, 115 V, or 230 V, and 3.0 W to 20 W with a variable AC input
that ranges from 85 V to 265 V.
This device series features an active startup regulator circuit that
eliminates the need for an auxiliary bias winding on the converter
transformer, fault detector and a programmable timer for converter
overload protection, unique gated oscillator configuration for extremely
fast loop response with double pulse suppression, power switch current
limiting, input undervoltage lockout with hysteresis, thermal shutdown,
and auto restart fault detection. These devices are available in
economical 8pin dualinline and 4pin SOT223 packages.
Features
Startup Circuit Eliminates the Need for Transformer Auxiliary Bias
Winding
Optional Auxiliary Bias Winding Override for Lowest Standby
Power Applications
Converter Output Overload and Open Loop Protection
Auto Restart Fault Protection
IC Thermal Fault Protection
Unique, Dual Edge, Gated Oscillator Configuration for Extremely
Fast Loop Response
Oscillator Frequency Dithering with Controlled Slew Rate Driver for
Reduced EMI
Low Power Consumption Allowing European Blue Angel Compliance
OnChip 700 V Power Switch Circuit and Active Startup Circuit
Rectified AC Line Source Operation from 85 V to 265 V
Input Undervoltage Lockout with Hysteresis
Oscillator Frequency Options of 44 kHz, 100 kHz, 136 kHz
These are PbFree and HalideFree Devices
Typical Applications
ACDC Converters
Wall Adapters
Portable Electronic Chargers
Low Power Standby and KeepAlive Supplies
PDIP8
P SUFFIX
CASE 626A
1
8
MARKING
DIAGRAMS
X = Current Limit (0, 1, 2, 3, 4, 5)
Z = Oscillator Frequency
A = 44 kHz, B = 100 kHz, C = 136 kHz
A = Assembly Location
WL, = Wafer Lot
YY, Y = Year
WW, W = Work Week
G or G=PbFree Package
1
8
Pin: 1. VCC
2. Control Input
3, 78. Ground
4. No Connection
5. Power Switch Drain
NCP105XZ
AWL
YYWWG
See detailed ordering and shipping information on page 22 of
this data sheet.
ORDERING INFORMATION
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SOT223
ST SUFFIX
CASE 318E
Pin: 1.VCC
2.Control Input
3.Power Switch Drain
4.Ground
1
AYW
N5XZG
G
(Note: Microdot may be in either location)
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Figure 1. Typical Application
Startup & VCC
Regulator Circuit
VCC
Fault Detector
Power
Switch
Circuit
Oscillator &
Gating Logic
Control Input
Power Switch Circuit Output
3, 78
1
2
5
+
Snubber
++
+
Converter
DC Output
AC Line
Input
Ground
Pin Function Description
Pin
(SOT223)
Pin
(PDIP8) Function Description
1 1 VCC This is the positive supply voltage input. During startup, power is supplied to this input
from Pin 5. When VCC reaches VCC(on), the Startup Circuit turns off and the output is
allowed to begin switching with 1.0 V hysteresis on the VCC pin. The capacitance con-
nected to this pin programs fault timing and frequency modulation rate.
2 2 Control Input The Power Switch Circuit is turned off when a current greater than approximately 50 A
is drawn out of or applied to this pin. A 10 V clamp is built onto the chip to protect the
device from ESD damage or overvoltage conditions.
43, 7, 8 Ground This pin is the control circuit and Power Switch Circuit ground. It is part of the integrated
circuit lead frame.
4No Connection
3 5 Power Switch
Drain
This pin is designed to directly drive the converter transformer primary, and internally
connects to Power Switch and Startup Circuit.
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3
+
Snubber
Startup
Circuit
Internal Bi-
as
Leading Edge
Blanking
Thermal
Shutdown
Oscillator
Fault
Detector
+
R
S
QCk
R
Q
+
S
R
Q
+
+
+
+
+
+
++
+
Converter
DC Output
Power Switch Circuit Output
Ground
Control
Input
AC Line
Input
Driver
Power
Switch
Circuit
Turn Off
Latch
Turn On
Latch
Fault
Latch
VCC Bypass/
Fault Timing/
VCO Sweep
Control
10 V
Current Limit
Comparator
2.6 V
3.3 V
10 V
48 A
48 AIH = 10 A
IH = 10 A
Undervoltage
Lockout
VCC
Figure 2. Representative Block Diagram
Startup/VCC Reg
7.5/8.5 V
4.5 V
VCC
RSENSE
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Leading Edge On
Feedback Off
Delay On
Duty Cycle Off
Leading Edge On
Duty Cycle Off Leading Edge On
Current Limit Off
Leading Edge On
Duty Cycle Off
No Second
Pulse
Primary Current
Power Switch
Circuit Gate Drive
0 A
37.5 A
47.5 A
Oscillator Clock
Oscillator Duty
Cycle
7.5 V
8.5 V
VCC
Current Limit
Threshold
Current Limit
Propagation
Delay
ICONTROL, SINK
Figure 3. Timing Diagram for Gated Oscillator with Dual Edge PWM
fOSC (high)
fOSC (low)
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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5
V(pin 5)
0 A
37.5 A
47.5 A
ICONTROL, SINK
VCC
VCC(reset)
VCC(off)
VCC(on)
0 V
I(start)
6.3 mA
0 mA
ICC1 ICC2
ICC3
0 mA
I(start)
Fault Applied Fault Removed
Hysteretic Regulation
ICC1, Current Measurement
ICC2, Current Measurement
ICC3, Current Measurement
Figure 4. NonLatching Fault Condition Timing Diagram
ICC
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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MAXIMUM RATINGS
Rating Symbol Value Unit
Power Switch and Startup Circuit
Drain Voltage Range
Drain Current Peak During Transformer Saturation
VDS
IDS(pk)
*0.3 to 700
2.0 x Ilim Max
V
A
Power Supply/VCC Bypass and Control Input
Voltage Range
Current
VIR
Imax
*0.3 to 10
100
V
mA
Thermal Characteristics
P Suffix, Plastic Package Case 626A01
JunctiontoLead
JunctiontoAir, 2.0 Oz. Printed Circuit Copper Clad
0.36 Sq. Inch
1.0 Sq. Inch
ST Suffix, Plastic Package Case 318E04
JunctiontoLead
JunctiontoAir, 2.0 Oz. Printed Circuit Copper Clad
0.36 Sq. Inch
1.0 Sq. Inch
RJL
RJA
RJL
RJA
9.0
77
60
14
74
55
°C/W
Operating Junction Temperature TJ*40 to +150 °C
Storage Temperature Tstg *65 to +150 °C
Maximum ratings are those values beyond which device damage can occur. Maximum ratings applied to the device are individual stress limit
values (not normal operating conditions) and are not valid simultaneously. If these limits are exceeded, device functional operation is not implied,
damage may occur and reliability may be affected.
A. This device series contains ESD protection and exceeds the following tests:
Pins 13: Human Body Model 2000 V per MILSTD883, Method 3015.
Machine Model Method 400 V.
Pin 5: Human Body Model 1000 V per MILSTD883, Method 3015.
Machine Model Method 400 V.
Pin 5 is connected to the power switch and startup circuits, and is rated only to the max voltage of the part, or 700 V.
B. This device contains Latchup protection and exceeds $100 mA per JEDEC Standard JESD78.
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ELECTRICAL CHARACTERISTICS (VCC = 8.0 V, for typical values TJ = 25°C, for min/max values, TJ is the operating junction
temperature range that applies (Note 1), unless otherwise noted.)
Characteristics Symbol Min Typ Max Unit
OSCILLATOR
Frequency (VCC = 7.5 V)
TJ = 25°C:
44 kHz Version
100 kHz Version
136 kHz Version
TJ = Tlow to Thigh
44 kHz Version
100 kHz Version
136 kHz Version
fOSC(low)
38
87
119
37
84
113
42.5
97
132
47
107
145
47
107
145
kHz
Frequency (VCC = 8.5 V)
TJ = 25°C:
44 kHz Version
100 kHz Version
136 kHz Version
TJ = Tlow to Thigh
44 kHz Version
100 kHz Version
136 kHz Version
fOSC(high)
41
93
126
39
90
120
45.5
103
140
50
113
154
50
113
154
kHz
Frequency Sweep (VCC = 7.5 V to 8.5 V, TJ = 25°C) %fOSC 5.0 %
Maximum Duty Cycle D(max) 74 77 80 %
CONTROL INPUT
Lower Window Input Current Threshold
Switching Enabled, Sink Current Increasing
Switching Disabled, Sink Current Decreasing
Upper Window Input Current Threshold
Switching Enabled, Source Current Increasing
Switching Disabled, Source Current Decreasing
Ioff(low)
Ion(low)
Ioff(high)
Ion(high)
58
50
37
25
47.5
37.5
47.5
37.5
37
25
58
50
A
Control Window Input Voltage
Lower (Isink = 25 A)
Upper (Isource = 25 A) Vlow
Vhigh
1.1
4.2
1.35
4.6
1.6
5.0
V
1. Tested junction temperature range for the NCP105X series:
Tlow = 40°CT
high = +125°C
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ELECTRICAL CHARACTERISTICS (VCC = 8.0 V, for typical values TJ = 25°C, for min/max values, TJ is the operating junction
temperature range that applies (Note 2), unless otherwise noted.)
Characteristics Symbol Min Typ Max Unit
POWER SWITCH CIRCUIT
Power Switch Circuit OnState Resistance
NCP1050, NCP1051, NCP1052 (ID = 50 mA)
TJ = 25°C
TJ = 125°C
NCP1053, NCP1054, NCP1055 (ID = 100 mA)
TJ = 25°C
TJ = 125°C
RDS(on)
22
42
10
23
30
55
15
28
Power Switch Circuit & Startup Breakdown Voltage
(ID(off) = 100 A, TA = 25°C)
V(BR)DS 700 V
Power Switch Circuit & Startup Circuit OffState Leakage Current
(VDS = 650 V) TJ = 25°C
(VDS = 650 V) TJ = 125°C
IDS(off)
25
15
40
80
A
Switching Characteristics (RL = 50 , VDS set for ID = 0.7 IIim)
Turnon Time (90% to 10%)
Turnoff Time (10% to 90%) ton
toff
20
10
ns
CURRENT LIMIT AND THERMAL PROTECTION
Current Limit Threshold (TJ = 25°C) (Note 5)
NCP1050
NCP1051
NCP1052
NCP1053
NCP1054
NCP1055
Ilim 93
186
279
372
493
632
100
200
300
400
530
680
107
214
321
428
567
728
mA
Conversion Power Deviation (TJ = 25°C) (Note 6) I2fOSC 0 10 %A2Hz
Propagation Delay, Current Limit Threshold to Power Switch Circuit Output
NCP1050, NCP1051, NCP1052
NCP1053, NCP1054, NCP1055
tPLH
135
160
ns
Thermal Protection (VCC = 8.6 V) (Note 2, 3, 4)
Shutdown (Junction Temperature Increasing)
Hysteresis (Junction Temperature Decreasing) Tsd
TH
140
160
75
°C
STARTUP CONTROL
Startup/VCC Regulation
Startup Threshold/VCC Regulation Peak (VCC Increasing)
Minimum Operating/VCC Valley Voltage After TurnOn
Hysteresis
VCC(on)
VCC(off)
VH
8.0
7.0
8.5
7.5
1.0
9.0
8.0
V
Undervoltage Lockout Threshold Voltage, VCC Decreasing VCC(reset) 4.0 4.5 5.0 V
Startup Circuit Output Current (Power Switch Circuit Output = 40 V)
VCC = 0 V
TJ = 25°C
TJ = 40 to 125°C
VCC = VCC(on) 0.2 V
TJ = 25°C
TJ = 40 to 125°C
Istart
5.4
4.5
4.6
3.5
6.3
5.6
7.2
8.0
6.6
7.0
mA
Minimum Startup Drain Voltage (Istart = 0.5 mA, VCC = VCC(on) 0.2 V) Vstart(min) 13.4 20 V
Output Fault Condition Auto Restart
(VCC Capacitor = 10 F, Power Switch Circuit Output = 40 V)
Average Switching Duty Cycle
Frequency
Drst
frst
6.0
3.5
%
Hz
2. Tested junction temperature range for the NCP105X series:
Tlow = 40°CT
high = +125°C
3. Maximum package power dissipation limits must be observed.
4. Guaranteed by design only.
5. Adjust di/dt to reach Ilim in 4.0 sec.
6. Consult factory for additional options including test and trim for output power accuracy.
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ELECTRICAL CHARACTERISTICS (VCC = 8.0 V, for typical values TJ = 25°C, for min/max values, TJ is the operating junction
temperature range that applies (Note 7), unless otherwise noted.)
Characteristics Symbol Min Typ Max Unit
TOTAL DEVICE
Power Supply Current After UVLO TurnOn (Note 8)
Power Switch Circuit Enabled
NCP1050, NCP1051, NCP1052
44 kHz Version
100 kHz Version
136 kHz Version
NCP1053, NCP1054, NCP1055
44 kHz Version
100 kHz Version
136 kHz Version
Power Switch Circuit Disabled
NonFault Condition
Fault Condition
ICC1
ICC2
ICC3
0.35
0.40
0.40
0.40
0.45
0.50
0.35
0.10
0.45
0.50
0.525
0.50
0.575
0.65
0.45
0.175
0.55
0.60
0.65
0.60
0.70
0.80
0.55
0.25
mA
7. Tested junction temperature range for the NCP105X series:
Tlow = 40°CT
high = +125°C
8. See NonLatching Fault Condition Timing Diagram in Figure 4.
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Figure 5. Oscillator Frequency
(44 kHz Version) versus Temperature
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
40
41
42
43
44
45
46
OSCILLATOR FREQUENCY (kHz)
Figure 6. Oscillator Frequency
(100 kHz Version) versus Temperature
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
92
94
96
100
102
104
OSCILLATOR FREQUENCY (kHz)
Figure 7. Oscillator Frequency
(136 kHz Version) versus Temperature
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
124
126
OSCILLATOR FREQUENCY (kHz)
Figure 8. Frequency Sweep versus
Temperature
25 25 50 15012550 0 75 100
0
3
TEMPERATURE (°C)
4
5
6
7
8
9
FREQUENCY SWEEP (kHz)
VCC = VCC(on)
98
128
130
132
134
136
138
140 136 kHz
Figure 9. Maximum Duty Cycle versus
Temperature
Figure 10. Lower Window Control Input
Current Thresholds versus Temperature
100 kHz
44 kHz
142
25 25 50 15012550 0 75 100
76.2
76.4
TEMPERATURE (°C)
76.6
76.8
77.0
77.2
77.4
77.6
MAXIMUM DUTY CYCLE (%)
25 25 50 15012550 0 75 100
35
TEMPERATURE (°C)
40
55
SINK CONTROL CURRENT THRESHOLD (A)
45
50 CURRENT RISING
CURRENT FALLING
VCC = VCC(off)
VCC = VCC(on)
VCC = VCC(off)
VCC = VCC(on)
VCC = VCC(off)
2
1
30
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Figure 11. Upper Window Control Input
Current Thresholds versus Temperature
50 25 50 1501250 100
30
TEMPERATURE (°C)
34
Figure 12. Control Input Lower Window Clamp
Voltage versus Temperature
25 25 50 15012550 0 75 100
1.28
1.29
TEMPERATURE (°C)
1.30
1.34
1.36
1.37
1.38
1.39
CLAMP VOLTAGE (V)
38
42
46
50
1.35
CURRENT RISING
CURRENT FALLING
ISINK = 25 A
SOURCE CONTROL CURRENT THRESHOLD (A)
Figure 13. Control Input Upper Window Clamp
Voltage versus Temperature
25 25 50 15012550 0 75 100
4.52
4.54
TEMPERATURE (°C)
4.56
4.58
4.60
4.64
4.66
CLAMP VOLTAGE (V)
4.62
ISOURCE = 25 A
Figure 14. On Resistance versus Temperature
25 25 50 15012550 0 100
0
TEMPERATURE (°C)
10
20
30
40
45
ON RESISTANCE ()
NCP1050,1,2
(ID = 50 mA)
NCP1053,4,5
(ID = 100 mA)
Figure 15. Power Switch and Startup Circuit
Leakage Current versus Voltage
200 400 8000 600
0
APPLIED VOLTAGE (V)
20
40
80
100
120
LEAKAGE CURRENT (A)
60
Figure 16. Power Switch and Startup Circuit
Output Capacitance versus Applied Voltage
100 300 7006000 200 400 500
1
APPLIED VOLTAGE (V)
10
100
CAPACITANCE (pF)
TJ = 40°C
TJ = 25°C
TJ = 125°C
TJ = 25°C
NCP1053,4,5
NCP1050,1,2
1.31
1.33
1.32
25 75
5
15
25
35
75
100 300 700500 900
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Figure 17. Normalized Peak Current Limit
versus Temperature
25 25 50 15012550 0 75 100
0.88
TEMPERATURE (°C)
0.90
0.92
NORMALIZED CURRENT LIMIT
0.94
0.96
0.98
1.00
1.02
Figure 18. Supply Voltage Thresholds versus
Temperature
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
7.2
7.4
SUPPLY THRESHOLD (V)
Figure 19. Undervoltage Lockout Threshold
versus Temperature
25 25 50 15012550 0 75 100
4.34
4.36
TEMPERATURE (°C)
4.38
4.40
4.42
4.52
4.54
4.56
UNDERVOLTAGE THRESHOLD (V)
7.6
7.8
8.0
8.2
8.4
8.6
STARTUP
THRESHOLD
VCC(on)
MINIMUM
OPERATING
THRESHOLD
VCC(off)
4.50
Figure 20. Start Current versus Temperature
25 25 50 15012550 0 75 100
0
TEMPERATURE (°C)
1
2
3
5
6
7
8
START CURRENT (mA)
4VCC = 8.3 V
VCC = 0 V
Figure 21. Startup Current versus Supply
Voltage
134 9702 56
0
SUPPLY VOLTAGE (V)
1
2
3
5
6
7
STARTUP CURRENT (mA)
4
TJ = 25°C
VPIN 5 = 20 V
8
Figure 22. Startup Current versus Pin 5
Voltage
10 10001 100
2
PIN 5 VOLTAGE (V)
0
2
6
8
STARTUP CURRENT (mA)
4
TJ = 25°C
VCC = 0 V
VCC = 8 V
4.44
4.46
4.48
VPIN 5 = 20 V
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Figure 23. Supply Current versus Temperature
(NCP1050/1/2)
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
0.35
0.40
0.45
0.55
SUPPLY CURRENT (mA)
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
0.41
SUPPLY CURRENT (mA)
0.50
0.42
0.43
0.45
0.46
0.47
0.44
Figure 24. Supply Current versus Temperature
(NCP1053/4/5)
25 25 50 15012550 0 75 100
TEMPERATURE (°C)
0.35
0.50
0.55
0.60
0.70
SUPPLY CURRENT (mA)
0.45
Figure 25. Supply Current When Switching
Disable versus Temperature
25 25 50 15012550 0 75 100
0.12
TEMPERATURE (°C)
0.13
0.14
SUPPLY CURRENT (mA)
0.15
0.16
0.18
0.19
0.21
0.17
Figure 26. Supply Current in Fault Condition
versus Temperature
25 25 50 15012550 0 75 100
13.2
TEMPERATURE (°C)
13.3
13.4
SUPPLY VOLTAGE (V)
13.5
13.6
13.8
13.9
14.0
13.7
Figure 27. Supply Voltage versus Temperature
13.0
13.1
136 kHz
100 kHz
44 kHz
136 kHz
100 kHz
44 kHz
0.40
CONDITION:
VCC pin = 1 F to ground
Control pin = open
Drain pin = 1 k to Power Supply,
Increase Voltage Until Switching
0.65
0.48
0.20
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OPERATING DESCRIPTION
Introduction
The NCP105X series represents a new higher level of
integration by providing on a single monolithic chip all of
the active power, control, logic, and protection circuitry
required to implement a high voltage flyback converter and
compliance with very low standby power requirements for
modern consumer electronic power supplies. This device
series is designed for direct operation from a rectified 240
VAC line source and requires minimal external components
for a complete cost sensitive converter solution. Potential
markets include cellular phone chargers, standby power
supplies for personal computers, secondary bias supplies for
microprocessor keepalive supplies and IR detectors. A
description of each of the functional blocks is given below,
and the representative block diagram is shown in Figure 2.
This device series features an active startup regulator
circuit that eliminates the need for an auxiliary bias winding
on the converter transformer, fault logic with a programmable
timer for converter overload protection, unique gated
oscillator configuration for extremely fast loop response with
double pulse suppression, oscillator frequency dithering with
a controlled slew rate driver for reduced EMI,
cyclebycycle current limiting, input undervoltage lockout
with hysteresis, thermal shutdown, and auto restart or latched
off fault detect device options. These devices are available in
economical 8pin PDIP and 4pin SOT223 packages.
Oscillator
The Oscillator is a unique fixedfrequency, dutycycle
controlled oscillator. It charges and discharges an on chip
timing capacitor to generate a precise square wave signal
used to pulse width modulate the Power Switch Circuit.
During the discharge of the timing capacitor, the Oscillator
duty cycle output holds one input of the Driver low. This
action keeps the Power Switch Circuit off, thus limiting the
maximum duty cycle.
A frequency modulation feature is incorporated into the
IC in order to aide in EMI reduction. Figure 3 illustrates this
frequency modulation feature. The power supply voltage,
VCC, acts as the input to the builtin voltage controlled
oscillator. As the VCC voltage is swept across its nominal
operating range of 7.5 to 8.5 V, the oscillator frequency is
swept across its corresponding range.
The center oscillator frequency is internally programmed
for 44 kHz, 100 kHz, or 136 kHz operation with a controlled
charge to discharge current ratio that yields a maximum
Power Switch duty cycle of 77%. The Oscillator
temperature characteristics are shown in Figures 5
through 9. Contact an ON Semiconductor sales
representative for further information regarding frequency
options.
Control Input
The Control Input pin circuit has parallel source follower
input stages with voltage clamps set at 1.35 and 4.6 V.
Current sources clamp the input current through the
followers at approximately 47.5 A with 10 A hysteresis.
When a source or sink current in excess of this value is
applied to this input, a logic signal generated internally
changes state to block power switch conduction. Since the
output of the Control Input sense is sampled continuously
during ton (77% duty cycle), it is possible to turn the Power
Switch Circuit on or off at any time within ton. Because it
does not have to wait for the next cycle (rising edge of the
clock signal) to switch on, and because it does not have to
wait for current limit to turn off, the circuit has a very fast
transient response as shown in Figure 3.
In a typical converter application the control input current
is drawn by an optocoupler. The collector of the optocoupler
is connected to the Control Input pin and the emitter is
connected to ground. The optocoupler LED is mounted in
series with a shunt regulator (typically a TL431) at the DC
output of the converter. When the power supply output is
greater than the reference voltage (shunt regulator voltage
plus optocoupler diode voltage drop), the optocoupler turns
on, pulling down on the Control Input. The control input
logic is configured for line input sensing as well.
Turn On Latch
The Oscillator output is typically a 77% positive duty
cycle square waveform. This waveform is inverted and
applied to the reset input of the turnon latch to prevent any
power switch conduction during the guaranteed off time.
This square wave is also gated by the output of the control
section and applied to the set input of the same latch.
Because of this gating action, the power switch can be
activated when the control input is not asserted and the
oscillator output is high.
The use of this unique gated Turn On Latch over an
ordinary Gated Oscillator allows a faster load transient
response. The power switch is allowed to turn on
immediately, within the maximum duty cycle time period,
when the control input signals a necessary change in state.
Turn Off Latch
A Turn Off Latch feature has been incorporated into this
device series to protect the power switch circuit from
excessive current, and to reduce the possibility of output
overshoot in reaction to a sudden load removal. If the Power
Switch current reaches the specified maximum current limit,
the Current Limit Comparator resets the Turn Off Latch and
turns the Power Switch Circuit off. The turn off latch is also
reset when the Oscillator output signal goes low or the
Control Input is asserted, thus terminating output MOSFET
conduction. Because of this response to control input
signals, it provides a very fast transient response and very
tight load regulation. The turn off latch has an edge triggered
set input which ensures that the switch can only be activated
once during any oscillator period. This is commonly
referred to as double pulse suppression.
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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15
Current Limit Comparator and Power Switch Circuit
The Power Switch Circuit is constructed with a
SENSEFET in order to monitor the drain current. A
portion of the current flowing through the circuit goes into
a sense element, Rsense. The current limit comparator detects
if the voltage across Rsense exceeds the reference level that
is present at its inverting input. If this level is exceeded, the
comparator quickly resets the Turn Off Latch, thus
protecting the Power Switch Circuit.
A Leading Edge Blanking circuit was placed in the current
sensing signal path to prevent a premature reset of the Turn
Off Latch. A potential premature reset signal is generated
each time the Power Switch Circuit is driven into conduction
and appears as a narrow voltage spike across current sense
resistor Rsense. The spike is due to the Power Switch Circuit
gate to source capacitance, transformer interwinding
capacitance, and output rectifier recovery time. The Leading
Edge Blanking circuit has a dynamic behavior that masks the
current signal until the Power Switch Circuit turnon
transition is completed. The current limit propagation delay
time is typically 135 to 165 nanoseconds. This time is
measured from when an overcurrent appears at the Power
Switch Circuit drain, to the beginning of turnoff. Care must
be taken during transformer saturation so that the maximum
device current limit rating is not exceeded.
The high voltage Power Switch Circuit is monolithically
integrated with the control logic circuitry and is designed to
directly drive the converter transformer. Because the
characteristics of the power switch circuit are well known,
the gate drive has been tailored to control switching
transitions to help limit electromagnetic interference (EMI).
The Power Switch Circuit is capable of switching 700 V
with an associated drain current that ranges nominally from
0.10 to 0.68 Amps.
Startup Circuit
Rectified AC line voltage is applied to the Startup Circuit
on Pin 5, through the primary winding. The circuit is
selfbiasing and acts as a constant current source, gated by
control logic. Upon application of the AC line voltage, this
circuit routes current into the supply capacitor typically
connected to Pin 1. During normal operation, this capacitor
is hysteretically regulated from 7.5 to 8.5 V by monitoring
the supply voltage with a comparator and controlling the
startup current source accordingly. This Dynamic
SelfSupply (DSS) functionality offers a great deal of
applications flexibility as well. The startup circuit is rated at
a maximum 700 V (maximum power dissipation limits must
be observed).
Undervoltage Lockout
An Undervoltage Lockout (UVLO) comparator is
included to guarantee that the integrated circuit has
sufficient voltage to be fully functional. The UVLO
comparator monitors the supply capacitor input voltage at
Pin 1 and disables the Power Switch Circuit whenever the
capacitor voltage drops below the undervoltage lockout
threshold. When this level is crossed, the controller enters a
new startup phase by turning the current source on. The
supply voltage will then have to exceed the startup threshold
in order to turn off the startup current source. Startup and
normal operation of the converter are shown in Figure 3.
Fault Detector
The NCP105X series has integrated Fault Detector
circuitry for detecting application fault conditions such as
open loop, overload or a short circuited output. A timer is
generated by driving the supply capacitor with a known
current and hysteretically regulating the supply voltage
between set thresholds. The timer period starts when the
supply voltage reaches the nominal upper threshold of 8.5 V
and stops when the drain current of the integrated circuit
draws the supply capacitor voltage down to the undervoltage
lockout threshold of 7.5 V.
If, during this timer period, no feedback has been applied
to the control input, the fault detect logic is set to indicate an
abnormal condition. This may occur, for example, when the
optocoupler fails or the output of the application is
overloaded or completely shorted. In this case, the part will
stop switching, go into a low power mode, and begin to draw
down the supply capacitor to the reset threshold voltage of
4.5 V. At that time, the startup circuit will turn on again to
drive the supply to the turn on threshold. Then the part will
begin the cycle again, effectively sampling the control input
to determine if the fault condition has been removed. This
mode is commonly referred to as burst mode operation and
is shown is Figure 4.
Proper selection of the supply capacitor allows successful
startup with monotonically increasing output voltage,
without falsely sensing a fault condition. Figure 4 shows
successful startup and the evolution of the signals involved
in the presence of a fault.
Thermal Shutdown
The internal Thermal Shutdown block protects the device
in the event that the maximum junction temperature is
exceeded. When activated, typically at 160°C, one input of
the Driver is held low to disable the Power Switch Circuit.
The Power Switch is allowed to resume operation when the
junction temperature falls below 85°C. The thermal
shutdown feature is provided to prevent catastrophic device
failures from accidental overheating. It is not intended to be
used as a substitute for proper heatsinking.
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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16
APPLICATIONS
Two application examples have been provided in this
document, and they are described in detail in this section.
Figure 28 shows a Universal Input, 6 Watt Converter
Application as well as a 5.5 Watt Charger Application using
the NCP1053 @ 100 kHz. The Charger consists of the
additional components Q1, C13, and R7 through R10, as
shown. These were constructed and tested using the printed
circuit board layout shown in Figure 40. The board consists
of a fiberglass epoxy material (FR4) with a single side of two
ounce per square foot (70 m thick) copper foil. Test data
from the two applications is given in Figures 29 through 39.
Both applications generate a wellregulated output
voltage over a wide range of line input voltage and load
current values. The charger application transitions to a
constant current output if the load current is increased
beyond a preset range. This can be very effective for battery
charger application for portable products such as cellular
telephones, personal digital assistants, and pagers. Using the
NCP105X series in applications such as these offers a wide
range of flexibility for the system designer.
The NCP105X application offers a low cost alternative to
other applications. It uses a Dynamic SelfSupply (DSS)
function to generate its own operating supply voltage such
that an auxiliary transformer winding is not needed. (It also
offers the flexibility to override this function with an
auxiliary winding if ultralow standby power is the
designers main concern.) This product also provides for
automatic output overload, short circuit, and open loop
protection by entering a programmable duty cycle burst
mode of operation. This eliminates the need for expensive
devices overrated for power dissipation or maximum
current, or for redundant feedback loops.
The application shown in Figure 28 can be broken down
into sections for the purpose of operating description.
Components C1, L1 and C6 provide EMI filtering for the
design, although this is very dependent upon board layout,
component type, etc. D1 through D4 along with C2 provide
the AC to bulk DC rectification. The NCP1053 drives the
primary side of the transformer, and the capacitor, C5, is an
integral part of the Dynamic SelfSupply. R1, C3, and D5
comprise an RCD snubber and R2 and C4 comprise a ringing
damper both acting together to protect the IC from voltage
transients greater than 700 volts and reduce radiated noise
from the converter. Diode D6 along with C79, L2, C11, and
C12 rectify the transformer secondary and filter the output
to provide a tightly regulated DC output. IC3 is a shunt
regulator that samples the output voltage by virtue of R5 and
R6 to provide drive to the optocoupler, IC2, Light Emitting
Diode (LED). C10 is used to compensate the shunt regulator.
When the application is configured as a Charger, Q1 delivers
additional drive to the optocoupler LED when in constant
current operation by sampling the output current through R7
and R8.
Component Selection Guidelines
Choose snubber components R1, C3, and D5 such that the
voltage on pin 5 is limited to the range from 0 to 700 volts.
These components protect the IC from substrate injection if
the voltage was to go below zero volts, and from avalanche
if the voltage was to go above 700 volts, at the cost of slightly
reduced efficiency. For lower power design, a simple RC
snubber as shown, or connected to ground, can be sufficient.
Ensure that these component values are chosen based upon
the worstcase transformer leakage inductance and
worstcase applied voltage. Choose R2 and C4 for best
performance radiated switching noise.
Capacitor C5 serves multiple purposes. It is used along
with the internal startup circuitry to provide power to the IC
in lieu of a separate auxiliary winding. It also serves to
provide timing for the oscillator frequency sweep for
limiting the conducted EMI emissions. The value of C5 will
also determine the response during an output fault (overload
or short circuit) or open loop condition as shown in Figure 4,
along with the total output capacitance.
Resistors R5 and R6 will determine the regulated output
voltage along with the reference voltage chosen with IC3.
The base to emitter voltage drop of Q1 along with the
value of R7 will set the fixed current limit value of the
Charger application. R9 is used to limit the base current of
Q1. Component R8 can be selected to keep the current limit
fixed with very low values of output voltage or to provide
current limit foldback with results as shown in
Figures 29 and 33. A relatively large value of R8 allows for
enough output voltage to effectively drive the optocoupler
LED for fixed current limit. A low value of R8, along with
resistor R10, provides for a low average output power using
the fault protection feature when the output voltage is very
low. C13 provides for output voltage stability when the
Charger application is in current limit.
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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17
R5
2.00 k
R6
2.20 k
R4*
1.0 k
C10
0.22
IC3
TL431
2N3904
R9*
22
R7*
0.5 /1 W
IC2
SFH 615A4
R3
47
C12
1.0
C11
220
D6
1N5822
C7
330
C8
330
C9
330
C5
10
D5
MUR160
C2
33
D2
1N4006
D1
1N4006
D3
1N4006
D4
1N4006
L1
10 mH
Vin
85 265 VAC
F1
2.0 A T1
5.25 V
1.2 A
R8*
1.2 /1 W
C1
0.1
NCP1053B
(100 kHz)
C6
100 p
Q1*
L2
5 H
Figure 28. Universal Input 6/5 Watt Converter/Charger Application
COOPER ELECTRONIC TECHNOLOGIES
PART # CTX2215348
PRIMARY: 97 turns of #29 AWG, Pin 4 = start, Pin 5 = finish
SECONDARY: 5 turns of 0.40 mm, Pins 2 and 1 = start, Pins 7 and 8 = finish
GAP: Designed for Total 1.24 mH Primary Inductance
CORE: TSF7070
BOBBIN: Pins 3 and 6 Removed, EE19
T1:
C4
50 p
C3
220 p
R1
91 k
R2
2.2 k
R10*
220
C13*
1.0
* Add Q1, C13, and R7R10, and Change R4 to 2.0 k for Charger Output
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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18
Test Conditions Converter Results Charger Results
Line Regulation Vin = 85 265 VAC; Iout = 120 mA
Vin = 85 265 VAC; Iout = 600 mA
Vin = 85 265 VAC; Iout = 1.2 A
2 mV
1 mV
2 mV
Vin = 85 265 VAC; Iout = 100 mA
Vin = 85 265 VAC; Iout = 500 mA
Vin = 85 265 VAC; Iout = 1.00 A
11 mV
24 mV
41 mV
Load Regulation Vin = 85 VAC; Iout = 120 mA 1.2 A
Vin = 110 VAC; Iout = 120 mA 1.2 A
Vin = 230 VAC; Iout = 120 mA 1.2 A
Vin = 265 VAC; Iout = 120 mA 1.2 A
12 mV
13 mV
12 mV
13 mV
Vin = 85 VAC; Iout = 100 mA 1.00 A
Vin = 110 VAC; Iout = 100 mA 1.00 A
Vin = 230 VAC; Iout = 100 mA 1.00 A
Vin = 265 VAC; Iout = 100 mA 1.00 A
58 mV
65 mV
71 mV
67 mV
Output Ripple Vin = 110 VAC; Iout = 1.2 A
Vin = 230 VAC; Iout = 1.2 A
86 mVpp
127 mVpp
Vin = 110 VAC; Iout = 1.00 A
Vin = 230 VAC; Iout = 1.00 A
80 mVpp
155 mVpp
Efficiency Vin = 110 VAC; Iout = 1.2 A
Vin = 230 VAC; Iout = 1.2 A
72.4%
69.6%
Vin = 110 VAC; R8 = 1.2 , Iout = 1.00 A
Vin = 230 VAC; R8 = 1.2 , Iout = 1.00 A
54.6%
53.6%
Vin = 110 VAC; R8 = 0 , Iout = 1.00 A
Vin = 230 VAC; R8 = 0 , Iout = 1.00 A
66.1%
63.3%
No Load Input Power Vin = 110 VAC; Iout = 0 A
Vin = 230 VAC; Iout = 0 A
100 mW
200 mW
100 mW
200 mW
Standby Output Power Vin = 110 VAC; Pin = 1 W
Vin = 230 VAC; Pin = 1 W
680 mW
630 mW
640 mW
540 mW
Short Circuit Load Input Power Vin = 110 VAC; Vout = 0 V (Shorted)
Vin = 230 VAC; Vout = 0 V (Shorted)
400 mW
550 mW
Vin = 110 VAC; R8 = 1.2 , Vout = 0 V (Shorted)
Vin = 230 VAC; R8 = 1.2 , Vout = 0 V (Shorted)
750 mW
900 mW
Vin = 110 VAC; R8 = 0 , Vout = 0 V (Shorted)
Vin = 230 VAC; R8 = 0 , Vout = 0 V (Shorted)
700 mW
850 mW
Figure 29. Converter and Charger Test Data Summary
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19
Figure 30. Converter Line Regulation
180 28080 130 230
5.208
LINE INPUT VOLTAGE (VAC)
5.210
5.212
5.214
5.218
5.220
5.224
OUTPUT VOLTAGE (VDC)
Figure 31. Charger Line Regulation
Figure 32. Converter Load Regulation
120 0.5 1.5
0
LOAD CURRENT (A)
1
2
OUTPUT VOLTAGE (V)
Figure 33. Charger Load Regulation
3
4
5
6
Figure 34. Converter Load Transient Response Figure 35. Charger Load Transient Response
Iout = 120 mA
Iout = 600 mA
Iout = 1.2 A
Vin = 85 VAC
Vin = 110 VAC
Vin = 230 VAC
Vin = 265 VAC
180 28080 130 230
5.14
LINE INPUT VOLTAGE (VAC)
5.18
5.19
5.20
5.21
5.22
5.23
OUTPUT VOLTAGE (VDC)
Iout = 100 mA
Iout = 500 mA
Iout = 1 A
1.0 1.50
0
LOAD CURRENT (A)
1
2
OUTPUT VOLTAGE (V)
3
4
5
6
0.5
5.216
5.222
5.15
5.16
5.17
Vin = 85 VAC
Vin = 110 VAC
Vin = 230 VAC
Vin = 265 VAC
Ch1: Vout
Ch2: Iout = 0.2 A/div
(Vin = 230 VAC)
Ch1: Vout
Ch2: Iout = 0.2 A/div
(Vin = 230 VAC)
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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Vin = 85 VAC
Vin = 85 VAC
Vin = 265 VAC
Figure 36. Converter Efficiency
1.00 0.5 1.5
50
LOAD CURRENT (A)
55
60
65
70
75
EFFICIENCY (%)
Figure 37. Charger Efficiency
Figure 38. Converter On/Off Line Transient
Response
Figure 39. Charger On/Off Line Transient
Response
Vin = 110 VAC
Vin = 230 VAC
Vin = 265 VAC
0.5 1.50 1.0
45
LOAD CURRENT (A)
50
55
65
EFFICIENCY (%)
Vin = 110 VAC
Vin = 230 VAC
60
70
Ch1: Vout
Ch2: Rectified Vin
(Vin = 230 VAC,
Iout = 0.5 A)
Ch1: Vout
Ch2: Rectified Vin
(Vin = 230 VAC,
Iout = 0.5 A)
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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BOARD GRAPHICS
Figure 40. Printed Circuit Board and Component Layout
D1
D2
D4
D3
D6
DC Output
R5
IC3
L2
+
+
R3
R6
C10
+
+
C11
+
C12
IC2
C9
C8
C7
C6
T1
C2 +
IC1
+
C5
D5
R1
C3
C4
R2
L1
C1
F1
AC Input
R4
R9
R8
Q1
R7
NCP1050
Series
Top View
Bottom View
2.75
2.25
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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DEVICE ORDERING INFORMATION (Note 9)
Device
RDS(on)
(W)
Ipk
(mA) Package Shipping
NCP1050P44G 30 100 PDIP8
(PbFree)
50 Units / Rail
NCP1050P100G 30 100 PDIP8
(PbFree)
50 Units / Rail
NCP1050P136G 30 100 PDIP8
(PbFree)
50 Units / Rail
NCP1050ST44T3G 30 100 SOT223
(PbFree)
4000 / Tape & Reel
NCP1050ST100T3G 30 100 SOT223
(PbFree)
4000 / Tape & Reel
NCP1050ST136T3G 30 100 SOT223
(PbFree)
4000 / Tape & Reel
NCP1051P44G 30 200 PDIP8
(PbFree)
50 Units / Rail
NCP1051P100G 30 200 PDIP8
(PbFree)
50 Units / Rail
NCP1051P136G 30 200 PDIP8
(PbFree)
50 Units / Rail
NCP1051ST44T3G 30 200 SOT223
(PbFree)
4000 / Tape & Reel
NCP1051ST100T3G 30 200 SOT223
(PbFree)
4000 / Tape & Reel
NCP1051ST136T3G 30 200 SOT223
(PbFree)
4000 / Tape & Reel
NCP1052P44G 30 300 PDIP8
(PbFree)
50 Units / Rail
NCP1052P100G 30 300 PDIP8
(PbFree)
50 Units / Rail
NCP1052P136G 30 300 PDIP8
(PbFree)
50 Units / Rail
NCP1052ST44T3G 30 300 SOT223
(PbFree)
4000 / Tape & Reel
NCP1052ST100T3G 30 300 SOT223
(PbFree)
4000 / Tape & Reel
NCP1052ST136T3G 30 300 SOT223
(PbFree)
4000 / Tape & Reel
NCP1053P44G 15 400 PDIP8
(PbFree)
50 Units / Rail
NCP1053P100G 15 400 PDIP8
(PbFree)
50 Units / Rail
NCP1053P136G 15 400 PDIP8
(PbFree)
50 Units / Rail
NCP1053ST44T3G 15 400 SOT223
(PbFree)
4000 / Tape & Reel
NCP1053ST100T3G 15 400 SOT223
(PbFree)
4000 / Tape & Reel
NCP1053ST136T3G 15 400 SOT223
(PbFree)
4000 / Tape & Reel
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Spe-
cifications Brochure, BRD8011/D.
9. Consult factory for additional optocoupler failsafe latching, frequency, current limit and line input options.
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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23
DEVICE ORDERING INFORMATION (Note 9)
Device Shipping
Package
Ipk
(mA)
RDS(on)
(W)
NCP1054P44G 15 530 PDIP8
(PbFree)
50 Units / Rail
NCP1054P100G 15 530 PDIP8
(PbFree)
50 Units / Rail
NCP1054P136G 15 530 PDIP8
(PbFree)
50 Units / Rail
NCP1054ST44T3G 15 530 SOT223
(PbFree)
4000 / Tape & Reel
NCP1054ST100T3G 15 530 SOT223
(PbFree)
4000 / Tape & Reel
NCP1054ST136T3G 15 530 SOT223
(PbFree)
4000 / Tape & Reel
NCP1055P44G 15 680 PDIP8
(PbFree)
50 Units / Rail
NCP1055P100G 15 680 PDIP8
(PbFree)
50 Units / Rail
NCP1055P136G 15 680 PDIP8
(PbFree)
50 Units / Rail
NCP1055ST44T3G 15 680 SOT223
(PbFree)
4000 / Tape & Reel
NCP1055ST100T3G 15 680 SOT223
(PbFree)
4000 / Tape & Reel
NCP1055ST136T3G 15 680 SOT223
(PbFree)
4000 / Tape & Reel
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Spe-
cifications Brochure, BRD8011/D.
9. Consult factory for additional optocoupler failsafe latching, frequency, current limit and line input options.
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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24
PACKAGE DIMENSIONS
PDIP8
P SUFFIX
CASE 626A01
ISSUE O
NOTES:
1. DIMENSIONING AND TOLERANCING PER ANSI
Y14.5M, 1982.
2. CONTROLLING DIMENSION: MILLIMETER.
3. PACKAGE CONTOUR OPTIONAL (ROUND OR
SQUARE CORNERS).
4. DIMENSION L TO CENTER OF LEAD WHEN
FORMED PARALLEL.
5. DIMENSIONS A AND B ARE DATUMS.
14
58
F
NOTE 3
T
SEATING
PLANE
H
J
G
DK
N
C
L
M
M
A
M
0.13 (0.005) B M
T
DIM MIN MAX MIN MAX
INCHESMILLIMETERS
A9.40 10.16 0.370 0.400
B6.10 6.60 0.240 0.260
C3.94 4.45 0.155 0.175
D0.38 0.51 0.015 0.020
F1.02 1.78 0.040 0.070
G2.54 BSC 0.100 BSC
H0.76 1.27 0.030 0.050
J0.20 0.30 0.008 0.012
K2.92 3.43 0.115 0.135
L7.62 BSC 0.300 BSC
M--- 10 --- 10
N0.76 1.01 0.030 0.040
__
B
A
NCP1050, NCP1051, NCP1052, NCP1053, NCP1054, NCP1055
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SOT223 (TO261)
CASE 318E04
ISSUE M
A1
b1
D
E
b
e
e1
4
123
0.08 (0003)
A
L1
C
NOTES:
C. DIMENSIONING AND TOLERANCING PER ANSI
Y14.5M, 1982.
D. CONTROLLING DIMENSION: INCH.
1.5
0.059 ǒmm
inchesǓ
SCALE 6:1
3.8
0.15
2.0
0.079
6.3
0.248
2.3
0.091
2.3
0.091
2.0
0.079
HE
DIM
A
MIN NOM MAX MIN
MILLIMETERS
1.50 1.63 1.75 0.060
INCHES
A1 0.02 0.06 0.10 0.001
b0.60 0.75 0.89 0.024
b1 2.90 3.06 3.20 0.115
c0.24 0.29 0.35 0.009
D6.30 6.50 6.70 0.249
E3.30 3.50 3.70 0.130
e2.20 2.30 2.40 0.087
0.85 0.94 1.05 0.033
0.064 0.068
0.002 0.004
0.030 0.035
0.121 0.126
0.012 0.014
0.256 0.263
0.138 0.145
0.091 0.094
0.037 0.041
NOM MAX
L1 1.50 1.75 2.00 0.060
6.70 7.00 7.30 0.264
0.069 0.078
0.276 0.287
HE
e1
0°10°0°10°
qq
*For additional information on our PbFree strategy and soldering
details, please download the ON Semiconductor Soldering and
Mounting Techniques Reference Manual, SOLDERRM/D.
SOLDERING FOOTPRINT*
ON Semiconductor and are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice
to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability
arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages.
“Typical” parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All
operating parameters, including “Typicals” must be validated for each customer application by customer’s technical experts. SCILLC does not convey any license under its patent rights
nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications
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