STV9555 ST Microelectronics, STV9555 Datasheet

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STV9555

Manufacturer Part Number
STV9555
Description
9.5 ns TRIPLE-CHANNEL HIGH VOLTAGE VIDEO AMPLIFIER
Manufacturer
ST Microelectronics
Datasheet

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FEATURES
DESCRIPTION
The STV9555 is a triple-channel video amplifier
designed in a 120V-high voltage technology and
able to drive in DC-coupling mode the 3 cathodes
of a CRT monitor.
The
applications where video amplitude up to 50V or
PIN CONNECTIONS
September 2003
9.5 ns TRIPLE-CHANNEL HIGH VOLTAGE VIDEO AMPLIFIER
Triple-channel video amplifier
Supply voltage up to 115 V
80V Output dynamic range
Perfect for PICTURE BOOST application
requiring high video amplitude
Pinning for easy PCB layout
Supports DC coupling (optimum cost saving)
and AC coupling applications.
Built-in Voltage Gain: 20 (Typ.)
Rise and Fall Times: 9.5 ns (Typ.)
Bandwidth: 37 MHz (Typ.)
Very low stand-by power consumption
Perfectly
preamplifiers
STV9555
matched
supports
with
PICTURE
the
STV921x
BOOST
10
11
9
8
7
6
5
4
3
2
1
above is required, ensuring a maximum quality of
the still pictures or moving video.
Perfecly
preamplifiers, it provides a highly performant and
very cost effective video system.
matched
ORDER CODE: STV9555
(Plastic Package)
CLIPWATT 11
OUT1
OUT2
OUT3
GNDP
V
GNDS
GNDA
IN3
V
IN2
IN1
DD
CC
with
the
STV9555
STV921x
Version 4.0
1/24
ST
1

Related parts for STV9555

STV9555 Summary of contents

Page 1

... Rise and Fall Times: 9.5 ns (Typ.) Bandwidth: 37 MHz (Typ.) Very low stand-by power consumption Perfectly matched with preamplifiers DESCRIPTION The STV9555 is a triple-channel video amplifier designed in a 120V-high voltage technology and able to drive in DC-coupling mode the 3 cathodes of a CRT monitor. The STV9555 supports PICTURE ...

Page 2

BLOCK DIAGRAM . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . ...

Page 3

... VDD GNDP REF 2 IN2 Video Input (channel 1) Video Input (channel 2) Low Supply Voltage Video Input (channel 3) Ground Analog Ground Substrat High Supply Voltage Ground Power Video output (channel 3) Video output (channel 2) VIdeo output (channel 1) STV9555 OUT3 9 STV9555 VDD GNDP 4 IN3 Function 3/24 3 ...

Page 4

... STV9555 3 ABSOLUTE MAXIMUM RATINGS Symbol V High supply voltage DD V Low supply voltage CC ESD susceptibility V Human Body Model (100pF discharged through 1.5K ESD EIAJ norm (200pF discharged through 0 I Output source current (pulsed < Output sink current (pulsed < Maximum Input Voltage ...

Page 5

... LE Linearity error V Internal voltage reference REF Note 1: The STV9555 goes into stand-by mode when Vcc is switched off (<1.5V). In stand-by mode, Vout is set to low level. Note 2: Matching measured between each channel. Note 3: Pulsed current width < Test Conditions = 110V, Tamb = 25 °C, unless otherwise specified) ...

Page 6

... Note 5: PICTURE BOOST condition (video amplitude at 50V or above) is used in some applications when displaying still picture or moving video. In this condition the high level of contrast improves the pictures quality at the expense of the video performances (t Figure 1. AC test circuit STV9555 6/24 3 Test Conditions 1) V =50V, V=40V DC ...

Page 7

... THEORY OF OPERATION 6.1 General The STV9555 is a three-channel video amplifier supplied by a low supply voltage: V high supply voltage: V (up to 115V). DD The high values of V supplying the amplifier output stage allow direct control of the CRT cathodes (DC DD coupling mode coupling mode, the application schematic is very simple and only a few external components are needed to drive the cathodes ...

Page 8

... STV9555 6.2 Output voltage A very simplified schematic of each STV9555 channel is shown in The feedback network of each channel is integrated with a typical built-in voltage gain of G=20 (40k/2k). The output voltage V is given by the following formula: OUT V = (G+ REF OUT for and V = 5.6V, we have ...

Page 9

... We have 2.13 W and P STAT DYN Therefore 4.79W. TOT Note 6: This worst thermal case must only be considered for TJmax calculation. Nevertheless, during the average life of the circuit, the conditions are closer to the white picture conditions CC (see Note 6) = 2.66 W STV9555 9/24 ...

Page 10

... STV9555 8 TYPICAL PERFORMANCE CHARACTERISTICS V =110V, V =12V, C =8pF Figure 4. STV9555 pulse response tr= 8.3ns Overshoot = 5% tf= 10.3ns Overshoot = 0% Figure 6. Power dissipation versus frequency 6.00 5.00 Vdd=100V 4.00 Vdd=90V 3.00 2.00 1.00 0. Frequency (MHz) (72% active time) Figure 8. Speed versus offset Offset (Vdc) ...

Page 11

... INTERNAL SCHEMATICS Figure 10. RGB inputs VCC IN pins GNDS Figure 12. VDD GNDS Figure 14. GNDP GNDS Figure 11. RGB outputs Figure 13. VCC VDD Figure 15. GNDA GNDA GNDP STV9555 VDD OUT pins 9, 10, 11 GNDS VCC GNDS GNDS 11/24 ...

Page 12

... STV9555 10 APPLICATION HINTS 10.1 How to choose the high supply voltage value (V The V high supply voltage must be chosen carefully. It must be high enough to provide the necessary DD video adjustment but set to minimum value to avoid unecessary power dissipation. Example (see Figure 2): The following example shows how the optimum V – ...

Page 13

... Grounding separation: In order to set apart the amplifer ground and CRT ground, the R29/C29 net- work (Figure 16) can be used. Amplifier grounding: The 3 grounds GNDS, GNDA and GNDP must be connected together as close as possible to the device R19(**) 33-40 C24 4.7 F/150V D12 FDH400 L1 R10 0.33 H 110 /0.5W D13 C29(***) FDH400 0.22 F R29(***) 1-10 STV9555 C18 100nF A R11 CRT 110 /0.5W F1 Spark gap B 200V 13/24 ...

Page 14

... Input Networks (Network #2 and #3 below) can be used in replacement of the reference Input Network #1. See Application note AN1510 for complete description. Input Network # 10pF 14/24 R C11 C10(*) C12(*) 4.7 F 100nF 100nF STV9555 10pF REF GNDS GNDA Input Network # 15pF /t >5.5ns. F C24 4.7 F R19(***) ...

Page 15

... Reducing this capacitive load is achieved by moving away the output tracks from the other tracks (especially ground) and by using thin tracks (<0.5mm), see Cross talk: Output and input tracks must be set apart. The STV9555 pin-out allows the easy separa- tion of input and output tracks on opposite sides of the amplifier (see Length: Connection between amplifier output and cathode must be as short and direct as possible ...

Page 16

... Input Networks #2 and #3 can be used as well The advantage of such an architecture is to use smaller V consumption. This is due to the fact that the STV9555 provides only the video signal and not the cut-off adjustment. The disadvantage is to have an application with more components (DC restore circuitry). ...

Page 17

... Stand-by mode, spot suppression The usual way to set a monitor in stand-by mode is to switch-off the Vcc (12V). The STV9555 has an extremely low power consumption (I and the outputs are set to low level (white picture). To avoid the display of a spot effect during the switch-off phase necessary to adjust the G1 circuitry ...

Page 18

... STV9555 10.10 Conclusion Video response is always a compromise between several parameters. For example, the rise/fall time improvement leads to the overshoot deterioration. The recommended way to optimize the video response is set R10+R11 for arcing protection (min. 200 2. To adjust R20 and R10+R11. Increasing their value increases the ...

Page 19

... Figure 20. STV9555/9553/9556 + TDA9210/STV9211 + STV9936S/P DC-coupling demonstration board: Silk Screen and Trace STV9555 19/24 ...

Page 20

... STV9555 Figure 21. Outputs trace (from figure 19) Figure 22. CRT socket trace (from figure 19) 20/24 ...

Page 21

... Figure 23. STV9555/53/56 + STV9936 + TDA9210/STV9211 DC-coupling demo-board schematic Vdd 7 Vcc 3 GND 12 GND GNDP 8 GNDS 6 GNDA 5 STV9555 21/24 ...

Page 22

... STV9555 11 PACKAGE MECHANICAL DATA 11 PIN - CLIPWATT LEAD Dimensions Min. A 2. 1.3 E 0. 1 18.55 H3 19.9 L 17.7 L1 14.35 L2 10.9 L3 5.4 M 2.34 M1 2.34 R 1.45 22/ Millimeters Typ. Max. 3 3.05 1 1.05 0.15 - 1.5 1.7 0.515 0.55 0.8 0.86 0.05 0.1 1.7 1 18.6 18.65 20 20.1 17.9 18.1 14.55 14.65 11 11.1 5.5 5.6 2.54 2.74 2.54 2. Shaded area ewposed from plastic body ...

Page 23

... Mold flash or protrusions shall not exceed 0.15mm per side. Note 6: No intrusions allowed inwards the leads Critical dimensions: Lead split (M1) Total length (L) Millimeters Typ. Max. 3.3 3.4 0.3 - 0.5 - 0.7 0.75 10deg. 5deg. 75deg. STV9555 Inches Min. Typ. Max. 0.126 0.13 0.134 - 0.012 - 0.019 0.025 0.027 0.029 10deg. 5deg. 75deg. - ...

Page 24

... STV9555 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 ...

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