VIPER20-E STMicroelectronics, VIPER20-E Datasheet

IC SWIT SMPS CM OTP PENTAWATT5

VIPER20-E

Manufacturer Part Number
VIPER20-E
Description
IC SWIT SMPS CM OTP PENTAWATT5
Manufacturer
STMicroelectronics
Series
VIPER™r
Datasheet

Specifications of VIPER20-E

Output Isolation
Isolated
Frequency Range
90 ~ 200kHz
Voltage - Input
8 ~ 15 V
Voltage - Output
620V
Power (watts)
57W
Operating Temperature
25°C ~ 125°C
Package / Case
Pentawatt-5 HV (Bent and Staggered Leads)
Mounting Style
Through Hole
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
497-6794-5
VIPER20-E

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Quantity
Price
Part Number:
VIPER20-E
Manufacturer:
ST
0
General Features
Block Diagram
September 2005
VIPer20-E/DIP-E
ADJUSTABLE SWITCHING FREQUENCY UP
TO 200 kHz
CURRENT MODE CONTROL
SOFT START AND SHUTDOWN CONTROL
AUTOMATIC BURST MODE OPERATION IN
STAND-BY CONDITION ABLE TO MEET
“BLUE ANGEL” NORM (<1w TOTAL POWER
CONSUMPTION)
INTERNALLY TRIMMED ZENER
REFERENCE
UNDERVOLTAGE LOCK-OUT WITH
HYSTERESIS
INTEGRATED START-UP SUPPLY
OVER-TEMPERATURE PROTECTION
LOW STAND-BY CURRENT
ADJUSTABLE CURRENT LIMITATION
Type
VDD
13 V
V
620V
DSS
_
+
AMPLIFIER
ERROR
0.5 V
LOGIC
0.5A
UVLO
I
n
ON/OFF
4.5 V
+
_
SECURITY
LATCH
R/S
R
OVERTEMP.
DETECTOR
16
DS(on)
delay
1.7
µs
FF
S
Q
LATCH
PWM
OSCILLATOR
R1
R2 R3
COMP
OSC
FF
S
Description
VIPer20-E
Technology, combines on the same silicon chip a
state-of-the-art PWM circuit together with an
optimized, high voltage, Vertical Power MOSFET
(620V/ 0.5A).
Typical applications cover offline power supplies
with a secondary power capability of 10W in wide
range condition and 20W in single range or with
doubler configuration. It is compatible from both
primary or secondary regulation loop despite
using around 50% less components when
compared with a discrete solution. Burst mode
operation is an additional feature of this device,
offering the ability to operate in stand-by mode
without extra components.
PENTAWATT HV
Q
Blanking
250 ns
/
DIP-E,
+
_
PENTAWATT HV (022Y)
+
SMPS PRIMARY I.C.
0.5V
_
AMPLIFIER
CURRENT
made
6 V/A
VIPer20DIP-E
SOURCE
DRAIN
using
VIPer20-E
VIPower
DIP-8
www.st.com
Rev 1
1/31
M0
31

Related parts for VIPER20-E

VIPER20-E Summary of contents

Page 1

... OSC ON/OFF OSCILLATOR SECURITY PWM LATCH LATCH S UVLO LOGIC OVERTEMP. DETECTOR 1.7 0 250 ns µs Blanking _ delay 4.5 V COMP VIPer20-E VIPer20DIP-E SMPS PRIMARY I.C. DIP-8 PENTAWATT HV (022Y) DIP-E, made using VIPower / DRAIN 0. V/A _ CURRENT AMPLIFIER SOURCE M0 Rev 1 1/31 www.st.com 31 ...

Page 2

... OSC Pin (Oscillator Frequency Typical Circuit . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 10 5 Operation Description . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 11 5.1 Current Mode Topology .11 5.2 Stand-by Mode . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .11 5.3 High Voltage Start-up Current Suorce . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 12 5.4 Transconductance Error Amplifier . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 13 5.5 External Clock Synchronization 5.6 Primary Peak Current Limitation . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 14 5.7 Over-Temperature Protection . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 14 5.8 Operation Pictures . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 15 2/31 VIPer20-E/DIP-E ...

Page 3

... VIPer20-E/DIP-E 6 Electrical Over Stress . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 21 6.1 Electrical Over Stress Ruggedness . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 21 7 Layout . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 22 7.1 Layout Considerations . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 22 8 Package Mechanical Data . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 23 9 Order Codes . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 29 10 Revision history . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 30 3/31 ...

Page 4

... Avalanche Drain-Source Current, Repetitive or Not Repetitive D(AR 100°C; Pulse width limited Power Dissipation at T TOT T Junction Operating Temperature J T Storage Temperature STG 4/31 Parameter = 25 to 125°C) J max; δ < 1 25ºC C VIPer20-E/DIP-E Value Unit –0.3 to 620 V Internally limited ±2 mA 4000 V 0 ° ...

Page 5

... VIPer20-E/DIP-E 1.2 Electrical Characteristics T = 25° 13V, unless otherwise specified J DD Table 2. Power Section Symbol Parameter BV Drain-Source Voltage DS I Off-State Drain DSS Current R Static Drain-Source DS(on) On Resistance t Fall Time f t Rise Time r C Output Capacitance oss (1) On Inductive Load, Clamped. Table 3. ...

Page 6

... DD V =2.5V; V =12V COMP DD Test Conditions‘ COMP I = 10mA DPEAK V = 12V; COMP pin open Test Conditions‘ (see Figure 8) (see Figure 8) (see Figure 8) (see Figure 8) VIPer20-E/DIP-E Min Typ Max Unit 12 150 KHz 1.1 1.5 1.9 mA/V 0.2 V 4.5 V -600 µ ...

Page 7

... VIPer20-E/DIP-E 2 Thermal Data Table 8. Thermal data Symbol R Thermal Resistance Junction-case thJC R Thermal Resistance Ambient-case thJA Parameter Max Max 2 Thermal Data PENTAWATT HV Unit °C/W 1.9 °C/W 60 7/31 ...

Page 8

... COMP pin is shorted to DD voltage, which cannot overpass 13V. The output voltage DD VIPer20-E/DIP-E goes below DD at 13V. For secondary regulation, a pin by transformer design, in order to DD ...

Page 9

... VIPer20-E/DIP-E 3.5 OSC Pin (Oscillator Frequency network must be connected on that to define the switching frequency. Note that t t despite the connection of R from 8V to 15V. It provides also a synchronisation capability, when connected to an external frequency source. Figure 1. Connection Diagrams (Top View) PENTAWATT HV Figure 2. ...

Page 10

... Offline Power Supply With Auxiliary Supply Feedback F1 TR2 Figure 4. Offline Power Supply With Optocoupler Feedback 10/31 BR1 VDD DRAIN - OSC + 13V COMP SOURCE C6 C11 R3 BR1 VDD DRAIN - OSC VIPer20 + 13V COM P SOURCE C6 C11 R 3 VIPer20-E/DIP-E TR1 C10 VIPer20 FC00401 TR1 Vcc C00411 +Vcc GND ...

Page 11

... Current Mode Topology: The current mode control method, like the one integrated in the VIPer20-E, uses two control loops - an inner current control loop and an outer loop for voltage control. When the Power MOSFET output transistor is on, the inductor current (primary side of the transformer) is monitored with a SenseFET technique and converted into a voltage V current ...

Page 12

... The equivalent switching frequency is also lower than the normal one, leading to a reduced consumption on the input main supply lines. This mode of operation allows the VIPer20-E to meet the new German "Blue Angel" Norm with less than 1W total power consumption for the system when working in stand-by mode ...

Page 13

... Figure 18) shutdown. Once the "Shutdown" signal has been activated, the device remains in the Off state until the input voltage is removed. 5.4 Transconductance Error Amplifier The VIPer20-E includes a transconductance error amplifier. Transconductance Gm is the change in output current (I ∂l COMP G = ------------------ - ∂ ...

Page 14

... The device is automatically restarted when the junction temperature decreases to the restart temperature threshold that is typically 40ºC below the shutdown value 14/31 Figure 22 . The circuit based on Q1, R – 0 the range of 220K Ω VIPer20-E/DIP-E and R clamps the voltage (see Figure 13) ...

Page 15

... VIPer20-E/DIP-E 5.8 Operation Pictures Figure 5. V Regulation Point Slope = A/V COM COM PLO V DDreg Figure 7. Transition Time I D 10% Ipeak Figure 9. Breakdown Voltage vs. Temperature Figure 10. Typical Frequency Variation 1.15 BV DSS (Normalized) 1.1 1. Temperature (°C) Figure FC00150 Figure FC00160 ...

Page 16

... Operation Description Figure 11. Behaviour of the high voltage current source at start-up VDD VDDon VDDoff t Figure 12. Start-Up Waveforms 16/ VDD VDD Ref. UNDERVOLTAGE Auxiliary primary LOCK OUT LOGIC winding VIPer20 Start up duty cycle ~ 12% VIPer20-E/DIP-E DRAIN 3 mA SOURCE FC00101A ...

Page 17

... VIPer20-E/DIP-E Figure 13. Over-temperature Protection Operation Description 17/31 ...

Page 18

... Ct = 1.5 nF 500 300 Ct = 4.7 nF 200 100 18/31 For R CLK FC 00050 Forbidden area Ct(nF) = Forbidden area 40kHz Oscillator frequency vs Rt and 2 (kΩ) VIPer20-E/DIP-E > 1.2k Ω and C ≤ 40KHz t t 2.3 550 ⋅ ---------- - 1 – ------------------- - ⎛ ⎞ – 150 ⎠ 880 ...

Page 19

... VIPer20-E/DIP-E Figure 15. Error Amplifier frequency Response 60 RCOMP = +∞ RCOMP = 270k 40 RCOMP = 82k RCOMP = 27k RCOMP = 12k 20 0 (20) 0.001 Figure 16. Error Amplifier Phase Response 200 150 100 50 0 (50) 0.001 0.01 0 Frequency (kHz) 0.01 0 Frequency (kHz) 5 Operation Description FC00200 100 1,000 FC00210 RCOMP = +∞ ...

Page 20

... Figure 21. External Clock Sinchronisation OSC 10 kΩ 20/ AUXILIARY W INDING R2 Shutdown + C2 FC00431 Figure 20. Slope Compensation DRAIN Figure 22. Current Limitation Circuit Example VIPer20 VDD DRAIN - + 13V COMP SOURCE FC00470 VIPer20-E/DIP-E VIPer20 R1 VDD Q2 - OSC 13V + COMP SOURCE FC00440 R2 R1 VIPer20 VDD DRAIN - OSC + 13V ...

Page 21

... VIPer20-E/DIP-E 6 Electrical Over Stress 6.1 Electrical Over Stress Ruggedness The VIPer may be submitted to electrical over-stress, caused by violent input voltage surges or lightning. Following the Layout Considerations is sufficient to prevent catastrophic damages most of the time. However in some cases, the voltage surges coupled through the transformer ...

Page 22

... Signal components C2, ISO1, C3, and C4 are using a dedicated track connected directly to the power source of the device. Figure 24. Recommended Layout R1 C1 OSC From input diodes bridge U1 VIPerXX0 C2 22/31 (see Figure D2 VDD DRAIN - C5 + 13V COMP SOURCE R2 C3 ISO1 C4 VIPer20-E/DIP-E 24 secondary C7 filtering and load C6 FC00500 ...

Page 23

... VIPer20-E/DIP-E 8 Package Mechanical Data In order to meet environmental requirements, ST offers these devices in ECOPACK packages. These packages have a Lead-free second level interconnect . The category of second Level Interconnect is marked on the package and on the inner box label, in compliance with JEDEC Standard JESD97. The maximum ratings related to soldering conditions are also marked on the inner box label ...

Page 24

... VIPer20-E/DIP-E inch Min. Typ. Max. 0.169 0.189 0.046 0.054 0.094 0.11 0.014 0.022 0.024 0.031 0.193 0.205 0.295 0.307 0.366 0.382 ...

Page 25

... VIPer20-E/DIP-E Pentawatt HV 022Y ( Vertical High Pitch ) Mechanical Data Dim Min. A 4.30 C 1.17 D 2.40 E 0.35 F 0.60 G1 4.91 G2 7. 10.05 L 16.42 L1 14.60 L3 20.52 L5 2.60 L6 15.10 L7 6.00 M 2. Diam 3.65 mm. Typ. Maw. 4.80 1.37 2.80 0.55 0.80 5.21 7.80 9.70 10.40 10.40 17 ...

Page 26

... Package Mechanical Data 26/31 VIPer20-E/DIP-E ...

Page 27

... VIPer20-E/DIP-E Pentawatt HV Tube Shipment ( no suffix ) Base Q.ty 50 1000 Bulk Q.ty Tube length ( ± 0.5 ) 532 33 ± 0 All dimensions are in mm. 8 Package Mechanical Data 27/31 ...

Page 28

... Package Mechanical Data 28/31 VIPer20-E/DIP-E ...

Page 29

... VIPer20-E/DIP-E 9 Order Codes PENTAWATT HV VIPer20-E PENTAWATT HV (022Y) VIPer20-22-E 9 Order Codes DIP-8 VIPer20DIP-E 29/31 ...

Page 30

... Revision history 10 Revision history Date Revision 27-Sep-2005 1 30/31 Initial release. VIPer20-E/DIP-E Changes ...

Page 31

... VIPer20-E/DIP-E Information furnished is believed to be accurate and reliable. However, STMicroelectronics assumes no responsibility for the consequences of use of such information nor for any infringement of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of STMicroelectronics. Specifications mentioned in this publication are subject to change without notice ...

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