LM2408 [NSC]

Monolithic Triple 4.5 ns CRT Driver; 单片三重4.5纳秒的CRT驱动器
LM2408
型号: LM2408
厂家: National Semiconductor    National Semiconductor
描述:

Monolithic Triple 4.5 ns CRT Driver
单片三重4.5纳秒的CRT驱动器

驱动器
文件: 总8页 (文件大小:157K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
December 1996  
LM2408  
Monolithic Triple 4.5 ns CRT Driver  
General Description  
Features  
Y
Rise/fall times typically 4.5 ns with 8 pF load  
The LM2408 is an integrated high voltage CRT driver circuit  
designed for use in color monitor applications. The IC con-  
tains three high input impedance, wide band amplifiers  
which directly drive the RGB cathodes of a CRT. The gain of  
Y
e
e
e
Output swing capability: 50 V for V  
PP  
80  
70  
60  
CC  
CC  
CC  
40 V for V  
PP  
30 V for V  
PP  
b
Y
Y
Y
Y
each channel is internally set at 15 and can drive CRT  
Pinout designed for easy PCB layout  
1V to 7V input range  
capacitive loads as well as resistive loads presented by oth-  
er applications, limited only by the package’s power dissipa-  
tion.  
Stable with 0 pF20 pF capactive loads  
Convenient TO-220 staggered lead package style  
The IC is packaged in an industry standard 11-Lead TO-220  
molded plastic power package. See thermal considerations  
on page 5.  
Applications  
Y
c
display resolution color monitors  
CRT driver for 1280  
1024 (Non-interfaced) and XGA  
Y
Pixel clock frequency up to 160 MHz  
Schematic and Connection Diagrams  
TL/H/12683–2  
Note: Tab is at GND  
Top View  
TL/H/12683–1  
FIGURE 1. Simplified Schematic Diagram (One Channel)  
C
1996 National Semiconductor Corporation  
TL/H/12683  
RRD-B30M126/Printed in U. S. A.  
http://www.national.com  
Absolute Maximum Ratings  
(Notes 1 and 3)  
Operating Ranges (Note 2)  
a
a
60V to 85V  
V
V
V
CC  
BB  
IN  
a
a
Supply Voltage (V  
)
CC  
95V  
16V  
a
a
8V to 15V  
Bias Voltage (V  
BB  
)
a
a
1V to 7V  
b
a
0.5V  
Input Voltage (V  
)
0.5V to V  
BIAS  
b
a
20 C to 100 C  
IN  
Case Temperature (T  
)
§
§
CASE  
b
a
65 C to 150 C  
Storage Temperature Range (T  
)
§
§
STG  
Do not operate the part without a heat sink.  
k
Lead Temperature (Soldering, 10 sec.)  
ESD Tolerance  
300 C  
§
2 kV  
Electrical Characteristics  
e a  
e a  
e a  
e
3.2V (at LM2408 input pins), C  
L
e
8 pF, Output 40 V at  
PP  
Unless otherwise noted: V  
e
80V, V  
12V, V  
CC  
BB  
IN  
1 MHz, T  
25 C.  
§
A
LM2408  
Typical  
22  
Symbol  
Parameter  
Conditions  
Units  
Min  
Max  
I
I
Supply Current  
Bias Current  
Per Channel, No Output Load  
30  
mA  
mA  
CC  
BB  
21  
V
DC Output Voltage  
DC Voltage Gain  
Gain Matching  
Linearity Error  
Rise Time  
No Input Signal  
No Input Signal  
(Note 4)  
47  
50  
53  
V
DC  
OUT  
V
b
b
15  
1.0  
b
17  
A
13  
DA  
dB  
V
LE  
(Notes 4, 5)  
8
%
ns  
ns  
e
e
t
R
t
F
10% to 90%, f  
90% to 10%, f  
1 MHz  
1 MHz  
4.5  
4.5  
Fall Time  
Note 1: Absolute Maximum Ratings indicate limits beyond which damage to the device may occur.  
Note 2: Operating ratings indicate conditions for which the device is functional, but do not guarantee specific performance limits. For guaranteed specifications and  
test conditions, see the Electrical Characteristics. The guaranteed specifications apply only for the test conditions listed. Some performance characteristics may  
change when the device is not operated under the listed test conditions.  
Note 3: All voltages are measured with respect to GND, unless otherwise specified.  
Note 4: Calculated value from Voltage Gain test on each channel.  
e
a
e a  
4.50V.  
IN  
Note 5: Linearity Error is defined as the variation in DC gain from V  
1.90V to V  
IN  
k
F
Note 6: Input from signal generator: t , t  
R
1 ns.  
AC Test Circuit  
TL/H/12683–3  
Note: 8 pF is total load plus parasitic capacitance.  
a
Note: Adjust Vtest for 3.2V DC at LM2408 input pins.  
FIGURE 2. Test Circuit (One Channel)  
Figure 2 shows a typical test circuit for evaluation of the  
LM2408. This circuit is designed to allow testing of the  
LM2408 in a 50X environment, such as a pulse generator,  
oscilloscope or network analyzer. The 4950X resistor at the  
output forms a 100:1 voltage divider when connected to a  
50X load.  
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2
TL/H/12683–4  
TL/H/12683–5  
FIGURE 4. Power Dissipation vs V  
CC  
FIGURE 3. V  
OUT  
vs V  
IN  
TL/H/12683–6  
FIGURE 5. Large Signal Frequency Response  
TL/H/12683–7  
FIGURE 6. Pulse Response  
3
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Theory of Operation  
The LM2408 is a high voltage monolithic triple CRT driver  
er than allowable on the LM2408. This fast, high voltage,  
high energy pulse can damage the LM2408 output stage.  
The addition of clamp diodes D1 and D2 (as shown in Fig-  
ure 7 ) will help clamp the voltage at the output of the  
LM2408 to a safe level. The clamp diodes should have a  
fast transient response, high peak current rating, low series  
impedance and low shunt capacitance. FDH400 or equiva-  
lent diodes are recommended. Resistor R2 in Figure 7 limits  
the arcover current while R1 limits the current into the  
LM2408 and reduces the power dissipation of the output  
transistors when the output is stressed beyond the supply  
voltage. Peaking inductor Lp also helps protect the LM2408  
from CRT arcover, and is part of the arc protection circuit.  
Having large value resistors for R1 and R2 would be desir-  
able, but this has the effect of increasing rise and fall times.  
For proper arc protection, it is important to not omit any of  
the arc protection components shown in Figure 7.  
suitable for SVGA and XGA display applications. The  
a
LM2408 features 80V operation and low power dissipa-  
tion. The part is housed in the industry standard 11-Lead  
TO-220 molded plastic power package.  
The simplified circuit diagram of the LM2408 is shown in  
Figure 1. A PNP emitter follower, Q1, provides input buffer-  
ing. Q2 and Q3 form a high gain amplifier. Feedback around  
this amplifier through the 15 kX resistor, working with the  
b
1 kX input resistor, sets the gain to 15. Emitter followers  
Q5 and Q6 isolate the high output impedance of the amplifi-  
er from the capacitance of the CRT cathode, and make the  
circuit relative insensitive to load capacitance.  
Figure 2 shows a typical test circuit for evaluation of the  
LM2408. This circuit is designed to allow testing of the  
LM2408 in a 50X environment, such as a pulse generator  
and a scope, or a network analyzer. In this test circuit, two  
low inductance resistors in series totaling 4.95 kX form a  
100:1 wideband low capacitance probe when connected to  
a 50X cable and load. The input signal from the generator is  
AC coupled to the base of Q1.  
Application Hints  
INTRODUCTION  
National Semiconductor is committed to providing applica-  
tion information that assists our customers in obtaining the  
best performance possible from our products. The following  
information is provided in order to support this commitment.  
The reader should be aware that the optimization of per-  
formance was done using specific printed circuit boards de-  
signed at National. Variations in performance can be real-  
ized due to physical changes in the printed circuit board and  
the application. Therefore, the designer should be aware  
that component value and board layout changes may be  
required to optimize performance in a given application. The  
values shown in this document can be used as a staring  
point for testing and evaluation purposes. When working  
with high bandwidth circuits, good layout practices are also  
critical to achieving maximum performance.  
TL/H/12683–8  
FIGURE 7. One Section of the LM2408 with Arc  
Protection and Peaking Inductor L  
P
There are also ESD protection diodes built into the part. To  
avoid damaging these diodes, do not apply an input voltage  
from a low impedance source when the V  
are held at ground potential.  
and V  
pins  
CC  
BB  
IMPROVING RISE AND FALL TIMES  
Because of an emitter follower output stage, the rise and fall  
times of the LM2408 are relatively insensitive to capactive  
loading. However, the series resistors R1 and R2 (see Fig-  
ure 7 ) will increase the rise and fall times when driving the  
CRT’s cathode which appears as a capacitive load. The ca-  
pacitance at the cathode typically ranges from 8 pF to  
12 pF.  
POWER SUPPLY BYPASS  
Since the LM2408 is a wide bandwidth amplifier, proper  
power supply bypassing is critical for optimum performance.  
Improper power supply bypassing can result in large over-  
shoot, ringing and oscillation. A 0.01 mF capacitor should be  
To improve the rise and fall times at the cathode, a small  
inductor is often used in series with the output of the amplifi-  
er. The inductor L inFigure 7 peaks the amplifier’s frequen-  
P
cy response at the cathode, thus improving rise and fall  
times. It also acts with the output load capacitance to form a  
low pass filter, which reduces the amplitudes of high fre-  
quency harmonics of the video signal, to lower radiated  
electromagnetic interference. The inductor value is empiri-  
cally determined and is dependent on the load. An inductor  
value of 0.1 mH is a good starting value. Note that excessive  
peaking of the amplifier’s frequency response will increase  
the overshoot. Choosing the correct values for R1, R2 and  
Lp will provide arc protection and the fastest rise and fall  
times without excessive peaking.  
connected from the supply pin, V , to ground, as close to  
CC  
the supply pin as is practical (preferably less than (/4 from  
×
the supply pin). Additionally, a 10 mF to 100 mF electrolytic  
capacitor should be connected from the supply pin to  
ground. The electrolytic capacitor should also be placed  
reasonably close to the LM2408’s supply pin. A 0.1 mF ca-  
pacitor should be connected from the bias pin, V , to  
BB  
ground, as close as is practical to the part.  
ARC PROTECTION  
During normal CRT operation, internal arcing may occasion-  
ally occur. Spark gaps of 200V to 300V at the cathodes will  
limit the maximum voltage, but to a value that is much high-  
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4
EFFECT OF LOAD CAPACITANCE  
The output rise and fall times will be slower than specified if  
the load capacitance at the output is more than 8 pF, as  
shown in Figure 8.  
PC BOARD LAYOUT CONSIDERATIONS  
For optimum performance, an adequate ground plane, isola-  
tion between channels, good supply bypassing and minimiz-  
ing unwanted feedback are necessary. Also, the length of  
the signal traces from the preamplifier to the LM2408 and  
from the LM2408 to the CRT cathode should be as short as  
possible. The following references are recommended:  
Ott, Henry W., ‘‘Noise Reduction Techniques in Electronic  
Systems’’, John Wiley and Sons, New York, 1976.  
‘‘Guide to CRT Video Design’’, National Semiconductor Ap-  
plication Note 861.  
‘‘Video Amplifier Design for Computer Monitors’’, National  
Semiconductor Application Note 1013.  
Because of its high small signal bandwidth, the part may  
oscillate when it is used in a typical application with a  
preamp in a monitor, if feedback occurs around the video  
amplifier through the chassis wiring. To prevent this, leads  
to the input circuit should be shielded, and input circuit wir-  
ing should be spaced as far as possible from output circuit  
wiring. Power should be removed as quickly as possible  
from an amplifier that is oscillating, since power dissipation  
in the part is very high in this mode and the part may be  
damaged if oscillations continue and the power supply can  
supply more than 250 mA.  
TL/H/12683–9  
FIGURE 8. Effect of Load Capacitance on  
Rise/Fall Time  
The monitor designer should ensure that stray capacitance  
applied to the LM2408 is as low as possible.  
THERMAL CONSIDERATIONS  
Power supply current increases as the input signal increas-  
es and consequently power dissipation also increases.  
Capacitive loading on the output will cause some overshoot  
and peaking. This can be controlled by placing a resistor in  
series with the output of the part. Because of differences in  
stray capacitance in different pc board layouts, the best val-  
ue of resistance to use must be determined separately for  
each application. Typical values between 50X and 200X  
provide good performance, with the larger values resulting  
in less peaking and slower rise and fall times.  
The LM2408 cannot be used without heat sinking. Typical  
‘‘average’’ power dissipation with the device output voltage  
at one half the supply voltage is 1.9W per channel for a total  
dissipation of 5.7W package dissipation. The power dissipa-  
tion does not vary much as output voltage varies. The  
LM2408 case temperature must be maintained below  
100 C. If the maximum expected ambient temperature is  
§
50 C, then a maximum heat sink thermal resistance can be  
Driving the output voltage of the part outside of its linear  
range will cause distorted signal waveforms and recovery  
times that are very much longer than the specified rise and  
fall times. When the amplifier output voltage is being driven  
from positive saturation into the linear range, an overshoot  
of several volts for up to 50 ns may occur. In a typical moni-  
tor design, this may occur if blanking pulses are applied to  
the video signal. The output voltage range should be limited  
so this does not happen, and will be approximately no lower  
§
calculated:  
b
100 C 50 C  
§
§
e
e
8.8 C/W.  
R
§
th  
5.7W  
This example assumes a typical CRT capacitive load and is  
without a resistive load. Note that this thermal resistance  
must be achieved when the heat sink is operating in the  
monitor.  
b
than 25V and no higher than V  
5V.  
CC  
TYPICAL APPLICATION  
A typical application of the LM2408 is shown in Figure 9.  
Used in conjunction with an LM1205, a complete video  
channel from monitor input to CRT cathode can be  
achieved. Performance is satisfactory for all applications up  
c
up to 160 MHz.  
to 1280  
1024 non-interfaced, and pixel clock frequencies  
5
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6
7
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Physical Dimensions inches (millimeters) unless otherwise noted  
LM2408  
11-Lead Molded TO-220  
NS Package Number TA11B  
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failure to perform, when properly used in accordance  
with instructions for use provided in the labeling, can  
be reasonably expected to result in a significant injury  
to the user.  
2. A critical component is any component of a life  
support device or system whose failure to perform can  
be reasonably expected to cause the failure of the life  
support device or system, or to affect its safety or  
effectiveness.  
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