CMO N150X1-L03 Specification

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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
- CONTENTS -
REVISION HISTORY
1. GENERAL DESCRIPTION
1.1 OVERVIEW
1.2 FEATURES
1.3 APPLICATION
1.4 GENERAL SPECIFICATIONS
1.5 MECHANICAL SPECIFICATIONS
2. ABSOLUTE MAXIMUM RATINGS
2.1 ABSOLUTE RATINGS OF ENVIRONMENT
2.2 ELECTRICAL ABSOLUTE RATINGS
2.2.1 TFT LCD MODULE
2.2.2 BACKLIGHT UNIT
3. ELECTRICAL CHARACTERISTICS
3.1 TFT LCD MODULE
3.2 BACKLIGHT UNIT
4. BLOCK DIAGRAM
4.1 TFT LCD MODULE
4.2 BACKLIGHT UNIT
5. INPUT TERMINAL PIN ASSIGNMENT
5.1 TFT LCD MODULE
5.2 BACKLIGHT UNIT
5.3 TIMING DIAGRAM OF LVDS INPUT SIGNAL
5.4 COLOR DATA INPUT ASSIGNMENT
6. INTERFACE TIMING
6.1 INPUT SIGNAL TIMING SPECIFICATIONS
6.2 POWER ON/OFF SEQUENCE
7. OPTICAL CHARACTERISTICS
7.1 TEST CONDITIONS
7.2 OPTICAL SPECIFICATIONS
8. DEFINITION OF LABELS ------------------------------------------------- 18
8.1 CMO MODULE LABEL
8.2 CARTON LABEL
9. PACKING ------------------------------------------------- 19
9.1 Carton
9.2 Pallet
10. PRECAUTIONS 10
.1 ASSEMBLY AND HANDLING PRECAUTIONS
10.2 SAFETY PRECAUTIONS
------------------------------------------------------- 3
------------------------------------------------------- 4
------------------------------------------------------- 5
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------------------------------------------------------- 9
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------------------------------------------------------- 12
------------------------------------------------------- 14
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REVISION HISTORY
Version Date Section Description
All
Ver 1.0
Ver 3.0
Ver. 3.1
Jul. 05,’02
Sep. 25,02
Jan.13’03
Issue Preliminary Specification.
All
Page 4 - 1.5 MECHANICAL SPECIFICATIONS
Add min depth “6.4” & max depth “7.0” & Max Weight “605”
Modify typ. weight to be “590”
Page 6 – 2.2.2 BACKLIGHT UNIT
Modify the note of lamp voltage from “6.5 mA” to be “6.0 mA”
Page 7 – 3.2 BACKLIGHT UNIT
Modify lamp Input Voltage typ. value from “640” to “680”
Add lamp input voltage min.=612 max.=748
Modify “note” of “lamp input voltage” from “6.5” to “6.0”
Modify lamp current min.=2.0 typ.=6.0 max.=6.5
Add lamp life time typ.=15,000
Modify power consumption typ. from 4.2 to 4.08
Page 8 modify I
Page 12
Add frequency min.=20 typ.=68
Modify frame time cycle max. from 1000 to 850
Page 14
Modify “inverter Current” value from “6.5” to “6.0”
Modify “inverter driving frequency” from “60” to “50”.
Page 19
Add Section 8.2 Carton label
Add Section 9 PACKING
Revise section 1.4 item: Surface treatment
Modify to be Hard coating (2H), Low Reflection (R%Љ1.8%), Anti-glare (Haze
40)
= 6.0 mArms
L
Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
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1. GENERAL DESCRIPTION
1.1 OVERVIEW
N150X1- L03 is a 15” TFT Liquid Crystal Display module with single CCFL Backlight unit and 20 pins LVDS
interface. This module supports 1024 x 768 XGA mode and can display 262,144 colors. The optimum
viewing angle is at 6 o’clock direction. The inverter module for Backlight is not built in.
1.2 FEATURES
- Thin and light weight
- XGA (1024 x 768 pixels) resolution
- DE (Data Enable) only mode
- 3.3V LVDS (Low Voltage Differential Signaling) interface with 1 pixel/clock
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Model No.: N150X1 – L03
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1.3 APPLICATION
- TFT LCD Notebook
1.4 GENERAL SPECIFICATI0NS
Item Specification Unit Note Active Area 304.1 (H) x 228.1 (V) (15.0” diagonal) mm Bezel Opening Area 307.8 (H) x 231.6 (V) mm Driver Element a-si TFT active matrix - ­Pixel Number 1024 x R.G.B. x 768 pixel ­Pixel Pitch 0.297 (H) x 0.297 (V) mm ­Pixel Arrangement RGB vertical stripe - ­Display Colors 262,144 color ­Transmissive Mode Normally white - -
Surface Treatment
Hard coating (2H), Low Reflection (R%Љ1.8%),
Anti-glare (Haze 40)
- -
1.5 MECHANICAL SPECIFICATIONS
Item Min. Typ. Max. Unit Note
Horizontal(H) 316.8 317.3 317.8 mm
Module Size
Note (1) Please refer to the attached drawings for more information of front and back outline dimensions.
Vertical(V) 241.5 242.0 242.5 mm Depth(D) 6.4 6.7 7.0 mm
Weight - 590 605 g -
(1)
(1)
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2. ABSOLUTE MAXIMUM RATINGS
2.1 ABSOLUTE RATINGS OF ENVIRONMENT
Item Symbol
Storage Temperature TST -20 +60 ºC (1) Operating Ambient Temperature TOP 0 +50 ºC (1), (2) Shock (Non-Operating) S Vibration (Non-Operating) V
Note (1) Temperature and relative humidity range is shown in the figure below.
(a) 90 %RH Max. (Ta Љ 40 ºC).
(b) Wet-bulb temperature should be 39 ºC Max. (Ta > 40 ºC).
(c) No condensation.
Note (2) The temperature of panel surface should be 0 ºC Min. and 60 ºC Max.
Note (3) 2ms, half sine wave, 1 time for ± X, ± Y, ± Z.
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Model No.: N150X1 – L03
Approval
Value
Min. Max.
- 200 G (3), (5)
NOP
- 2.0 G (4), (5)
NOP
Unit Note
Note (4) 10 ~ 500 Hz, 0.5 Hr / cycle, 4 cycles for each X, Y, Z.
Note (5) At testing Vibration and Shock, the fixture in holding the module has to be hard and rigid enough so that
the module would not be twisted or bent by the fixture. The gap between panel and testing table
should be less then 2mm.
Relative Humidity (%RH)
100
90
80
60
Operating Range
40
20
Storage Range
5
Temperature (ºC)
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8060 -20 400 20-40
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2.2 ELECTRICAL ABSOLUTE RATINGS
2.2.1 TFT LCD MODULE
Item Symbol
Power Supply Voltage Vcc -0.3 +4.0 V Logic Input Voltage VIN -0.3 Vcc+0.3 V
2.2.2 BACKLIGHT UNIT
Item Symbol
Lamp Voltage VL - 2.5K V Lamp Current IL - 7.5 mA Lamp Frequency FL - 80 KHz
Note (1) Permanent damage to the device may occur if maximum values are exceeded. Function operation
should be restricted to the conditions described under Normal Operating Conditions.
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Value
Min. Max.
Value
Min. Max.
Unit Note
Unit Note
Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
(1)
(1), (2), IL = 6.0 mA
RMS
RMS
(1), (2)
Note (2) Specified values are for lamp (Refer to 3.2 for further information).
3. ELECTRICAL CHARACTERISTICS
3.1 TFT LCD MODULE Ta = 25 ± 2 ºC
FUSE
Value
C3
1uF
Unit Note
Vcc
(LCD Module Input)
Parameter Symbol
Min. Typ. Max. Power Supply Voltage Vcc 3.0 3.3 3.6 V ­Ripple Voltage VRP - 50 mV ­Rush Current I
Power Supply Current
Logical Input Voltage
White - 400 mA (3)a Black “H” Level VIL - - +100 mV ­“L” Level V
- 1.5 A (2)
RUSH
lcc
-100 - - mV -
IH
- 600 mA (3)b
Terminating Resistor RT - 100 - Ohm -
Note (1) The module should be always operated within above ranges.
Note (2) Measurement Conditions
+3.3V
Q1 2SK1475
VR1
R1
47K
R2
1K
47K
0.01uF
Q2
2SK1470
C2
(High to Low)
(Control Signal)
SW
+12V
C1
1uF
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GND
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Vcc rising time is 470us
0.9Vcc
0.1Vcc
470us
Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
+3.3V
Note (3) The specified power supply current is under the conditions at Vcc = 3.3 V, Ta = 25 ± 2 ºC, f
60Hz, whereas a power dissipation check pattern below is displayed.
a. White Pattern
Active Area
b. Black Pattern
Active Area
3.2 BACKLIGHT UNIT Ta = 25 ± 2 ºC
Parameter Symbol
Min. Typ. Max. Lamp Input Voltage VL 612 680 748 V Lamp Current IL 2.0 6.0 6.5 mA
Lamp Turn On Voltage VS
- 1080(25
- 1290(0 Operating Frequency FL 40 60 67 KHz (3) Lamp Life Time LBL 10,000 15,000 0 Hrs (5) Power Consumption PL - 4.08 - W (4), IL = 6.0 mA
Note (1) Lamp current is measured by utilizing a high frequency current meter as shown below:
Value
o
C) 11 V
o
C) V
Unit Note
I
RMS
RMS
(2)
RMS
(2)
RMS
= 6.0 mA
L
(1)
=
v
LCD
Module
HV (White)
LV (Black)
1
2
Current Meter
Inverter
A
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Note (2) The voltage shown above should be applied to the lamp for more than 1 second after startup.
Otherwise the lamp may not be turned on.
Note (3) The lamp frequency may produce interference with horizontal synchronous frequency from the
display, and this may cause line flow on the display. In order to avoid interference, the lamp
frequency should be detached from the horizontal synchronous frequency and its harmonics as far
as possible.
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
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Note (4) P
Note (5) The lifetime of lamp can be defined as the time in which it continues to operate under the condition
Note (6) The waveform of the voltage output of inverter must be area-symmetric and the design of the
= IL VL
L
Ta = 25 2
(a) When the brightness becomes or lower than 50% of its original value.
(b) When the effective ignition length becomes or lower than 80% of its original value. (Effective
ignition length is defined as an area that has less than 70% brightness compared to the
brightness in the center point.)
inverter must have specifications for the modularized lamp. The performance of the Backlight,
such as lifetime or brightness, is greatly influenced by the characteristics of the DC-AC inverter for
the lamp. All the parameters of an inverter should be carefully designed to avoid producing too
much current leakage from high voltage output of the inverter. When designing or ordering the
inverter please make sure that a poor lighting caused by the mismatch of the Backlight and the
inverter (miss-lighting, flicker, etc.) never occurs. If the above situation is confirmed, the module
should be operated in the same manners when it is installed in your instrument.
o
C and IL = 6.0 mArms until one of the following events occurs:
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4. BLOCK DIAGRAM
4.1 TFT LCD MODULE
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
Rxin0(+/-)
Rxin1(+/-)
Rxin2(+/-)
(JAE-FI-XB20P-HF10)
CLK(+/-)
Vcc
Vcc
GND
V
L
LAMP CONNECTOR
4.2 BACKLIGHT UNIT
INPUT CONNECTOR
REFERENCE VOLTAGE
(JST-BHSR-02VS-1)
LVDS INPUT /
TIMING CONTROLLER
DC/DC CONVERTER &
GENERATOR
SCAN DRIVER IC
TFT LCD PANEL
(1024x3x768)
DATA DRIVER IC
BACKLIGHT UNIT
1 HV (White)
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5. INPUT TERMINAL PIN ASSIGNMENT
5.1 TFT LCD MODULE
Pin Symbol Description Polarity Remark
1 Vcc Power Supply +3.3 V ­2 Vcc Power Supply +3.3 V ­3 Vss Ground ­4 Vss Ground ­5 Rxin0- LVDS Differential Data Input Negative 6 Rxin0+ LVDS Differential Data Input Positive 7 Vss Ground ­8 Rxin1- LVDS Differential Data Input Negative
9 Rxin1+ LVDS Differential Data Input Positive 10 Vss Ground ­11 Rxin2- LVDS Differential Data Input Negative 12 Rxin2+ LVDS Differential Data Input Positive 13 Vss Ground ­14 CLK- LVDS Clock Data Input Negative 15 CLK+ LVDS Clock Data Input Positive 16 Vss Ground ­17 VEDID 3.3V Power ­18 NC Non-Connection ­19 CLKEDID DDC Clock ­20 DATAEDID DDC Data -
Note (1) Connector Part No.: JAE-FI-SEB20P-HF or equivalent
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
R0~R5,G0
G1~G5,B0,B1
B2~B5,DE,Hsync,Vsync
LVDS Level
Note (2) User’s connector Part No: JAE-FI-S020S or equivalent
Note (3) The first pixel is even.
5.2 BACKLIGHT UNIT
Pin Symbol Description Color
1 HV High Voltage White 2 LV Ground Black
Note (1) Connector Part No.: JAE-FI-SEB20P-HF10 or equivalent
Note (2) User’s connector Part No.: JAE-FI-S020S or equivalent
5.3 TIMING DIAGRAM OF LVDS INPUT SIGNAL
CLK+
Rxin2
Rxin1
Rxin0
T/7
IN20 IN19 IN18 IN17 IN16 IN15 IN14
DE B5 B4 B3 B2 Vsync Hsync
IN13 IN12 IN11 IN10 IN9 IN8 IN7
B1 G4 G3 G2 G1 B0 G5
IN6 IN5 IN4 IN3 IN2 IN1 IN0
G0 R3 R2 R1 R0 R5 R4
Signal for 1 DCLK Cycle (T)
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5.4 COLOR DATA INPUT ASSIGNMENT
The brightness of each primary color (red, green and blue) is based on the 6-bit gray scale data input for
the color. The higher the binary input, the brighter the color. The table below provides the assignment of
color versus data input.
Color
R5 R4 R3 R2 R1 R0 G5 G4 G3 G2 G1 G0 B5 B4 B3 B2 B1 B0 Black Red Green
Basic Colors
Gray Scale Of Red
Gray Scale Of Green
Gray Scale Of Blue
Note (1) 0: Low Level Voltage, 1: High Level Voltage
Blue Cyan Magenta Ye ll ow White Red(0)/Dark Red(1) Red(2)
:
: Red(61) Red(62) Red(63) Green(0)/Dark Green(1) Green(2)
:
: Green(61) Green(62) Green(63) Blue(0)/Dark Blue(1) Blue(2)
:
: Blue(61) Blue(62) Blue(63)
0
0
1
1
0
0
0
0
0
0
1
1
1
1
1
1
0
0
0
0
0
0 : :
1
1
1
1
1
1
0
0
0
0
0
0 : :
0
0
0
0
0
0
0
0
0
0
0
0 : :
0
0
0
0
0
0
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
Data Signal
Red Green Blue
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
1
0
0
0
0
1
1
1
1
1
1
1
1
1
1
1
1
1
1
1
1
0
0
0
0
0
0
1
1
1
1
1
1
1
1
1
1
1
1
1
1
1
1
0
0
0
0
0
0
1
1
1
1
1
1
1
1
1
1
1
1
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
0
0
0
0
0
0
0
0
0
0
0
0
0
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
1
1
0
1
0
0
0
0
0
0
0
0
0
0
0
0
1
1
1
0
0
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
0
0
0
0
0
0
0
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
0
0
0
0
1
1
1
1
0
1
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
0
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
0
0
0
0
0
0
0
0
0
0
1
1
1
1
0
1
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
1
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6. INTERFACE TIMING
6.1 INPUT SIGNAL TIMING SPECIFICATIONS
The input signal timing specifications are shown as the following table and timing diagram.
Signal Item Symbol Min. Typ. Max. Unit Note
DCLK Frequency 1/Tc
Frame Time Cycle TV
DE
Note (1) Because this module is operated by DE only mode, Hsync and Vsync input signals should be set
to low logic level or ground. Otherwise, this module would operate abnormally.
Vertical Active Display Period TVD 768 768 768 TH -
One Line Scanning Time Cycle TH
Horizontal Active Display Period THD 1024 1024 1024 Tc -
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1200
20
771
65
806
1344
Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
68
850
1600
MHz -
TH -
Tc -
DE
DCLK
TC
DE
DATA
6.2 POWER ON/OFF SEQUENCE
INPUT SIGNAL TIMING DIAGRAM
Power On
Power Off
HD
T
Restart
Power Supply
for LCD, Vcc
0V
10%
90%
t1
90%
t4
10%
t3 t2
10%
- Interface Signal
(LVDS Signal of Transmitter), V
0V
I
Valid Data
t6 t5
Timing Specifications:
- Power for Lamp
ONOFF OFF
50%50%
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0 < t1 Љ 10 msec
0 < t2 Љ 50msec
0 < t3 Љ 50 msec
t4 Њ 1 sec
t5 Њ 200 msec
t6 Њ 200 msec
Note (1) Please avoid floating state of interface signal at invalid period.
Note (2) When the interface signal is invalid, be sure to pull down the power supply of LCD Vcc to 0 V.
Note (3) The Backlight inverter power must be turned on after the power supply for the logic and the
interface signal is valid. The Backlight inverter power must be turned off before the power supply
for the logic and the interface signal is invalid.
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7. OPTICAL CHARACTERISTICS
7.1 TEST CONDITIONS
Item Symbol Value Unit Ambient Temperature Ta Ambient Humidity Ha Supply Voltage VCC 3.3 V Input Signal According to typical value in "3. ELECTRICAL CHARACTERISTICS" Inverter Current IL 6.0 mA Inverter Driving Frequency FL 60 KHz Inverter Sumida H05-4915
The relative measurement methods of optical characteristics are shown in 6.2. The following items
should be measured under the test conditions described in 6.1 and stable environment shown in Note (6).
7.2 OPTICAL SPECIFICATIONS
Item Symbol Condition Min. Typ. Max. Unit Note
Contrast Ratio CR 150 250 - - (2), (6)
Response Time
Center Luminance of White L 170 200 - cd/m Average Luminance of White L White Variation Cross Talk CT - - 3.0 % (5), (6)
Red
Color Chromaticity
Viewing Angle
Green
Blue
White
Horizontal
Ver t i c al
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Model No.: N150X1 – L03
Approval
o
25r2
50r10
TR - 6.0 10.0 ms
- 17.0 25.0 ms
T
F
150 180 - cd/m2(4), (6)
AVE
GW
=0q, TY =0q
T
Rx 0.598 0.628 0.658 ­Ry 0.326 0.356 0.386 -
x
Viewing Normal Angle
70 % (6), (7)
Gx 0.264 0.294 0.324 ­Gy 0.559 0.589 0.619 ­Bx 0.114 0.144 0.174 -
By 0.067 0.097 0.127 ­Wx 0.280 0.310 0.340 ­Wy
Tx+
T
x
TY+
T
Y
­CRt10
-
0.300 0.330 0.360 ­40 45 ­40 45 -­10 15 ­30 35 -
C
%RH
Deg.
2
(3)
(6)
(1), (6)
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T
Note (1) Definition of Viewing Angle (Tx, Ty):
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Model No.: N150X1 – L03
Approval
TX- = 90º
x-
6 o’clock
T
y- = 90º
y-
Note (2) Definition of Contrast Ratio (CR):
The contrast ratio can be calculated by the following expression.
Normal
Tx = Ty = 0º
Ty- Ty
Tx
Tx
y+
12 o’clock direction
T
y+ = 90º
x+
TX+ = 90º
Contrast Ratio (CR) = L63 / L0
L63: Luminance of gray level 63
L 0: Luminance of gray level 0
CR = CR (5)
CR (X) is corresponding to the Contrast Ratio of the point X at Figure in Note (7).
Note (3) Definition of Response Time (T
100%
90%
Optical
Response
10%
0%
R
T
R
, TF):
ime
T
F
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A
(
)
A
(
)
(
)
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
Note (4) Definition of Average Luminance of White (L
Measure the luminance of gray level 63 at 5 points
L
= [L (1)+ L (2)+ L (3)+ L (4)+ L (5)] / 5
AVE
L (x) is corresponding to the luminance of the point X at Figure in Note (7).
Note (5) Definition of Cross Talk (CT):
CT = | Y
– YA | / YA u 100 (%)
B
Where:
Y
= Luminance of measured location without gray level 0 pattern (cd/m2)
A
Y
= Luminance of measured location with gray level 0 pattern (cd/m2)
B
(0, 0)
ctive Area
Y
Y
(D/8,W/2)
A, L
Y
(D/2,7W/8)
A, D
Gray 32
Y
D,W
(D/2,W/8)
A, U
(7D/8,W/2)
A, R
AVE
Y
):
(D/4,W/4)
Y
(D/8,W/2)
B, L
(D/2,7W/8)
B, D
0, 0
ctive Area
Gray 0
Gray 32
Y
(D/2,W/8)
B, U
Y
(7D/8,W/2)
B, R
(3D/4,3W/4)
D,W
Note (6) Measurement Setup:
The LCD module should be stabilized at given temperature for 20 minutes to avoid abrupt
temperature change during measuring. In order to stabilize the luminance, the measurement
should be executed after lighting Backlight for 20 minutes in a windless room.
LCD Module
LCD Panel
Center of the Screen
500 mm
Photometer
(TOPCON BM-5A)
Field of View = 2º
Light Shield Room
(Ambient Luminance < 2 lux)
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Note (7) Definition of White Variation (GW):
Measure the luminance of gray level 63 at 5 points
GW = Maximum [L (1), L (2), L (3), L (4), L (5)] / Minimum [L (1), L (2), L (3), L (4), L (5)]
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
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W
W/4
W/2
3W/4
Vertical Line
Horizontal Line
D
D/4 D/2 3D/4
12
X
: Test Point
X=1 to 5
3
5
4
Active Area
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8. DEFINITION OF LABELS
8.1 CMO MODULE LABEL
The barcode nameplate is pasted on each module as illustration, and its definitions are as following explanation.
CHI MEI
OPTOELECTRONICS
N150X1 - L03 Rev. XX
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MADE IN TAIWAN
Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
Approval
E207943
MADE IN TAIWAN
X X X X X X X Y M D L N N N N
(a) Model Name: N150X1 - L03
Sub-Model Name for Sub-Model version control
Model Name (For Safety Application, please uses this
module name. Sub-Module Name may be changed)
(b) Revision: Rev. XX, for example: A0, A1… or C1, C2…etc.
(c) Serial ID: X X
X X X X X Y M D L N N N N
Serial No.
Product Line
Year, Month, Date
CMO Internal Use
CMO Internal Use
Revision
Serial ID includes the information as below:
(a) Manufactured Date: Year: 1~9, for 2001~2009
Month: 1~9, A~C, for Jan. ~ Dec.
Day: 1~9, A~Y, for 1
(b) Revision Code: Cover all the change
(c) Serial No.: Manufacturing sequence of product
(d) Product Line: 1 -> Line1, 2 -> Line 2, A -> Line A …etc.
st
to 31st, exclude I,O and U.
CMO Internal Use
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8.2 Carton Label
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
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9. PACKING
9.1 Carton
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9.2 Pallet
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
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Issued Date: Jan.13, 2003
Model No.: N150X1 – L03
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10. PRECAUTIONS
10.1 ASSEMBLY AND HANDLING PRECAUTIONS
(1) Do not apply rough force such as bending or twisting to the module during assembly.
(2) To assemble or install module into user’s system can be only in clean working areas. The dust and oil
may cause electrical short or worsen the polarizer.
(3) It’s not permitted to have pressure or impulse on the module because the LCD panel and Backlight will
be damaged.
(4) Always follow the correct power sequence when LCD module is connecting and operating. This can
prevent damage to the CMOS LSI chips during latch-up.
(5) Do not pull the I/F connector in or out while the module is operating.
(6) Do not disassemble the module.
(7) Use a soft dry cloth without chemicals for cleaning, because the surface of polarizer is very soft and
easily scratched.
(8) It is dangerous that moisture come into or contacted the LCD module, because moisture may damage
LCD module when it is operating.
(9) High temperature or humidity may reduce the performance of module. Please store LCD module within
the specified storage conditions.
(10) When ambient temperature is lower than 10ºC may reduce the display quality. For example, the
response time will become slowly, and the starting voltage of CCFL will be higher than room
temperature.
10.2 SAFETY PRECAUTIONS
(1) The startup voltage of Backlight is approximately 1000 Volts. It may cause electrical shock while
assembling with inverter. Do not disassemble the module or insert anything into the Backlight unit.
(2) If the liquid crystal material leaks from the panel, it should be kept away from the eyes or mouth. In
case of contact with hands, skin or clothes, it has to be washed away thoroughly with soap.
(3) After the module’s end of life, it is not harmful in case of normal operation and storage.
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