CR2424S PHILIPS | Alldatasheet
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Technical content
Product specification Supersedes data of 1995 Apr 04 File under Discrete Semiconductors, SC05
1995 Oct 23
Video driver hybrid amplifier
1995 Oct 23 2
Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S
FEATURES
- Typical transition times (10 to 90%) with CL at 8.5 pF: – 2.2 ns rise and 2.0 ns fall with
35 V (p-p) swing
– 2.3 ns rise and 2.1 ns fall with
40 V (p-p) swing
– 2.5 ns rise and 2.2 ns fall with
50 V (p-p) swing
- Low power consumption
- Minimum small-signal bandwidth 130 MHz
- Very fast slew rate; 15000 V/µs
- Excellent grey-scale linearity
- Unconditional stability
- Gold metallization ensures excellent reliability.
APPLICATIONS
It is designed for application in cathode-ray tube (CRT) drivers in high-resolution colour and monochrome monitors.
DESCRIPTION
Hybrid amplifier module mounted in SOT115L package. PINNING PIN DESCRIPTION 1 input 2 ground 3 ground 5 supply voltage (V 7 ground 8 ground 9 output Fig.1 SOT115L. 1/3 page (Datasheet) 123 5 78 9 Side view MSB048 LIMITING VALUES In accordance with the Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER MIN. MAX. UNIT VS supply voltage (DC) − 70 V Tmb operating mounting base temperature −20 +100 °C Tstg storage temperature −40 +125 °C
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Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S CHARACTERISTICS Tmb =2 5°C; CL = 8.5 pF; measured in test circuit (see Fig.10); unless otherwise specified. Notes 1. Input signal is a 100 kHz square wave of 3.25 V (p-p), with 1.5 V (DC) offset (50Ω source). 2. Input signal is a 100 kHz square wave of 3.4 V (p-p), with 1.65 V (DC) offset (50Ω source). 3. Sine wave output signal: 1 V (p-p). 4. Measured V O /VI (Figs 2 and 6) at input test circuit (see Fig.10). 5. Measured VO /VI (Figs 3 and 7) at input module (see Fig.10). SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT VS = 60 V; output swing = 40 V (p-p) with 30 V (DC) offset; unless otherwise specified IS supply current input and output open 39 45 51 mA VI input voltage (DC) input and output open 1.3 1.6 1.9 V tr rise time transient response 10 to 90%; note 1 − 2.3 2.9 ns tf fall time transient response 10 to 90%; note 1 − 2.1 2.6 ns VS = 65 V; output swing = 50 V (p-p) with 32.5 V (DC) offset; unless otherwise specified IS supply current input and output open − 50 57 mA VI input voltage (DC) input and output open 1.4 1.75 2.1 V tr rise time transient response 10 to 90%; note 2 − 2.5 3.2 ns tf fall time transient response 10 to 90%; note 2 − 2.2 3.2 ns VS = 60 or 65 V; output swing = 40 or 50 V (p-p) with 30 or 32.5 V (DC) offset; unless otherwise specified Ptot total power dissipation 50 MHz square wave − 4.6 6 W BW small-signal bandwidth between −3 dB points; note 3 130 145 − MHz Vtilt low frequency tilt voltage 1 kHz square wave − 1.3 1.5 V Vos overshoot voltage varied by C1; see Fig.10 − 31 0 % NLN non-linearity V O =5t o5 5V − 25% AV DC voltage gain 50 Ω source; note 4 11.2 12.4 13.2 VG insertion gain 50 Ω source; note 5 160 180 200
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Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S Fig.2 Input voltage at input test circuit as a function of output voltage; typical values. VS = 60 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 40 V (p-p) with 30 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MLC954 0 2 04 06 0 V (V)O VI (V) Fig.3 Input voltage at input module as a function of output voltage; typical values. VS = 60 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 40 V (p-p) with 30 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MLC955 1.5 1.7 1.9 1.3 02 0 40 60 VO (V) VI (V) Fig.4 Rise time transient response as a function of load capacitance; typical values. handbook, halfpage MRA627 - 1 1.8 2.2 2.6 3.0 6 8 10 12 14 16 (pF)C L tr (ns)
40 V (p-p)
35 V (p-p)
30 V (p-p)
VS = 60 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 40, 35, 30 V (p-p) with 30 V (DC) offset; measured in test circuit (see Fig.10). Fig.5 Fall time transient response as a function of load capacitance; typical values. VS = 60 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 40, 35, 30 V (p-p) with 30 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MRA628 - 1 6 8 10 12 14 16 tf (ns) C L (pF) 3.0 2.6 2.2 1.8
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Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S Fig.6 Input voltage at input test circuit as a function of output voltage; typical values. VS = 65 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 50 V (p-p) with 32.5 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MLC956 0 2 04 06 08 0 V (V)O VI (V) Fig.7 Input voltage at input module as a function of output voltage; typical values. VS = 65 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 50 V (p-p) with 32.5 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MLC957 1.4 1.6 1.8 2.0 0 2 04 06 08 0 V (V)O VI (V) Fig.8 Rise time transient response as a function of load capacitance; typical values. VS = 65 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 50 V (p-p) with 32.5 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MRA617 - 1 2.2 2.6 3.0 3.4 6 1 01 41 8 (pF)C L tr (ns) Fig.9 Fall time transient response as a function of load capacitance; typical values. VS = 65 V; Tmb =2 5°C; CL = 8.5 pF; output swing = 50 V (p-p) with 32.5 V (DC) offset; measured in test circuit (see Fig.10). handbook, halfpage MRA615 - 1 2.0 2.4 2.8 3.2 61 0 1 4 1 8 tf (ns) C L (pF)
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Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S Fig.10 CRT amplifier test circuit and block diagram. handbook, full pagewidth MAM143 PULSE GENERATOR BIAS UNIT TEST FIXTURE CR2424S POWER SUPPLY FET PROBE SAMPLING OSCILLOSCOPE CR2424S input 50 Ω output V S C L Components used in test circuit(see Fig.10) Equipment used in test circuit(see Fig.10) DESIGNATION DESCRIPTION VALUE C 1 variable capacitor 10 to 120 pF (typ. 50 pF) C 2 chip capacitor 10 nF R1 resistor typ. 215 Ω EQUIPMENT TYPE DESCRIPTION Pulse generator Pico Second; Model 2600B Bias unit Pico Second; Model 5555 Power supply Philips; Model PE1541, 80 V FET probe Philips; Model PM8943, attenuation 100 : 1 Sampling oscilloscope Tektronix; Model 11803, sampling head SD24
1995 Oct 23 7
Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S Fig.11 Internal circuit. handbook, full pagewidth 1 nF pF 680 pF 100 V input output MLC940 supply 150 kΩ 3 kΩ 3 kΩ 6.4 kΩ 10 Ω 47 Ω 6.8 Ω 180 Ω 180 Ω Ω 10 Ω 22 nF 100 V 22 nF 100 V 3.3 nF 100 V 150 pF pF 6.8 Ω Ω 150 pF
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Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S PACKAGE OUTLINE Dimensions in mm. Heatsink compound must be applied sparingly and evenly distributed. Fig.12 SOT115L. handbook, full pagewidth 1 2 357 8 11.5 max MO 0.25 0.51 0.38 (5.08) 2.54 3.15 27.2 max 3.8 max 8.8 min 9.2 max 13.8 max 0.25 2.54 2.4 max 44.8 max 38.1 4.15 3.85 MSA240 - 1
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Philips Semiconductors Product specification Video driver hybrid amplifier CR2424S DEFINITIONS LIFE SUPPORT APPLICATIONS These products are not designed for use in life support appliances, devices, or systems where malfunction of these products can reasonably be expected to result in personal injury. Philips customers using or selling these products for use in such applications do so at their own risk and agree to fully indemnify Philips for any damages resulting from such improper use or sale. Data sheet status Objective specification This data sheet contains target or goal specifications for product development. Preliminary specification This data sheet contains preliminary data; supplementary data may be published later. Product specification This data sheet contains final product specifications. Limiting values Limiting values given are in accordance with the Absolute Maximum Rating System (IEC 134). Stress above one or more of the limiting values may cause permanent damage to the device. These are stress ratings only and operation of the device at these or at any other conditions above those given in the Characteristics sections of the specification is not implied. Exposure to limiting values for extended periods may affect device reliability.
Application information
Where application information is given, it is advisory and does not form part of the specification.