CHIMEI INNOLUX V216B1-L05 Specification

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MODEL NO.: V216B1- L05
Toshiba Part Code: V33A00034300
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
Customer: TOSHIBA
Approved by:_______________________________
Note:
1
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
CONTENTS
REVISION HISTORY ------------------------------------------------------- 3
1. GENERAL DESCRIPTION
1.1 OVERVIEW
1.2 FEATURES
1.3 GENERAL
1.4 MECHANICAL
------------------------------------------------------- 4
2. ABSOLUTE MAXIMUM RATINGS ------------------------------------------------------- 5
2.1 ABSOLUTE RATINGS OF ENVIRONMENT
2.2 TFT LCD MODULE
2.3 BACKLIGHT UNIT
3. ELECTRICAL CHARACTERISTICS ------------------------------------------------------- 7
3.1 TFT LCD MODULE
3.2 CCFL (Cold Cathode Fluorescent Lamp) CHARACTERISTICS
4. BLOCK DIAGRAM ------------------------------------------------------- 11
4.1 TFT LCD MODULE
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
5.5 BLOCK DIAGRAM OF INTERFACE
------------------------------------------------------- 12
6. INTERFACE TIMING ------------------------------------------------------- 18
6.1 INPUT SIGNAL TIMING SPECIFICATIONS
6.2 POWER ON/OFF SEQUENCE
7. OPTICAL CHARACTERISTICS ------------------------------------------------------- 22
7.1 TEST CONDITIONS
7.2 OPTICAL SPECIFICATIONS
8. DEFINITION OF LABELS ------------------------------------------------------- 26
8.1 CMO MODULE LABEL
9. PACKAGING ------------------------------------------------------- 27
9.1 PACKING SPECIFICATIONS
9.2 PACKING METHOD
10. PRECAUTIONS
10.1 ASSEMBLY AND HANDLING PRECAUTIONS
10.2 SAFETY PRECAUTIONS
10.3 SAFETY STANDARDS
------------------------------------------------------- 29
11. MECHANICAL CHARACTERISTICS ------------------------------------------------------- 30
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
REVISION HISTORY
Version Date
Ver 3.0 Ver 3.1
Feb. 5,’10 Mar. 2,’10
Page
(New)
All
7
9
10
22 22
Section Description
Approval Specification was first issued.
All
Change the item’s description of LVDS interface:
3.1 Before change: Differential input voltage After change : Differential input voltage(Single-end)
Revise the Note(4) The LVDS input characteristics
3.1 Add Note(0) & Revise the Note(4) CCFL (Cold Cathode Fluorescent Lamp)
3.2 CHARACTERISTICS
Tr(Max.) of Response Time changes from 2.2 to 2
7.2 Tf(Max.) of Response Time changes from 5.8 to 8
7.2
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GENERAL SPECIFICATIONS
1.1 OVERVIEW
The V216B1-L05 model is a 21.6 inch wide TFT-LCD module with a 4-CCFL Backlight Unit and a 30-pin
1ch-LVDS interface. This module supports 1366 x 768 (16:9 wide screen) mode and displays up to 16.7
( 6-bit+Hi-FRC colors) millions colors. The inverter module for the Backlight Unit is not built in.
1.2 FEATURES
- Excellent Brightness: 400nits
- Contrast Ratio:1000:1
- Fast Response Time: 5ms
- Color Saturation: NTSC 72%
- WXGA (1366 x 768 pixels) Resolution
- DE (Data Enable) Only Mode
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Model No.: V216B1 - L05
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- LVDS (Low Voltage Differential Signaling) Interface
- Viewing Angle: 170(H)/160(V) (CR>10) TN Technology
- Color Reproduction (Nature Color)
1.3 GENERAL
Item Specification Unit Note Active Area 477.417 (H) x 268.416 (V) (21.6” diagonal) mm Bezel Opening Area 481.5 (H) x 272.5 (V) mm Driver Element a-si TFT active matrix - Pixel Number 1366 x R.G.B. x 768 pixel Pixel Pitch (Sub Pixel) 0.1165 (H) x 0.3495 (V) mm Pixel Arrangement RGB vertical stripe - Display Colors 16.7 millions color Display Operation Mode Transmissive mode / Normally White - Surface Treatment Hard coating (3H), AG (Haze 25%) -
1.4 MECHANICAL
Item Min. Typ. Max. Unit Note
Horizontal(H) 500.3 501 501.7 mm
Module Size
Vertical(V) 296.4 297 297.6 mm Depth(D) 16.8 17.3 17.8 mm To PCB cover
Weight Na 2350 Na g
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2. ABSOLUTE MAXIMUM RATINGS
2.1 ABSOLUTE RATINGS OF ENVIRONMENT
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
Item Symbol
Storage Temperature
Operating Ambient Temperature TOP
Shock (Non-Operating) SNOP
Vibration (Non-Operating) VNOP
Note (1) Temperature and relative humidity range is shown in the figure below.
(a) 90% RH Max. (Ta Љʳ 40 к).
(b) Wet-bulb temperature should be 39 к Max. (Ta > 40 к).
(c) No condensation.
Note (2) The maximum operating temperature is based on the test condition that the surface temperature of
display area is less than or equal to 65 к with LCD module alone in a temperature controlled
chamber. Thermal management should be considered in final product design to prevent the surface
temperature of display area from being over 65 к. The range of operating temperature may degrade
in case of improper thermal management in final product design.
Note (3) 11 ms, half-sine wave, 1 time for ± X, ± Y, ± Z.
ST
T
Value
Min. Max.
-20 +60
0 +50
- 50 G (3), (5)
- 1.0 G (4), (5)
Unit Note
к
к
(1)
(1), (2)
Note (4) 10 ~ 200 Hz, 10 min, 1 time 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.
Relative Humidity (%RH)
100
90
80
60
Operating Range
40
20
10
Storage Range
Temperature (ºC)
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8060-20 40 0 20 -40
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2.2 TFT LCD MODULE
Item Symbol
Power Supply Voltage Vcc -0.3 6.0 V Input Signal Voltage VIN -0.3 3.6 V
2.3 BACKLIGHT UNIT
Item Symbol
Lamp Voltage V
Note (1) Permanent damage to the device may occur if maximum values are exceeded. Functional
operation should be restricted to the conditions described under normal operating conditions.
Note (2) No moisture condensation or freezing.
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Value
Min. Max.
Te st
Condition
Ta = 25 кЁ Ё
W
Min. Type Max. Unit Note
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
Unit Note
3000 V
RMS
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3. ELECTRICAL CHARACTERISTICS
3.1 TFT LCD MODULE Ta = 25 ±2 к
Parameter Symbol
Power Supply Voltage VCC 4.5 5.0 5.5 V (1) Power Supply Ripple Voltage VRP - - 150 mV Rush Current I
White - 0.50 - A
Power Supply Current
Differential Input High Threshold Voltage
LVDS Interface
Differential Input Low Threshold Voltage Common Input Voltage V Differential input voltage (Single-end) Terminating Resistor R Input High Threshold Voltage VIH 2.7 - 3.3 V CMOS
interface
Input Low Threshold Voltage V
Black - 0.85 0.95 A Vertical Stripe
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
Value
Min. Typ. Max.
- - 3.0 A (2)
RUSH
I
CC
- 0.75 - A
+100 - - mV
V
LVT H
- - -100 mV
V
LVT L
1.125 1.25 1.375 V
LVC
| 200
|V
ID
- 100 - ohm
T
0 - 0.7 V
IL
Ё
600 mV
Unit Note
(3)
(4)
Note (1) The module should be always operated within above ranges.
Note (2) Measurement Conditions:
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
GND
Vcc rising time is 470us
+5V
0.9Vcc
0.1Vcc
470us
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Note (3) The specified power supply current is under the conditions at Vcc = 5 V, Ta = 25 ± 2 ºC, fv = 60 Hz,
whereas a power dissipation check pattern below is displayed.
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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a. White Pattern
Active Area
c. Vertical Stripe Pattern
b. Black Pattern
Active Area
Active Area
Note (4) The LVDS input characteristics are as follows:
Single-end voltage
V
Differential input voltage
V
LVTL
LVTH
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3.2 CCFL (Cold Cathode Fluorescent Lamp) CHARACTERISTICS (Ta = 25 ± 2к)
Parameter Symbol
Lamp Voltage V
Lamp Current I
Lamp Turn On Voltage Vs
Operating Frequency F
Lamp Life Time L
Note (0) Lamp can work stable under IL =7mA as V216B1_L02.
Note (1) The waveform of the voltage output of inverter must be area-symmetric and the design of the
inverter must have specifications for the modularized lamp. The performance of the Backlight, such
W
L
L
BL
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Value
Min. Typ. Max.
- 920 -
4.0 4.5 5.0
1250
1450
30 80
50000
Unit Note
V
mA
V
V
KHz (3)
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
I
RMS
RMS
RMS
RMS
Hrs (4)
= 4.5mA
L
(2), Ta = 25 к
(2), Ta = 0 к
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.
Note (2) The lamp starting voltage V
should be applied to the lamp for more than 1 second after startup.
S
Otherwise the lamp may not be turned on.
Note (3) The lamp frequency may produce interference with horizontal synchronous frequency of the
display input signals, and it may result in 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) The life time of a lamp is defined as when the brightness is larger than 50% of its original value
and the effective discharge length is longer than 80% of its original length (Effective discharge
length is defined as an area that has equal to or more than 70% brightness compared to the
brightness at the center point of lamp.) as the time in which it continues to operate under the
condition at Ta = 25 2к and I
= 4.5 and 7.0mArms.
L
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or P
TWO 187053
30091)
4. BLOCK DIAGRAM
4.1 TFT LCD MODULE
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
SCAN DRIVER IC
RX0(+/-)
RX1(+/-)
RX2(+/-)
RX3(+/-)
RXCLK(+/-)
SELLVDS
Vcc (5V)
GND
V/L
INPUT CONNECTOR
(
JAE,FI-X30SSL-HF
-
-
LAMP CONNECTOR
(JST, BDAMR-02VAS-3)
Inverter (W/O)
TIMING
CONTROLLER
DC/DC CONVERTER &
REFERENCE VOLTAGE
TFT LCD PANEL
(1366x3x768)
DATA DRIVER IC
BACKLIGHT UNIT
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(2)
(2)
(2)
(2)
(2)
5. INPUT TERMINAL PIN ASSIGNMENT
5.1 TFT LCD MODULE
Pin No. Symbol Description Note
1 NC No Connection 2 NC No Connection 3 NC No Connection 4 GND Ground 5 RX0- Negative transmission data of pixel 0 6 RX0+ Positive transmission data of pixel 0 7 GND Ground 8 RX1- Negative transmission data of pixel 1
9 RX1+ Positive transmission data of pixel 1 10 GND Ground 11 RX2- Negative transmission data of pixel 2 12 RX2+ Positive transmission data of pixel 2 13 GND Ground 14 RXCLK- Negative of clock 15 RXCLK+ Positive of clock 16 GND Ground 17 RX3- Negative transmission data of pixel 3 18 RX3+ Positive transmission data of pixel 3 19 GND Ground 20 NC No Connection 21
SELLVDS
(Default:VESA)
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Model No.: V216B1 - L05
Approval
Select LVDS data format (3) (4)
22 NC No Connection 23 GND Ground 24 GND Ground 25 GND Ground 26 VCC Power supply: +5V 27 VCC Power supply: +5V 28 VCC Power supply: +5V 29 VCC Power supply: +5V 30 VCC Power supply: +5V
Note (1) Connector part no.: JAE,FI-X30SSL-HF or P-TWO 187053-30091
LVDS connector pin orderdefined as follows
Note (2) Reserved for CMO internal use, please leave it open
Note (3) Low = Connect to GND: JEIDA Format, High = connect to +3.3V or Open : VESA Format.
Please refer to 5.2 LVDS INTERFACE
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Note (4) LVDS signal pin connected to the LCM side has the following diagram.
R1 in the system side should be less than 1K Ohm. (R1 < 1K Ohm)
Selector (pin21)
R1
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Vcc
R3
R
R2
2
R
3
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
TCON
TCON
Settin
Setting
g
System side
LCM sideSystem side
LCM side
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5.2 LVDS DATA MAPPING TABLE
VESA LVDS formatΚ(SELLVDS pin=H or Open)
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
JEDIA LVDS formatΚ(SELLVDS pin= L)
R0~R7: Pixel R Data (7; MSB, 0; LSB)
G0~G7: Pixel G Data (7; MSB, 0; LSB)
B0~B7: Pixel B Data (7; MSB, 0; LSB)
DE: Data enable signal
Notes(1) RSVD(reserved)pins on the transmitter shall be “H” or( “L” or OPEN)
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5.3 BACKLIGHT UNIT
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
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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.
Color
R7 R6 R5 R4 R3 R2 R1 R0 G7 G6 G5 G4 G3 G2 G1 G0 B7 B6 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
Yellow
White
Red(0) / Dark
Red(1)
Red(2)
:
:
Red(253)
Red(254)
Red(255)
Green(0) / Dark
Green(1)
Green(2)
:
:
Green(253)
Green(254)
Green(255)
Blue(0) / Dark
Blue(1)
Blue(2)
:
:
Blue(253)
Blue(254)
Blue(255)
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
Red Green Blue
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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0
0
0
0
0
0
1
1
1
1
0
0
0
0
0
0
1
1
0
0
0
0
0
0
0
0
0
0
1
1
1
1
1
1
0
0
1
1
1
1
1
1
1
1
1
1
1
1
0
0
0
0
0
0
0
0
0
1
0
0
0
0
1
0
0
0
:
:
:
:
:
:
:
:
:
:
:
:
1
1
0
1
0
0
1
1
1
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
1
1
0
0
0
0
1
1
0
0
0
0
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
Data Signal
0
0
0
0
0
0
0
0
1
1
1
1
0
0
0
0
1
1
1
1
0
0
0
0
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
:
:
:
:
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
:
:
:
:
1
1
1
1
1
1
0
0
0
0
0
0
:
:
:
:
0
0
0
0
0
0
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
1
0
0
1
0
1
1
0
0
0
:
:
0
0
0
0
0
1
:
:
0
1
1
0
0
0
:
:
0
0
0
1
1
1
0
1
1
0
1
1
0
0
0
0
0
0
:
:
0
0
0
0
0
0
0
0
0
1
0
0
:
:
1
0
0
0
1
0
0
0
0
0
0
0
:
:
0
1
0
1
0
1
0
1
1
1
1
1
1
0
0
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
:
:
:
:
:
:
1
1
1
1
1
1
0
0
0
1
1
1
1
1
1
0
0
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
:
:
:
:
1
1
1
1
1
1
0
0
0
0
0
0
0
1
1
1
1
1
1
1
1
1
0
0
0
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
1
0
1
0
:
:
:
:
:
:
1
0
1
1
1
0
1
1
1
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G
0-G
0
G0-G
0
0
p
5.5 BLOCK DIAGRAM OF INTERFACE
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Model No.: V216B1 - L05
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CN1
R0-R7
B
-B7
DE
Host
Graphics
Controller
Rx0+
Rx
TxIN
-
Rx1+
7
Rx1-
Rx2+
Rx2-
Rx3+
-
CLK+
PLL
-
51Ө
51Ө
51Ө
51Ө
51Ө
51Ө 51Ө
51Ө
51Ө
51Ө
100pF
100
100pF
100pF
100pF
R0-R7
7
F
B
-B7
DE
PLL
DCLK
Timing
Controller
LVDS Transmitter
THC63LVDM83A
LVDS Receiver
THC63LVDF84A
(LVDF83A)
R0~R7 : Pixel R Data ,
G0~G7 : Pixel G Data ,
B0~B7 : Pixel B Data ,
DE : Data enable signal
DCLK : Data clock signal
Note (1) The system must have the transmitter to drive the module.
Note (2) LVDS cable impedance shall be 50 ohms per signal line or about 100 ohms per twist-pair line when it is
used differentially.
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g
6. INTERFACE TIMING
6.1 INPUT SIGNAL TIMING SPECIFICATIONS
The input signal timing specifications are shown as the following table and timing diagram.
nal Item Symbol Min. Typ. Max. Unit Note
Si
Frequency
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F
clkin
(=1/TC)
60 76 82 MHz
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
LVDS
Receiver
Clock
LVDS
Receiver
Data
Vertical
Active
Display
Te rm
Horizontal
Input cycle to
cycle jitter
Spread
spectrum
Spread
spectrum
Setup Time Tlvsu 600 - - ps
Hold Time Tlvhd 600 - - ps
Frame Rate
Total Tv 778 806 888 Th Tv=Tvd+Tvb
Display Tvd 768 768 768 Th -
Blank Tvb 10 38 120 Th -
Total Th 1442 1560 1936 Tc Th=Thd+Thb
T
clkin_mod
F
F
Fr
rcl
SSM
ЁЁ
F
-2%
clkin
200 KHz
47 50 53
57 60 63
Ё
200 ps (3)
F
+2% MHz
clkin
Hz
(4)
(5)
Active
Display
Te rm
Note (1) Since this module is operated in DE only mode, Hsync and Vsync input signals should be set to
low logic level. Otherwise, this module would operate abnormally.
(2) Please refer to 5.1 for detail information.
Display Thd 1366 1366 1366 Tc -
Blank Thb 76 194 570 Tc -
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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INPUT SIGNAL TIMING DIAGRAM
Tv
DE
DCLK
DE
DATA
Th
Tc
Tvd
Thb
Tvb
Thd
Valid display data (1366 clocks)
Note (3) The input clock cycle-to-cycle jitter is defined as below figures. Trcl = I T
19
– TI
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Note (4) The SSCG (Spread spectrum clock generator) is defined as below figures.
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Note (5) The LVDS timing diagram and setup/hold time is defined and showing as the following figures.
LVDS RECEIVER INTERFACE TIMING DIAGRAM
Tc
RXCLK+/-
RXn+/-
Tlvsu
Tlvhd
1T
3T
5T
7T
9T
11T
13T
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14
14
20
14
14
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Љ
Љ
Љ
Љ
Љ
Љ
Љ
Љ
6.2 POWER ON/OFF SEQUENCE
(Ta = 25 ± 2 к)
To prevent a latch-up or DC operation of LCD module, the power on/off sequence should be as the
diagram below.
0V
0.5ЉT1Љ10ms
2
0
0
1s
50ms
T
3
50ms
T
4
T
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0.1V
CC
T
2
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
cc
0.1V
3T1
T
T4
LVDS Signals
0ЉT7ЉT2
0
T
0V
8
T3
Option Signals
(SELLVDS)
Backlight (Recommended)
T
5
500ms
100msЉT6
Power On
T7
50%
5
T
Power ON/OFF Sequence
VALID
50%
Power Off
T
8
T
6
Note (1) The supply voltage of the external system for the module input should follow the definition of Vcc.
Note (2) Apply the lamp voltage within the LCD operation range. When the backlight turns on before the LCD
operation or the LCD turns off before the backlight turns off, the display may momentarily become
abnormal screen.
Note (3) In case of Vcc is in off level, please keep the level of input signals on the low or high impedance. If
T2<0,that maybe cause electrical overstress failure.
Note (4) T4 should be measured after the module has been fully discharged between power off and on period.
Note (5) Interface signal shall not be kept at high impedance when the power is on.
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7. OPTICAL CHARACTERISTICS
7.1 TEST CONDITIONS
Item Symbol Value Unit
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
Approval
Ambient Temperature Ta
Ambient Humidity Ha
25²2 к
50²10
%RH
Supply Voltage VCC 5.0 V
Input Signal According to typical value in "3. ELECTRICAL
CHARACTERISTICS”
Inverter Current IL 4.5 ± 0.5 mA
Inverter Driving
FL 41 ± 3 KHz
Frequency
7.2 OPTICAL CHARACTERISTICS
Item Symbol Condition Min. Typ. Max. Unit Note
Contrast Ratio CR 600 1000 - (2)
T
T
GW
R
F
C
Response Time
Center Luminance of White L
White Variation
Cross Talk CT 4 % (5)
T
=0q, TY =0q
Red
Rx 0.644 -
Ry 0.331 -
Gx 0.273 -
x
Viewing Angle at
Normal Direction
Green
Gy 0.588 -
Color Chromaticity
Blue
Bx 0.151 -
By 0.061 -
1.3 2 ms (3)
3.7 8
300 400 (4)
1.3 - (7)
Typ.
-0.03
Typ.
+0.03
(6)
White
Wx 0.285 -
0.293
Deg. (1)
Viewing Angle
Wy
Color Gamut CG
Horizontal
Vertical
Tx+
T
x
TY+
T
Y
72 %
75 85
-
75 85
CRt10
70 80
-
70 80
Note (1) Definition of Viewing Angle (Tx, Ty):
Viewing angles are measured by Autronic Conoscope Cono-80
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-
NTSC
Ratio
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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Normal
Tx = Ty = 0
Ty- Ty
TX- = 90
6 o’clock
y- = 90
T
x-
y-
Note (2) Definition of Contrast Ratio (CR):
The contrast ratio can be calculated by the following expression.
Contrast Ratio (CR) = L255 / L0
L255: Luminance of gray level 255
L 0: Luminance of gray level 0
CR = CR (5),
CR (X) is corresponding to the Contrast Ratio of the point X at the figure in Note (7).
Tx
Tx
y+
12 o’clock direction
y+ = 90
T
TX+ = 90
x+
Note (3) Definition of Response Time (T
Gray Level 255
100%
90%
Optical
Response
10%
0%
R
T
, TF):
R
Note (4) Definition of Luminance of White (L
Measure the luminance of gray level 255 at center point and 5 points
= L (5)
L
C
L (X) is corresponding to the luminance of the point X at the figure in Note (7).
Note (5) Definition of Cross Talk (CT):
):
C
Gray Level 0
T
Gray Level 255
F
Time
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A
A
CT = | YB – YA | / YAu 100 (%)
Where:
= Luminance of measured location without gray level 0 pattern (cd/m2)
Y
A
= Luminance of measured location with gray level 0 pattern (cd/m2)
Y
B
(0, 0)
Y
(D/8,W/2)
A, L
Y
(D/2,7W/8)
A, D
Note (6) Measurement Setup:
ctive Area
Gray 128
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Y
(D/2,W/8)
A, U
Y
Y
A, R
(D,W)
(7D/8,W/2)
B, L
Y
B, D
(0, 0)
(D/4,W/4)
(D/8,W/2)
(D/2,7W/8)
ctive Area
Gray 0
Gray 128
Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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Y
(D/2,W/8)
B, U
Y
(7D/8,W/2)
B, R
(3D/4,3W/4)
(D,W)
The LCD module should be stabilized at given temperature for 1 hour to avoid abrupt temperature
change during measuring. In order to stabilize the luminance, the measurement should be
executed after lighting Backlight for 1 hour in a windless room.
Note (7) Definition of White Variation (GW):
Measure the luminance of gray level 255 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: Mar. 2, 2010
Model No.: V216B1 - L05
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Horizontal Line
D
D/4 D/2 3D/4
W/4
W/2
W
Vertical Line
3W/4
1 2
X
5
3 4
Active Area
: Test Point
X=1 to 5
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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.
V216B1-L05 Rev. XX
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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E207943
CHI MEI
OPTOELECTRONICS
X X X X X X X Y M D L N N N N
MADE IN TAIWAN
GEMN
RoHS
CHI MEI
OPTOELECTRONICS
V216B1-L05 Rev. XX
X X X X X X X Y M D L N N N N
E207943
MADE IN TAIWAN
MADE IN CHINA
LEOO(or CAPG or CANO)
RoHS
(a) Model Name: V216B1-L05
(b) Revision: Rev. XX, for example: A0, A1… B1, B2… or C1, C2…etc.
(c) Serial ID: X X
X X X X X Y M D L N N N N
Serial No.
Serial ID includes the information as below:
(a) Manufactured Date: Year: 2001=1, 2002=2, 2003=3, 2004=4….2010=0,2011=1,2012=2....
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, …etc.
Product Line
Year, Month, Date
CMO Internal Use
CMO Internal Use
Revision
CMO Internal Use
st
to 31st, exclude I ,O, and U.
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9. PACKAGING
9.1 PACKING SPECIFICATIONS
(1) 13 LCD TV modules / 1 Box
(2) Box dimensions: 563(L) X 417 (W) X 375 (H) mm
(3) Weight: approximately 33Kg (13 modules per box)
9.2 PACKING METHOD
Figures 9-1 and 9-2 are the packing method
LCD TV Module
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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Carton
Anti-Static Bag
Paper pulp mold(Bottom)
Carton Label
Carton Label
Figure.9-1 Packing Method
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Issued Date: Mar. 2, 2010
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Sea / Land Transportation
(40ft HQ Container)
Pallet Stack:L850*W1150*H2530mm
(L625mm,t=3mm)
Film
(L1120mm,t=5mm)
Carton Label
PE Sheet
PP Belt
(L1150*W850*H140mm)
Sea / Land Transportation
(40ft Container)
Pallet Stack:L850*W1150*H2155mm
(L625mm,t=3mm)
Film
(L1120mm,t=5mm)
Carton Label
PE Sheet
PP Belt
(L1150*W850*H140mm)
Figure.9-2 packing method
Air Transportation
Pallet Stack:L850*W1150*H1265mm
(L625mm,t=3mm)
Film
(L1120mm,t=5mm)
Carton Label
PE Sheet
(L1150*W850*H140mm)
PP Belt
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Issued Date: Mar. 2, 2010
Model No.: V216B1 - L05
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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) It is recommended to assemble or to install a module into the user’s system in clean working areas.
The dust and oil may cause electrical short or worsen the polarizer.
(3) Do not apply pressure or impulse to the module to prevent the damage of LCD panel and backlight.
(4) Always follow the correct power-on sequence when the LCD module is turned on. This can prevent the
damage and latch-up of the CMOS LSI chips.
(5) Do not plug in or pull out the I/F connector while the module is in operation.
(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) Moisture can easily penetrate into LCD module and may cause the damage during operation.
(9) High temperature or humidity may deteriorate the performance of LCD module. Please store LCD
modules in the specified storage conditions.
(10) When ambient temperature is lower than 10ºC, the display quality might be reduced. For example, the
response time will become slow, and the starting voltage of CCFL will be higher than that of room
temperature.
10.2 SAFETY PRECAUTIONS
(1) The startup voltage of a backlight is over 1000 Volts. It may cause an electrical shock while assembling
with the 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.
10.3 SAFETY STANDARDS
The LCD module should be certified with safety regulations as follows:
(1) UL60950-1 or updated standard.
(2) IEC60950-1 or updated standard.
(3) UL60065 or updated standard.
(4) IEC60065 or updated standard.
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11. MECHANICAL CHARACTERISTIC
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