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- CONTENTS -
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 Vcc POWER DIP CONDITION
3.3 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 LVDS DATA MAPPING TABLE
5.3 BACKLIGHT UNIT
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. PACKAGING
8.1 PACKING SPECIFICATIONS
8.2 PACKING METHOD
9. DEFINITION OF LABELS
10. PRECAUTIONS
10.1 ASSEMBLY AND HANDLING PRECAUTIONS
10.2 SAFETY PRECAUTIONS
11. MECHANICAL CHARACTERISTICS
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REVISION HISTORY
Date SectionDescription
M190Z1-L03 Specifications was first issued. AllJun 13, 08’ 2.1
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1. GENERAL DESCRIPTION
1.1 OVERVIEW
M190Z1-L01 is a 19” wide TFT Liquid Crystal Display module with 4 CCFL Backlight unit and 30 pins
2ch-LVDS interface. This module supports 1680 x 1050 WSXGA+ mode and can display 16.7M colors.
The inverter module for Backlight is not built in.
1.2 FEATURES
- Super Wide viewing angle.
- Super High contrast ratio
- Super fast response time
- High color saturation
- WSXGA+ (1680 x 1050 pixels) resolution
- DE (Data Enable) only mode
- LVDS (Low Voltage Differential Signaling) interface
- RoHS Compliance
1.3 APPLICATION
- TFT LCD Monitor
1.4 GENERAL SPECIFICATI0NS
ItemSpecification UnitNote
Diagonal Size 481.4 (18.95” diagonal) mm
Active Area 408.24 (H) x 255.15 (V) mm
Bezel Opening Area 412.24 (H) x 259.15 (V) mm
Driver Element a-si TFT active matrix -Pixel Number 1680 x R.G.B. x 1050 pixelPixel Pitch 0.243 (H) x 0.243 (V) mmPixel Arrangement RGB vertical stripe -Display Colors 16.7Mcolor Transmissive Mode Normally White -Color saturation 72%NTSC (typ.) -Surface Treatment Hard coating (3H), Anti-glare (Haze 25) --
(1)
1.5 MECHANICAL SPECIFICATIONS
ItemMin.Typ. Max.UnitNote
Horizontal(H) 427.5428428.5mm
Module Size
Note (1) Please refer to the attached drawings for more information of front and back outline dimensions.
Vertical(V) 277.5278278.5mm
Depth(D) - 16.216.7mm
Weight -18351880g-
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2. ABSOLUTE MAXIMUM RATINGS
2.1 ABSOLUTE RATINGS OF ENVIRONMENT
ItemSymbol
Storage Temperature T
Operating Ambient Temperature T
Shock (Non-Operating) S
Vibration (Non-Operating) V
Note (1) Temperature and relative humidity range is shown in the figure below.
ST
OP
NOP
NOP
Min.Max.
-20+60ºC(1)
Value
0+50ºC(1), (2)
-50G(3), (5)
-1.5G(4), (5)
UnitNote
(a) 90 %RH Max. (Ta Љ
(b) Wet-bulb temperature should be 39 ºC Max. (Ta > 40 ºC).
(c) No condensation.
40
Relative Humidity (%RH)
100
90
80
60
40
20
10
ºC).
Operating Range
Storage Range
8060-20 40 0 20 -40
Temperature (ºC)
Note (2) The temperature of panel display surface area should be 0 ºC Min. and 60 ºC Max.
Note (3) 50G,11ms, half sine wave, 1 time for ± X, ± Y, ± Z.
Note (4) 10 ~ 300 Hz, 10min/cycle, 3 cycles each X, Y, Z.
Note (5) At testing Vibration and Shock, the fixture in hol
so that the module would not be twisted or bent by the fixture.
t Room TemperatureLCD Module
Side Mount Fixing Scre
w
Gap=2mm
Bracket
ding the module has to be hard and rigid enough
Side Mount Fixing Screw
Stage
5 / 25
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2.2 ELECTRICAL ABSOLUTE RATINGS
2.2.1 TFT LCD MODULE
ItemSymbol
Power Supply Voltage Vcc-0.3+6.0V(1)
Min.Max.
2.2.2 BACKLIGHT UNIT
ItemSymbol
Lamp Voltage V
Lamp Current I
Lamp Frequency F
Note (1) Permanent damage to the device may occur if maximum values are exceeded. Function operation
L
L
L
Min.Max.
Value
Value
-2.0KV
-7.5mA
-80KHz
UnitNote
UnitNote
RMS
RMS
(1), (2), IL = 7.0mA
(1), (2)
should be restricted to the conditions described under Normal Operating Conditions.
Note (2) Specified values are for lamp (Refer to 3.2 for further information).
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3. ELECTRICAL CHARACTERISTICS
3.1 TFT LCD MODULE Ta = 25 ± 2 ºC
Parameter Symbol
Min.Typ. Max.
Power Supply Voltage Vcc4.55.05.5VRipple Voltage V
Rush Current I
RP
RUSH
--100mV-
-
White-0.64(0.87) A(3)a
Power Supply Current
Black-1.01(1.32) A(3)b
Vertical Stripe
lcc
-0.99(1.32) A(3)c
LVDS differential input voltage Vid 100-600mV
LVDS common input voltage Vic -1.2-V
Note (1) The module should be always operated within above ranges.
Value
-
UnitNote
3.5A(2)
Note (2) Measurement Conditions:
+5.0V
R1
47K
(High to Low)
(Control Signal)
SW
+12V
C1
1uF
VR1
R2
1K
47K
Q1 2SK1475
C2
0.01uF
Q2
2SK1470
FUSE
C3
1uF
Vcc
(LCD Module Input)
Vcc rising time is 470Ps
Vcc
0.9Vcc
0.1Vcc
GND
470Ps
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Note (3) The specified power supply current is under the conditions at Vcc = 5.0 V, Ta = 25 ± 2 ºC, fv = 60
Hz, whereas a power dissipation check pattern below is displayed.
a. White Pattern
Active Area
c. Vertical Stripe Pattern
b. Black Pattern
Active Area
R
G
R
B
G
R
B
G
RR
G
B
B
B
B
R
R
R
G
G
G
G
B
B
B
B
R
R
Active Area
3.2 Vcc Power Dip Condition:
Dip condition:
Vcc
4.5V
4.0V
Td
msTdVVccV20,5.40.4ddd
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3.3 BACKLIGHT UNIT Ta = 25 ± 2 ºC
Parameter Symbol
Lamp Input Voltage V
Lamp Current I
Lamp Turn On Voltage V
Operating Frequency F
Lamp Life Time L
Power Consumption P
L
L
S
L
BL
L
Min.Typ. Max.
698775853V
2.07.07.5mA
--- ---
--- ---
40 --- 80KHz(3)
40000 ------Hrs (5)
--- 21.7 --- W(4), IL = 7.0 mA
Note (1) Lamp current is measured by utilizing high frequency current meters as shown below:
Value
1500(25к)
1710(0к)
UnitNote
RMS
RMS
V
RMS
V
RMS
IL = 7.0 mA
(1)
(2)
(2)
HV (Pink)
LV (White)
LCD
HV (Blue)
LV (Black)
1
2
A
Inverter
A
Current Meter
YOKOGAWA 2016
1
2
A
Note (2) The voltage that must be larger than Vs should be applied to the lamp for more than 1 second
after startu
Note (3) The lamp frequency may produce interference with horiz
p. Otherwise th
e lamp may not be turned on.
ontal 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.
Note (4) P
Note (5) The lifetime of lamp can be defined as the time in which it continues to operate u
= ILVL 4 CCFLs
L
Ta = 25 2
o
C and IL = 7.0 mA rms until one of the following events occurs:
nder the condition
(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 it
s original value. (Ef
ignition length is defined as an area that has less than 70% brightness compared to the
brightness in the center point.)
Note (6) The waveform of the voltage output of inverter must be area-symmetric and the design of the
inverter must have spe
cifications 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.
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The output of the inverter must have symmetrical (negative and positive) voltage waveform and
symmetrical current waveform.(Unsymmetrical ratio is less than 10%) Please do not use the inverter
which has unsymmetrical voltage and unsymmetrical current and spike wave. Lamp frequency may
produce interface with horizontal synchronous frequency and as a result this may cause beat on the
display. Therefore lamp frequency shall be as away possible from the horizontal synchronous
frequency and from its harmonics in order to prevent interference.
Requirements for a system inverter design, which is intended to have a better d
better power efficiency and a more reliable lamp. It shall help increase the lamp lifetime and reduce its
leakage current.
a. The asymmetry rate of the inverter waveform should be 10% below;
b. The distortion rate of the waveform should be within Ѕ
c. The ide
al sine wave form shall be symmetric in positive and negative polarities.
* Asymmetry rate:
I p
I -p
| I
* Distortion rate
I
(or I –p) / I
p
– I –p | / I
p
2 ± 10%;
* 100%
rms
rms
isplay performance, a
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4. BLOCK DIAGRAM
4.1 TFT LCD MODULE
RXO0(+/-)
RXO1(+/-)
RXO2(+/-)
RXO3(+/-)
RXOC(+/-)
RXE0(+/-)
RXE1(+/-)
RXE2(+/-)
RXE3(+/-)
RXEC(+/-)
NC
Vcc
GND
VL
(JAE- FI-X30SSL-HF or
INPUT CONNECTOR
-
LAMP CONNECTOR
YEONHO 35001HS-02L
4.2 BACKLIGHT UNIT
LVDS INPUT /
TIMING CONTROLLER
DC/DC CONVERTER &
REFERENCE VOLTAGE
SCAN DRIVER IC
TFT LCD PANEL
(1680x3x1050)
DATA DRIVER IC
BACKLIGHT UNIT
1 HV(Pink)
2 LV(White)
1 HV(Blue)
2 LV(Black)
1 HV(Pink)
2 LV(White)
1 HV(Blue)
2 LV(Black)
Note: On the same side, the same polarity lamp voltage design for lamps is recommended.
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9RXOC+ Positive LVDS differential clock input. (odd)
10RXO3- Negative LVDS differential data input. Channel O3(odd)
11 RXO3+ Positive LVDS differential data input. Channel O3 (odd)
12RXE0-Negative LVDS differential data input. Channel E0 (even)
13RXE0+Positive LVDS differential data input. Channel E0 (even)
14GNDGround
15RXE1-Negative LVDS differential data input. Channel E1 (even)
16RXE1+Positive LVDS differential data input. Channel E1 (even)
17GNDGround
18RXE2-Negative LVDS differential data input. Channel E2 (even)
19RXE2+Positive LVDS differential data input. Channel E2 (even)
20RXEC-Negative LVDS differential clock input. (even)
21RXEC+Positive LVDS differential clock input. (even)
22RXE3-Negative LVDS differential data input. Channel E3 (even)
23RXE3+Positive LVDS differential data input. Channel E3 (even)
24GNDGround
25NCNot connection, this pin should be open.
26NCNot connection, this pin should be open.
27NCNot connection, this pin should be open.
28Vcc+5.0V power supply
29Vcc+5.0V power supply
30Vcc+5.0V power supply
Note (1) Connector Part No.: 093G30-B001A (STARCONN ) or FI-X30SSL-HF (JAE) or equivalent.
Note (2) The first pixel is odd.
Note (3) Input signal of even and odd clock should be the same timing.
5.2 LVDS DATA MAPPING TABLE
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LVDS Channel O0
LVDS Channel O1
LVDS Channel O2
LVDS Channel O3
LVDS Channel E0
LVDS Channel E1
LVDS Channel E2
LVDS Channel E3
LVDS output D7D6D4D3D2D1D0
Data order OG0OR5OR4OR3OR2OR1OR0
LVDS output D18D15D14D13D12D9D8
Data order OB1OB0OG5OG4OG3OG2OG1
LVDS output D26D25D24D22D21D20D19
Data order DENANAOB5OB4OB3OB2
LVDS output D23D17D16D11 D10D5D27
Data order NAOB7OB6OG7OG6OR7OR6
LVDS output D7D6D4D3D2D1D0
Data order EG0ER5ER4ER3ER2ER1ER0
LVDS output D18D15D14D13D12D9D8
Data order EB1EB0EG5EG4EG3EG2EG1
LVDS output D26D25D24D22D21D20D19
Data order DENANAEB5EB4EB3EB2
LVDS output D23D17D16D11 D10D5D27
Data order NAEB7EB6EG7EG6ER7ER6
5.3 BACKLIGHT UNIT
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PinSymbolDescription Remark
1HVHigh Voltage Pink
2LV Low Voltage White
1HVHigh Voltage Blue
2LV Low Voltage Black
Note (1) Connector Part No.: YEONHO 35001 HS-02L or equivalent
Note (2) User’s connector Part No.: YEONHO 35001 WR-02L or equivalent
5.4 COLOR DATA INPUT ASSIGNMENT
The brightness of each primary color (red, green and blue) is based on the 8-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.
Data Signal
Basic
Colors
Gray
Scale
Of
Red
Color
Black
Red
Green
Blue
Cyan
Magenta
Yellow
White
Red(0) / Dark
Red(1)
Red(2)
Note (1) 0: Low Level Voltage, 1: High Level Voltage
Green(2)
:
:
Green(253)
Green(254)
Green(255)
Blue(0) / Dark
Blue(1)
Blue(2)
:
:
Blue(253)
Blue(254)
Blue(255)
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
0
0
0
0
0
0
0
0
0
0
0
6. INTERFACE TIMING
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
0
0
0
0
0
0
0
0
0
0
1
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
:
0
0
0
0
1
1
1
1
1
1
0
0
0
0
0
1
1
1
1
1
1
1
0
0
0
0
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
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
0
0
0
0
0
0
0
0
0
0
0
:
:
1
0
0
0
1
0
0
0
0
0
0
0
:
:
0
1
0
1
0
1
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
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
1
0
:
:
:
:
:
:
:
:
:
:
1
1
1
0
1
1
1
1
1
0
1
1
1
1
1
14 / 25
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6.1 INPUT SIGNAL TIMING SPECIFICATIONS
The input signal timing specifications are shown as the following table and timing diagram.
SignalItemSymbolMin.Typ. Max.UnitNote
Frequency Fc506076MHz-
LVDS Clock
LVDS Da t a
Vertical Active Display Term
Horizontal Active Display Term
PeriodTc 1316.720ns
High Time Tch -4/7-Tc Low Time Tcl -3/7-Tc Setup Time Tlvs600--ps Hold Time Tlvh600--ps Frame RateFr-6075HzTv=Tvd+Tvb
Total Tv106610801287ThDisplayTvd105010501050ThBlankTvbTv-Tvd30Tv-TvdThTotal Th9109201090Tc Th=Thd+Thb
DisplayThd840840840Tc BlankThb Th-Thd80Th-Thd Tc -
Note: Because this module is operated by DE only mode, Hsync an
to low logic level or ground. Otherwise, this module would operate abnormally.
INPUT SIGNAL TIMING DIAGRAM
DE
h
T
DCLK
T
DE
DATA
C
Thb
hd
T
d Vsync input signals should be set
6.2 POWER ON/OFF SEQUENCE
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To prevent a latch-up or DC operation of LCD module, the power on/off sequence should be as the
diagram below.
- Power Supply
for LCD, Vcc
- Interface Signal
(LVDS Signal of
Transmitter), V
-
Power for Lamp
I
Timing Specifications:
0.5< t1 Љ 10 msec
0 < t2 Љ
50 msec
0 < t3 Љ 50 msec
t4 Њ 500 msec
0V
0V
Power On
90%
10%
Power OffRestart
90%
10%
t1
t4
t3t2
Valid Data
t6t5
50%50%
ONOFFOFF
t5 Њ 450 msec
t6 Њ 90 msec
Note.
(1) The supply voltage of the external system for the module input should be
(2) Apply the lamp voltage within the LCD operation ra
nge. When the backlight turns on before the LCD
operation of the LCD turns off before the backlight turns off, the display may momentarily become abnormal
screen.
(3) In case of Vcc = off level, please keep the level of input signals on
(4) T4 should be measured after the module has been fully discharged betwee
(5) Interface signal shall not be kept at high impedan
ce when the power is on.
7. OPTICAL CHARACTERISTICS
the same as the definition of Vcc.
the low or keep a high impedance.
n power of and on period.
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7.1 TEST CONDITIONS
ItemSymbolValue Unit
Ambient Temperature Ta
Ambient Humidity Ha
Supply Voltage V
CC
25r2
50r10
5.0V
Input Signal According to typical value in "3. ELECTRICAL CHARACTERISTICS"
Lamp Current I
Inverter Operating Frequency F
L
L
7.0mA
55KHz
InverterDarfon VK.13165.101
7.2 OPTICAL SPECIFICATIONS
The relative measurement methods of optical characteristics are shown in 7.2. The following items should
be measured under the test conditions described in 7.1 and stable environment shown in Note (5).
ItemSymbolCondition Min.Typ. Max.UnitNote
Red
Green
Color
Chromaticity
Blue
White
Rx
Ry
Gx
Gy
Bx
By
Wx
Wy
Center Luminance of White L
Contrast Ratio CR
Response Time
White Variation
Horizontal
Viewing Angle
Vertica l
T
T
GWT
Tx+
T
x
TY+
T
Y
Typ –
=0q, TY =0q
T
x
0.03
CS-1000T
C
230300---cd/m2(4), (5)
7601200----(2), (5)
R
F
Tx=0q, TY =0q
=0q, TY =0q
x
---0.73.7ms
---2.35.3ms
---
7585---
-
CR Њ
10
-
75
70
70
0.647
0.334
0.284
0.607
Typ +
0.151
0.071
0.313
0.329
1.31.5
85---
80---
80---
0.03
o
C
%RH
(1), (5)
(3)
-(5), (6)
Deg.(1), (5)
17 / 25
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Note (1) Definition of Viewing Angle (Tx, Ty):
Normal
Tx = Ty = 0º
Ty-Ty
TX- = 90º
6 o’clock
T
y- = 90º
x-
y-
Note (2) Definition of Contrast Ratio (CR):
The contrast ratio can be calculated by the followi
Contrast Ratio (CR) = L255 / L0
L255: Luminance of gray level 255
L 0: Luminance of gray level 0
CR = CR (1)
Tx
Tx
ng ex
y+
pression.
12 o’clock direction
T
y+ = 90º
x+
TX+ = 90º
CR (X) is corresponding to the Contrast Ratio of the point X at Figure in Note (6).
Note (3) Definition of Response Time (T
Gray Level 255
100%
90%
Optical
Response
10%
0%
66.67ms
T
, TF):
R
R
Gray Level 0
18 / 25
T
F
66.67m
Gray Level 255
Time
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Note (4) Definition of Luminance of White (LC):
Measure the luminance of gray level 255 at center point
L
= L (1)
C
L (x) is corresponding to the luminance of the point X at Figure in Note (6).
Note (5) Mea
surement Setup:
The LCD module should be stabilized at given temperature for 40 minutes to avoid abrupt
temperature
change
during measuring. In order to stabilize the luminance, the measurement
should be executed after lighting Backlight for 40 minutes in a windless room.
LCD Module
LCD Panel
USB2000
Field of View = 2º
Center of the Screen
Note (6) Definition of White Variation (GW)
Meas
ure the luminance of gray level 255 at 13 points
CS-1000T
Light Shield Room
(Ambient Luminance < 2 lux)
:
GW = Max
Vertical Line Number
imum [L (1), L (2) ……L (4), L (13)] / Minimum [L (1), L (2) …… L (4), L (13)]
˄˃
˛˂ˇ
˛
˛˂ˇ˛˂ˇ˛˂ˇ
˄˃
Horizontal Line Number
ˉ
˅
ˌ
ˇˈ
˄˄˄˅˄ˆ
˄˃˄˃
˪˂ˇ˪˂ˇ˪˂ˇ˪˂ˇ
ˊ
ˆ
˄
˪
ctive area
19 / 25
ˋ
˄˃
X
ΚTest Point
XЈ1 to 13
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8. PACKAGING
8.1 PACKING SPECIFICATIONS
(1) 7 LCD modules / 1 Box
(2) Box dimensions: 525(L) X 300 (W) X 360 (H) mm
(3) Weight: approximately 15.19 Kg (7 modules per box)
8.2 PACKING METHOD
(1) Carton Packing should have no failure in the following reliability test items.
Test Item Test Conditions Note
ISTA STANDARD
Random, Frequency Range: 1 – 200 Hz
Vibration
Dropping Test 1 Corner, 3 Edge, 6 Face, 60cm Non Operation
Top & Bottom: 30 minutes (+Z), 10 min (-Z),
Right & Left: 10 minutes (X)
Back & Forth 10 minutes (Y)
Non Operation
Figure. 8-1 Packing method
20 / 25
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For ocean shipping
Sea / Land Transportation (40ft HQ Container)
PP Belt
Carton label
Corner Protector
(50*50*1000mm)
Corner Protector
(50*50*1000mm)
Pallet
(1150*1150*143mm)
Film
Film
PE Sheet
PE Sheet
Corner Protector
(50*50*1130mm)
Sea / Land Transportation (40ft Container)
PP Belt
Carton label
Film
Film
PE Sheet
PE Sheet
Corner Protector
(50*50*1130mm)
Figure. 8-2 Packing method
Corner Protector
(50*50*600mm)
Corner Protector
(50*50*1000mm)
Pallet
(1150*1150*143mm)
For air transport
Air Transportation
Corner Protector
(50*50*1130mm)
PE Sheet
Film
PP Belt
Carton label
Corner Protector
(50*50*1000mm)
Pallet
(1150*1150*143mm)
Figure. 8-3 Packing method
21 / 25
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9. DEFINITION OF LABELS
9.1 CMO MODULE LABEL
The barcode nameplate is pasted on each module as illustration, and its definitions are as following explanation.
M190Z1-L01 Rev.
(LEOO)
XXXXXX
CM19Z11XXXXXLXXLYM DNNNN
YMDLNNNN
RoHS
(a) Model Name: M190Z1-L01
(b) Revision: Rev. XX, for example: A0, A1… B1, B2… or C1, C2…etc.
(c) CMO barcode definition:
Serial ID: XX
Code Meaning Description
XXCMO internal use XXRevision Cover all the change
XCMO internal use -
YMD
LProduct line # Line 1=1, Line 2=2, Line 3=3, …
NNNNSerial number Manufacturing sequence of product