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LM1281N データシート(PDF) 4 Page - National Semiconductor (TI)

[Old version datasheet] Texas Instruments acquired National semiconductor.
部品番号 LM1281N
部品情報  85 MHz RGB Video Amplifier System with On Screen Display (OSD)
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メーカー  NSC [National Semiconductor (TI)]
ホームページ  http://www.national.com
Logo NSC - National Semiconductor (TI)

LM1281N データシート(HTML) 4 Page - National Semiconductor (TI)

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OSD Electrical Characteristics
See DC Test Circuit (
Figure 5), T
A = 25˚C; VCC1 = VCC2 = 12V; V13 = 4V; V14 = 4V; V16 = 4V; VDrive = 4V; V4 = 4V; V15 =
0V; V
25 = 1V unless otherwise stated
Symbol
Parameter
Conditions
Typical
(Note 5)
Limit
(Note 6)
Units
V
OSDI
OSD Input Low Input Voltage
1.2
0.4
V (max)
V
OSDh
OSD Input High Input Voltage
1.6
2.0
V (min)
V
4l
OSD Select Low Input Voltage
Video Inputs are Selected
1.2
0.8
V (max)
V
4h
OSD Select High Input Voltage
OSD Inputs are Selected
1.6
2.0
V (min)
I
4l
OSD Select Low Input Current
V
4 = 0V
−3.0
−5.0
µA (max)
I
4h
OSD Select High Input Current
V
4 = 12V
0.01
2.0
µA (min)
∆V
O-OSD(1V)
OSD
∆Black Level Output Voltage,
Difference from Video Output
V
25 = 1V
±85
±175
mV (max)
V
OSD-out
OSD Output Voltage V
PP
V
14 = 4V, VDrive = 2V
4.5
V
PP
∆V
OSD-out
OSD Output V
PP Attenuation
V
14 = 2V, VDrive = 2V
50
30
% (min)
∆V
OSD-out match
Output Match between Channels
V
14 = 4V, VDrive = 2V
±2.0
%
V
OSD-out track
Output Variation between Channels
V
14 = 4V to 2V, VDrive = 2V
±3.5
%
t
r (OSD S)
Video to OSD Switch Time (Note
11)
V
1 = V2 = V3 = 4V (Note 16)
4ns
t
f(OSD S)
OSD to Video Switch Time (Note
11)
V
1 = V2 = V3 = 4V (Note 16)
11
ns
t
r-prop (OSD S)
Video to OSD Propagation Delay
V
1 = V2 = V3 = V13 = V14 = 4V
11
ns
t
f-prop (OSD S)
OSD to Video Propagation Delay
V
1 = V2 = V3 = V13 = V14 = 4V
12
ns
t
r (OSD)
OSD Rise Time at V
O (Note 11)
V
14 = 4V; V25 = 1V
4
ns
t
f (OSD)
OSD Fall Time at V
O (Note 11)
V
14 = 4V; V25 = 1V
10
ns
t
r-prop (OSD)
Starting OSD Propagation Delay
V
14 = 4V; V25 = 1V
6.5
ns
t
f-prop (OSD)
Ending OSD Propagation Delay
V
14 = 4V; V25 = 1V
9
ns
V
feed 10 kHz
Video Feedthrough into OSD
V
14 = 4V; V25 = 1V;
V
1 = V2 = V3 = 0V
−70
dB
V
feed 10 MHz
Video Feedthrough into OSD
V
14 = 4V; V25 = 1V;
V
1 = V2 = V3 = 0V
−60
dB
Note 1: Absolute Maximum Rating 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 de-
grade when the device is not operated under the listed test conditons.
Note 3: VCCsupply pins 6, 9, and 22 must be externally wired together to prevent internal damage during VCC power on/off cycles.
Note 4: Human body model, 100 pF discharged through a 1.5 k
Ω resistor.
Note 5: Typical specifications are specified at +25˚C and represent the most likely parametric norm.
Note 6: Tested limits are guaranteed to National’s AOQL (Average Outgoing Quality Level).
Note 7: The supply current specified is the quiescent current for VCC1 and VCC2 with RL = ∞, see Figure 5’s test circuit. The supply current for VCC2 (pin 22) also
depends on the output load. With video output at 1V DC, the additional current through VCC2 is 8 mA for Figure 5’s test circuit.
Note 8: Output voltage is dependent on load resistor. Test circuit uses RL = 390Ω.
Note 9: Measure gain difference between any two amplifiers. VIN = 400 mVPP.
Note 10:
∆AV track is a measure of the ability of any two amplifiers to track each other and quantifies the matching of the three attenuators. It is the difference in
gain change between any two amplifiers with the contrast voltage (V13) at either 4V or 2V measured relative to an AV max condition, V13 = 4V. For example, at AV
max the three amplifiers’ gains might be 17.1 dB, 16.9 dB, and 16.8 dB and change to 11.2 dB, 10.9 dB and 10.7 dB respectively for V13 = 2V. This yields the mea-
sured typical ±0.1 dB channel tracking.
Note 11: When measuring video amplifier bandwidth or pulse rise and fall times, a double sided full ground plane printed circuit board without socket is recom-
mended. Video amplifier 10 MHz isolation test also requires this printed circuit board. The reason for a double sided full ground plane PCB is that large measurement
variations occur in single sided PCBs.
Note 12: Adjust input frequency from 10 MHz (AV max reference level) to the −3 dB corner frequency (f−3 dB).
Note 13: Measure output levels of the other two undriven amplifiers relative to the driven amplifier to determine channel separation. Terminate the undriven amplifier
inputs to simulate generator loading. Repeat test at fIN = 10 MHz for Vsep 10 MHz.
Note 14: A minimum pulse width of 200 ns is guaranteed for a horizontal line of 15 kHz. This limit is guaranteed by design. If a lower line rate is used a longer clamp
pulse may be required.
Note 15: During the AC test the 4V DC level is the center voltage of the AC output signal. For example, if the output is 4 VPP the signal will swing between 2V DC
and 6V DC.
Note 16: When V1 = V2 = V3 = 0V and the video input is 0.7V, then tr (OSD) = 11 ns and tf(OSD) = 4 ns. The Video Output waveform will be inverted from the one
shown in
Figure 3 . Thus tr (OSD) is actually a fall time and tf (OSD) is actually a rise time in this condition.
www.national.com
4


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