1) Since front polarizer is easily damaged, pay attention not to scratch it.
2) Be sure to turn off power supply when inserting or disconnecting from input connector.
3) Wipe off water drop immediately. Long contact with water may cause discoloration or spots.
4) When the panel surface is soiled, wipe it with absorbent cotton or other soft cloth.
5) Since the panel is made of glass, it may break or crack if dropped or bumped on hard surface.
6) Since CMOS LSI is used in this module, take care of static electricity and insure human earth when
handling.
7) Do not open nor modify the Module Assembly.
8) Do not press the reflector sheet at the back of the module to any directions.
9) At the insertion or removal of the Signal Interface Connector, be sure not to rotate nor tilt the Interface
Connector of the TFT-LCD module.
10) After installation of the TFT-LCD module into an enclosure (LCD monitor housing, for example), do not
twist nor bend the TFT -LCD module even momentary. At designing the enclosure, it should be taken
into consideration that no bending/twisting forces are applied to the TFT -LCD module from outside.
Otherwise the TFT -LCD module may be damaged.
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2.0 General Description
This specification applies to the 17.0 inch Color TFT-LCD Module L170E3
The display supports the SXGA (1280(H) x 1024(V)) screen format and 16.7M colors (RGB 8-bits data).
All input signals are 2 Channel LVDS interface compatible.
This module does not contain an inverter card for backlight.
2.1 Display Characteristics
The following items are characteristics summary on the table under 25 к condition:
ITEMSUnitSPECIFICATIONS
Screen Diagonal [mm]432(17.0")
Active Area [mm]337.920 (H) x 270.336(V)
Pixels H x V 1280(x3) x 1024
Pixel Pitch [mm]0.264 (per one triad) x 0.264
Pixel Arrangement R.G.B. Vertical Stripe
Display Mode Normally White
White Luminance [cd/m2]250 (Typ)
Contrast Ratio 400 : 1 (Typ)
Optical Response Time [msec]40 (Typ)
Nominal Input Voltage VDD [Volt]+5.0 V
Power Consumption
(VDD line + CCFL line)
Weight[Grams]2000 (Typ)
Physical Size [mm]383.5(W) x 306(H) x 20.0(D) (Typ)
Electrical Interface Even/Odd R/G/B data(8bits),3 sync signal,
Support Color 16.7M colors ( RGB 8-bit data )
Temperature Range
Operating
Storage (Shipping)
[Watt]25W(Max) (w/o Inverter, All black pattern)
Clock
o
C]
[
o
C]
[
0 to +50
-20 to +60
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2.2 Functional Block Diagram
The following diagram shows the functional block of the 17.0 inches Color TFT-LCD Module:
JAE FI-X30S-HF JST BHR-04VS-1
Mating Type JAE FI-X30S-H Mating Type SM04(4.0)B-BHS-1-TB
2.3 Optical Characteristics
The optical characteristics are measured under stable conditions at 25к (Room Temperature):
ItemUnitConditionsMin.Typ.Max.
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Viewing Angle [degree]
[degree]
[degree]
[degree]
Contrast ratio
Response Time(Note 1) [msec]Raising Time -2535-
[msec]Falling Time-1525-
[msec]Raising + Falling -40Color / Chromaticity Red x 0.590.620.65
Coordinates (CIE) Red y 0.30.330.36
Color Coordinates (CIE) White White x 0.280.310.34
Luminance Uniformity (Note 2) [%]8085White Luminance at
CCFL 6.0mA(center point)
Crosstalk ( in 75Hz) [%]1.5
Note 1: Definition of Response time:
The output signals of photodetector are measured when the input signals are changed from “ Black” to
“ White” (falling time), and from “White” to “ Black” (rising time), respectively. The response time interval between
the 10% and 90% of amplitudes. Refer to figure as below.
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3.4 Signal Description
The module using a pair of LVDS receiver SN75LVDS82(Texas Instruments) or compatible. LVDS is a
differential signal technology for LCD interface and high speed data transfer device. Transmitter shall be
SN75LVDS83(negative edge sampling) or compatible. The first LVDS port(RxOxxx) transmits odd pixels
while the second LVDS port(RxExxx) transmits even pixels.
PIN # SIGNAL NAMEDESCRIPTION
1RxO0-Negative LVDS differential data input (Odd data)
2RxO0+Positive LVDS differential data input (Odd data)
3RxO1-Negative LVDS differential data input (Odd data)
11RxO3+Positive LVDS differential data input (Odd data)
12RxE0-Negative LVDS differential data input (Even clock)
13RxE0+Positive LVDS differential data input (Even data)
14GNDPower Ground
15RxE1-Positive LVDS differential data input (Even data)
16RxE1+Negative LVDS differential data input (Even data)
17GNDPower Ground
18RxE2-Negative LVDS differential data input (Even data)
19RxE2+Positive LVDS differential data input (Even data)
20RxEC-Negative LVDS differential clock input (Even clock)
21RxEC+Positive LVDS differential clock input (Even clock)
22RxE3-Negative LVDS differential data input (Even data)
23RxE3+Positive LVDS differential data input (Even data)
24GNDPower Ground
25NC26NC27NC28POWERPower
29POWERPower
30POWERPower
Positive LVDS differential data input (Odd data)
Note: Input signals of odd and even clock shall be the same timing.
LVDS DATA Name Description
DSPDisplay Timing :When the signal is high, the pixel data shall be valid to be displayed
V-SVertical Sync :Both Positive and Negative polarity are acceptable
H-SHorizontal Sync :Both Positive and Negative polarity are acceptable
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˥˘˖˟˞˜ˡʾ
˥˘˖˟˞˜ˡˀ
˥˘˖˟˞˜ˡʾ
˥˘˖˟˞˜ˡˀ
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˥˘˜ˡ˄ʾ
˥˘˜ˡ˄ˀ
˥˘˜ˡ˅ʾ
˥˘˜ˡ˅ˀ
˥˘˜ˡˆʾ
˥˘˜ˡˆˀ
˥ˢ˜ˡ˃ʾ
˥ˢ˜ˡ˃ˀ
˥ˢ˜ˡ˄ʾ
˥ˢ˜ˡ˄ˀ
˥ˢ˜ˡ˅ʾ
˥ˢ˜ˡ˅ˀ
˥ˢ
˜ˡˆʾ
˥ˢ˜ˡˆˀ
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˄ʳ˶˶˿˸
˘˥˄˘˥˃˘˥ˈ˘˚˃˘˥ˇ˘˥ˆ˘˥˅˘˥˄˘˥˃˘˚˃
˘˚˅˘˚˅˘˕˄˘˕˃˘˚ˈ˘˚ˇ˘˚ˆ˘˚˅˘˚˄˘˕˄
˘˕ˆ˘˕˅ˡ˔ˡ˔ˡ˔˘˕ˈ˘˕ˇ˘˕ˆ˘˕˅˗˦ˣ
˘˥ˊ˘˥ˉˡ˔˘˕ˊ˘˕ˉ˘˚ˊ˘˚ˉ˘˥ˊ˘˥ˉˡ˔
˄ʳ˶˶˿˸
ˢ˥˄ˢ˥˃ˢ˚˃ˢ˥ˈˢ˥ˇˢ˥ˆˢ˥˅ˢ˥˄ˢ˥˃ˢ˚˃
ˢ˚˅ˢ˚˄ˢ˕˄ˢ˕˃ˢ˚ˈˢ˚ˇˢ˚ˆˢ˚˅ˢ˚˄ˢ˕˄
ˢ˕ˆˢ˕˅˗˦ˣ˩ˀ˦˛ˀ˦ˢ˕ˈˢ˕ˇˢ˕ˆˢ˕˅ˡ˔
ˢ˥ˊˢ˥ˉˡ˔ˢ˕ˊˢ˕ˉˢ˚ˊˢ˚ˉˢ˥ˊˢ˥ˉˡ˔
Note:
R/G/B data 7:MSB, R/G/B data 0:LSB
O = “First Pixel Data”
E = “Second Pixel Data”
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Input Clock
Input Data
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T
ThdTsu
3.5 Signal Electrical Characteristics
Input signals shall be low or Hi-Z state when Vin is off
It is recommended to refer the specifications of SN75LVDS82DGG(Texas Instruments) in detail.
Each signal characteristics are as follows;
ParameterConditionMinMaxUnit
Differential Input
Vth
Vtl
High
Voltage(Vcm=+1.2V)
Differential Input Low
Voltage(Vcm=+1.2V)-100
100
[mV]
[mV]
3.6 Interface Timings
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t
H
G
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Basically, interface timings described here is not actual input timing of LCD module but output timing of
SN75LVDS82DGG (Texas Instruments) or equivalent.
Note: Typical value is refer to VESA STANDARD , (*1) Tha+Thb should be less than 1024 Tck.
3.6.2 Timing Definition
H- Sync
DSPTMG
V-Sync
DSPTM
48dot
1H
1688dot
248do
112dot
1280dot
38
3H
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3.7 Power Consumption
Input power specifications are as follows;
SymbolParameterMinTypMaxUnitsCondition
VDDLogic/LCD Drive
Voltage
IDDVDD current8501100[mA]
IIDDInrush VDD current 6.5[A]t < 80us
PDDVDD Power4.255.5[Watt]Vin=5V ,All Black Pattern
VDDrpAllowable
Logic/LCD Drive
Ripple Voltage
VDDnsAllowable
Logic/LCD Drive
Ripple Noise
4.555.5[Volt]
100[mV]
p-p
100[mV]
p-p
3.8 Power ON/OFF Sequence
Vin power and lamp on/off sequence is as follows. Interface signals are also shown in the chart. Signals
from any system shall be Hi-Z state or low level when Vin is off.
10ms
min.
10%
90%90%
Vin
10%
30 max, 1ms min.
10%
0 min.0 min.
Signal
10%
0 min.
10%
Lamp
On
10%
170ms
min.
10%
4.0 Backlight Characteristics
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4.1 Signal for Lamp connector
1Lamp High Voltage
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2
3
4
Lamp High Voltage
No Connection
Ground
4.2 Parameter guide line for CFL Inverter
SymbolParameterMin
(L255)White Luminance200250-[cd/m2](Ta=25oC)
ISCFLCCFL standard current5.56.06.5[mA]
IRCFLCCFL operation range 3.06.07.0[mA]
ICFLCCFL Inrush current -2634[mA]Note 1
fCFLCCFL Frequency405080[KHz](Ta=25oC)
ViCFL
o
C)
(0
ViCFL
o
C)
(25
CCFL Ignition Voltage 1700[Volt]
CCFL Ignition Voltage 1200[Volt]
VCFLCCFL Discharge Voltage
(Reference)
TypMax
UnitsCondition
rms
rms
rms
rms
720863[Volt]
rms
(Ta=25oC)
(Ta=25oC)
Note 2
o
(Ta=0
Note 4
(Ta=25
Note 4
(Ta=25oC)
Note 3
C)
o
C)
PCFLCCFL Power consumption 17.319.0[Watt](Ta=25oC)
Note 3
Note 1: Duration=50 [msec]
Note 2: CCFL Frequency should be carefully determined to avoid interference between inverter and TFT LCD
Note 3: Calculator value for reference (ICFL×VCFL=PCFL)
Note 4: CCFL inverter should be able to give out a power that has a generating capacity of over 1700 voltage.
Lamp units need 1700 voltage minimum for ignition
5.0 Vibration, Shock, and Drop
5.1 Vibration & Shock
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Frequency:10 - 200Hz
Sweep: 30 Minutes each Axis (X, Y, Z)
Acceleration:1.5G(10~200Hz P- P)
Test method:
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Acceleration (G)
Frequency (Hz)
Active time(min)
5.2 Shock Test Spec:
Acceleration (G) –a
Active time -b
Wave form
Times
Direction: X , Y, Z
5.3 Drop test
Package test: The drop height is 60 cm.
1.5
10~200~10
30
50
20
half-sin
1
6.0 Environment
The display module will meet the provision of this specification during operating condition or after storage
or shipment condition specified below. Operation at 10% beyond the specified range will not cause physical
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damage to the unit.
6.1 Temperature and Humidity
6.1.1 Operating Conditions
The display module operates error free, when operated under the following conditions;
Temperature 0
Relative Humidity 8% to 95%
Wet Bulb Temperature 39.0
0
C to 50 0C
0
C
6.1.2 Shipping Conditions
The display module operates error free, after the following conditions;
Temperature -20
Relative Humidity 8% to 95%
Wet Bulb Temperature 39.0
0
C to 60 0C
0
C
6.2 Atmospheric Pressure
The display assembly is capable of being operated without affecting its operations over the pressure range
as following specified;
PressureNote
Maximum Pressure 1040hPa0m = sea level
Minimum Pressure 674hPa3048m = 10.000 feet
Note : Non-operation attitude limit of this display module = 30,000 feet. = 9145 m.
6.3 Thermal Shock
The display module will not sustain damage after being subjected to 100 cycles of rapid temperature
change. A cycle of rapid temperature change consists of varying the temperature from -20
back again.
0
Thermal shock cycle-20
60
C for 30min
0
C for 30min
Power is not applied during the test. After temperature cycling, the unit is placed in normal room ambient
for at least 4 hours before powering on.
0
C to 600C, and
7.0 Reliability
This display module and the packaging of that will comply following standards.
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7.1 Failure Criteria
The display assembly will be considered as failing unit when it no longer meets any of the requirements
stated in this specification. Only as for maximum white luminance, following criteria is applicable.
2
Note : Maximum white Luminance shall be 125 cd/m
or more.
7.2 Failure Rate
The average failure rate of the display module (from first power-on cycle till 1,000 hours later) will not exceed 1.0%.
The average failure rate of the display module from 1,000 hours until 16,000 hours will not exceed 0.7%
per 1000 hours.
7.2.1 Usage
The assumed usage for the above criteria is:
220 power-on hours per month
500 power on/off cycles per month
Maximum brightness setting
Operation to be within office environment (25
0
C typical)
7.2.2 Component De-rating
All the components used in this device will be checked the load condition to meet the failure rate criteria.
7.3 CCFL Life
The assumed CCFL Life will be longer than 30,000 hours, typical value is 50,000 hours under stable condition at
o
25 ± 5
Standard current at 6.0 ± 0.5mA.
Definition of life: brightness becomes 50% or less than the minimum luminance value of CCFL.
C;
7.4 ON/OFF Cycle
The display module will be capable of being operated over the following ON/OFF Cycles.
ON/OFFValueCycles
+Vin and CCFL power 30,00010 seconds on / 10 seconds off
8.0 Safety
8.1 Sharp Edge Requirements
There will be no sharp edges or comers on the display assembly that could cause injury.
8.2 Materials
8.2.1 Toxicity
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There will be no carcinogenic materials used anywhere in the display module. If toxic materials are used,
they will be reviewed and approved by the responsible ADT Toxicologist.
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8.2.2 Flammability
All components including electrical components that do not meet the flammability grade UL94-
V1 in the module will complete the flammability rating exception approval process. The printed
circuit board will be made from material rated 94-V1 or better. The actual UL flammability rating
will be printed on the printed circuit board.
8.3 Capacitors
If any polarized capacitors are used in the display assembly, provisions will be made to keep them from
being inserted backwards.
8.4 Hazardous Voltages
Any point exceeding 42.4 volts meets the requirement of the limited current circuit. The current through a 2KӨ
resistance is less than 0.7 x f (kHz) mA.
9.0 Other requirements
9.1 National Test Lab Requirement
The display module will satisfy all requirements for compliance to
UL 1950, First Edition U.S.A. Information Technology Equipment
CSA C22.2 No.950-M89 Canada, Information Technology Equipment
EEC 950 International, Information Technology Equipment
EN 60 950International, Information Processing Equipment
(European Norm for IEC950)
9.2 Label
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9.2.1 Product label
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10.0 Mechanical Characteristics
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