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TDA9535STN/a806avai9.5NS TRIPLE HIGH VOLTAGE VIDEO AMPLIFIER


TDA9535 ,9.5NS TRIPLE HIGH VOLTAGE VIDEO AMPLIFIERTDA95359.5NS TRIPLE HIGH VOLTAGE VIDEO AMPLIFIERPRELIMINARY DATAFEATUREn TRIPLE CHANNEL VIDEO AMPLI ..
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TDA9535
9.5NS TRIPLE HIGH VOLTAGE VIDEO AMPLIFIER
Version 3.2
March 2000 1/9
TDA9535

9.5NS TRIPLE HIGH VOLT AGE VIDEO AMPLIFIER
PRELIMINARY DATA
FEATURE
TRIPLE CHANNEL VIDEO AMPLIFIER SUPPLY VOLTAGE: 110V TYPICAL RISE AND FALL TIMES: 9.5ns TYPICAL BANDWIDTH: 37MHz TYPICAL 80 VOLTS OUTPUT DYNAMIC RANGE LOW POWER CONSUMPTION WELL MATCHED WITH TDA9210 PREAMP FULL PIN COMPATIBILITY WITH TDA9536
DESCRIPTION

The TDA9535isa triple video amplifier with high
voltage Bipolar/CMOS/DMOS technology (BCD)
for usein color monitor application. Used with
TDA9210 preampin DC coupled mode,it provides
fora low component, high performance and cost
effective system solution. Other features include
1024x 768 displays, pixel clock frequenciesupto
75MHz, and DCor AC coupling designs.
PIN CONNECTIONS
CLIPWATT11
ORDER CODE:
TDA9535
(Plastic Package)
OUT3
GND3
IN3CC
IN2
GND2
OUT2DD
IN1
GND1
OUT11
TDA9535
2/9
BLOCK DIAGRAM
ABSOLUTE MAXIMUM RATINGS
THERMAL DATA
Symbol Parameter Value Unit

VDD High Supply Voltage 120 V
VCC Low Supply Voltage 17 V
VESD ESD Susceptibility
Human Body Model, 100pF. Discharge through 1.5KΩ
EIAJ Norm, 200pF. Discharge through0Ω
IOD Output Source Current (pulsed< 50μs) 80 mA
IOG Output Sink Current (pulsed< 50μs) 80 mA
VIMax Maximum Input Voltage 15 VMin Minimum Input Voltage - 0.5 V Junction Temperature 150 °C
TSTG Storage Temperature -20+ 150 °C
Symbol Parameter Value Unit
th(j-c) Junction-Case Thermal Resistance (Max.) 3 °C/W
Rth (j-a) Junction-Ambient Thermal Resistance (Typ.) 35 °C/W
TDA9535
9116521
OUT3 GND3GND2OUT2GND1OUT1
VDD
VCC
IN3IN2IN1
Vref Vref Vref
TDA9535
3/9
ELECTRICAL CHARACTERISTICS

(VCC= 12V, VDD= 110V, Tamb=25 °C)
Note:1
Pulsed current width< 50μs
Symbol Parameter Test Conditions Min Typ Max Unit

VDD High Supply Voltage (Pin4) 110 115 V
VCC Low Supply Voltage (Pin8) 10 12 15 V
IDD
ICC
High Voltage Supply Internal DC Cur-
rent
Low Voltage Supply Internal DC Current
VOUT= 50V 15
dVOUT/dVDD High Voltage Supply Rejection VOUT= 50V 0.5 %
dVOUT/dTemp Output Voltage Drift Versus
Temperaturefor any Channel VOUT= 80V 15 mV/ OUT SATH
VOUT SATL
Max. Output Voltage
Min. Output Voltage0 =-60mA,(1) =60mA,(1)
VDD-
AVR Typical Video Gain VOUT= 50V 20
Elin Linearity Error 17RIN Video Input Resistor VOUT= 50V 2 KΩ Bandwidthat -3dB VOUT=50V,CLOAD=8pFP =200Ω,ΔV OUT =20V 37 MHz
tR,tF Rise and Fall Time VOUT=50V,CLOAD=8pF
RP=200Ω, ΔVOUT=40V 9.5 nsCTCT
Low Frequency Crosstalk
High Frequency Crosstalk
VOUT=50V,CLOAD=8pF
RP=200 Ω,ΔVOUT=20V1 MHz= 20MHz
TDA9535
4/9
TYPICAL APPLICATION Board Lay-out

The best performanceis obtained witha carefully
designed HF PC board, especially for the output
and input capacitors.
Rise/fall time and bandwidth are measured on 10pF load. The best rise/fall times and band-
width results willbe obtained with low Rp resistor
value while the best CRT arcing protection willbe
obtainedbya high Rp resistor value. Finallya val- between 150 and 220Ω isa good compromise.
Power Dissipation

The power dissipationis the sumof the DC and
the dynamic dissipation. the feedback resistors are integrated, the DC
power dissipation (capacitive load) canbe estimat- by: STAT =VDD.IDD +VCC.ICC
The dynamic dissipationin the worst case (full
bandwidth and black pixel/white pixel picture
(note2)is:
PDYN =3 VDD .CL .VOUT(PP). f.K
wherefis the video frequency andK the active line
duration/ total duration.
Example:
for VDD= 110V, VCC= 12V, VOUT =40 VPP,
IDD= 15mA, ICC= 40mA, fVIDEO= 30MHz,L= 8pF andK= 0.72. have: PSTAT= 2.13W and PDYN= 2.28W
Therefore: Ptot= 4.41W.
Note:2
This worst thermal case must onlybe
consideredfor TJmax calculation.
Nevertheless, during the averagelifeof the
circuit, the conditions are very closeto the
white picture conditions.
TDA9535
75Ω
IN1
IN2
IN3
GND3
OUT3L
GND2
GND1
OUT2
OUT1PP18
75Ω
75Ω
VDDVCC
VCC VDD 110V
TDA9535
5/9
Figure1. TDA9535/9536- TDA9210- Demonstration Board: Silk Screen and Trace (scale 1:1)
TDA9535
6/9
Figure2. TDA9535/9536- TDA9210- Demonstration Board Schematic
A B C D E
Notes:
All
capacitorsfollowed
(1)
are
decoupling
capacitors
which
must
connected
close
possible
the
device
transient
response
optimisation
The
purpose
all
components
followed
(2)
ensure
good
protectionagainst
overvoltage(arcing
protection)
Version
CRT3
with
TDA9210
TDA9535/36
Custom
Wednesday,
February
16,
TitleSize
Document
Number
Rev
Date:
Sheet
GRN
RED
BLU5V
110V
110V
12V
110V
110V
110V
12V
110V
R11
2R7
F2(2)
D7(2)FDH400
C19
10nF
/2KV89
GND
GND
R19
2K7
TDA9535/3625611
OUT1
GND1
IN1
VDD
OUT2
GND2
IN2
VCC
IN3
GND3
OUT3
C10(1)100nF
/250V
C15 47uFC17 47uF
C24 47pF1N4148
C9(1)
100nF
120R
C16 47uF
100nF
R30S_R
R12
15R
R14
120RGND_CRT
R27
150R
R17
15R/33R
100nF
D9(2)FDH400 Video23456789101112
R1075R
C14
10nF
/400V
R28 10R
100R2R7
R29 24R
R31S_R
C1(1)100pF
C7(1)100nF75R
C22(1)
100nF1N4148
R21
2K7
C13
100pF
R24 24R1N4148
15R/33R
J16 Power2345
R18
100R1N4148
R22
120R
0.33uH
J10 I2C234
R16
2R71N4148
75R
C5(1)
100nF
C21100nF
/250V
R15
150R
R32S_R
R20
100R
47uF
F1(2)
R23
150R
C18
4.7uF
/150V1N4148
D2(2)FDH400
150R
C23 47pF
15R
R33 24R
15R
F4(2)
C12100pF
J17 Supply23456
C204.7nF/
1kV
0.33uH
C25 47pF
R26(2)
39R
0.33uH
TDA921023456789121314151617181920
IN1ABLIN2GNDLIN3GNDAVCCAOSD1OSD2OSD3
FBLK
SCLSCA
OUT3
GNDP
OUT2
VCCP
OUT1
BLK
100nF
R13
15R/33R
Heater
Heater
Out
Out
Out
Out
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