LC470EUF LG | Alldatasheet
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Technical content
Datasheet sections
- 25 EMC 7-2
- 28 HANDLING PRECAUTIONS FOR PROTECTION FILM 9-6
- 11 SIGNAL TIMING SPECIFICATIONS 3-3
- 27 PRECAUTIONS
- 27 MOUNTING PRECAUTIONS 9-1
- 27 OPERATING PRECAUTIONS 9-2
- 28 ELECTROSTATIC DISCHARGE CONTROL 9-3
- 28 PRECAUTIONS FOR STRONG LIGHT EXPOSURE 9-4
- 28 STORAGE 9-5
- 26 INFORMATION OF LCM LABEL 8-1
- 26 PACKING FORM 8-2
- 26 PACKING
- 25 Environment 7-3
- 13 LVDS SIGNAL SPECIFICATIONS 3-4
- 16 POWER SEQUENCE 3-6
- 17 OPTICAL SPECIFICATIONS
- 21 MECHANICAL CHARACTERISTICS
- 24 RELIABILITY
- 25 INTERNATIONAL STANDARDS
- 25 SAFETY 7-1
Ver. 1.5 47.0” WUXGA TFT LCD Title MODEL General BUYER *When you obtain standard approval, please use the above model name without suffix LC470EUF *MODEL SDA1 (RoHS Verified) SUFFIX LG Display Co., Ltd. SUPPLIER SPECIFICATION FOR APPROVAL TV Product Development Dept. LG Display Co., Ltd. D.I. Kim / Engineer PREPARED BY B.Y. Kim / Project Leader REVIEWED BY J.T. Kim / Team Leader SIGNATURE DATE APPROVED BY Please return 1 copy for your confirmation with your signature and comments. SIGNATURE DATE APPROVED BY Final Specification ● Preliminary Specification
Table 10. OPTICAL CHARACTERISTICS update 17 Table 3. ELECTRICAL CHARACTERISTICS (Continue) update 7Dec, 10, 2010 1.0 Table 3. ELECTRICAL CHARACTERISTICS update 7 Table 1. ABSOLUTE MAXIMUM RATINGS update 5 Description Page Revision Date Revision No.
Ver. 1.5 General Features Viewing angle free ( R/L 178 (Min.), U/D 178 (Min.)) Viewing Angle (CR>10) 10bit(D), 1.06Billon colors Color Depth 1920 horiz. by 1080 vert. Pixels, RGB stripe arrangement Pixel Format 400 cd/m 2 (Center 1point ,Typ.) Luminance, White Total 90.0W (Typ.) [Logic= 8.0W, LED Backlight=82W (IF_cathode = 100mA) ] Power Consumption 12.7Kg (Typ.) Weight Transmissive mode, Normally black Display Mode Hard coating(3H), Anti-glare treatment of the front polarizer (Haze 10%) Surface Treatment 0.5415 mm x 0.5415 mm Pixel Pitch 46.96 inches(1192.87mm) diagonal Active Screen Size 1. General Description The LC470EUD is a Color Active Matrix Liquid Crystal Display with an integral Light Emitting Diode (LED) backlight s ystem. The matrix employs a-Si Thin Film Transistor as the active element. It is a transmissive display type which is operating in the normally black mode. It has a 46.96 inch diagonally measured active display area with WUXGA resolution (1080 vertical by 1920 horizontal pixel array). Each pixel is divided into Red, Green and Blue sub-pixels or dots which are arrayed in vertical stripes. Gray scale or the luminance of the sub-pixel color is determined with a 10-bit gray scale signal for each dot. Therefore, it can present a palette of more than 1.06Bilion colors. It has been designed to apply the 10-bit 4-port LVDS interface. It is intended to support LCD TV, PCTV where high brightness, super wide viewing angle, high color gamut, high color depth and fast response time are important. Source Driver Circuit TFT - LCD Panel (1920 × RGB × 1080 pixels) [Gate In Panel] S1 S1920 G1080 Mini-LVDS(RGB) Timing Controller LVDS Rx + L/D + DGA + ODC Integrated EEPROM Power Circuit Block SDA SCL LVDS Select CN1 (51pin) LVDS 2Port +12.0V Control Signals Power Signals LVDS 2Port CN2 (41pin) LVDS 1,2 Option signal I2C LVDS 3,4 Bit Select LED Anode LED Cathode V : 8Block Local Dimming : 16 Block V : 8Block CN201 (13pin) CN202 (12pin)
Table 1. ABSOLUTE MAXIMUM RATINGS
- Ambient temperature condition (Ta = 25 ± 2 °C )
- Temperature and relative humidity range are shown in the figure below.
Wet bulb temperature should be Max 39 °C, and no condensation of water.
- Gravity mura can be guaranteed below 40 °C condition.
- The maximum operating temperatures is based on the test condition that the surface temperature
of display area is less than or equal to 68 °C with LCD module alone in a temperature controlled chamber. improper thermal management in final product design.
- Electrical Specifications
backlight and LED Driver circuit. Table 2. ELECTRICAL CHARACTERISTICS
- The specified current and power consumption are under the V LCD =12.0V, Ta=25 ± 2°C, fV =120Hz
condition, and mosaic pattern(8 x 6) is displayed and f V is the frame frequency.
- The current is specified at the maximum current pattern.
- The duration of rush current is about 2ms and rising time of power input is 0.5ms (min.).
Table 3. ELECTRICAL CHARACTERISTICS (Continue) The design of the LED driver must have specifications for the LED array in LCD Assembly. The electrical characteristics of LED driver are based on Constant Current driving type. characteristics of the LED Driver. So, all the parameters of an LED driver should be carefully designed. Assembly should be operated in the same condition as installed in your instrument.
- Electrical characteristics are based on LED Array specification.
- Specified values are defined for a Backlight Assembly. (2 LED array/LCM)
- Each LED array has 2 anode terminals and 8 cathode terminals.
- The forward voltage(V F) of LED array depends on ambient temperature (Appendix-VI)
- ΔV F means Max V F-Min V F in one Backlight. So V F variation in a Backlight isn’t over Max. 1.7V
- Maximum level of power consumption is measured at initial turn on.
Typical level of power consumption is measured after 1hrs aging at 25 ± 2°C.
- The life time(MTTF) is determined as the time at which brightness of the LED is 50% compared to that of
initial value at the typical LED current on condition of continuous operating at 25 ± 2°C, based on duty 100%.
- The reference method of burst dimming duty ratio.
Though PWM frequency is over 182Hz (max252Hz), function of backlight is not affected.
1 LED Array (8 Strings)
Ver. 1.5 3-2. Interface Connections 3-2-1. LCD Module Table 4-1. MODULE CONNECTOR(CN1) PIN CONFIGURATION Note 1. All GND(ground) pins should be connected together to the LCD module’s metal frame. 2. All V LCD (power input) pins should be connected together. 3. All Input levels of LVDS signals are based on the EIA 644 Standard. 4. #2~#6 & #8~#10 NC (No Connection): These pins are used only for LGD (Do not connect) 5. LVDS pin (pin No. #24,25,40,41 ) are used for 10Bit(D) of the LCD module. If used for 8Bit(R), these pins are no connection. 6. Specific pin No. #44 is used for “No signal detection” of system signal interface. It should be GND for NSB(No Signal Black) during the system interface signal is not. If this pin is “H”, LCD Module displays AGP(Auto Generation Pattern). No Power Supply +12.0V Power Supply +12.0V Power Supply +12.0V Power Supply +12.0V No connection Ground Ground Ground No Connection or Ground No Connection or Ground SECOND LVDS Receiver Signal (E+) SECOND LVDS Receiver Signal (E-) SECOND LVDS Receiver Signal (D+) SECOND LVDS Receiver Signal (D-) Ground SECOND LVDS Receiver Clock Signal(+) SECOND LVDS Receiver Clock Signal(-) Ground SECOND LVDS Receiver Signal (C+) SECOND LVDS Receiver Signal (C-) SECOND LVDS Receiver Signal (B+) SECOND LVDS Receiver Signal (B-) SECOND LVDS Receiver Signal (A+) SECOND LVDS Receiver Signal (A-) ‘H’ or NC= 10bit(D) , ‘L’ = 8bit
Description
FIRST LVDS Receiver Signal (E+) R1EP 25 FIRST LVDS Receiver Signal (E-)R1EN 24 FIRST LVDS Receiver Signal (D+) R1DP 23 FIRST LVDS Receiver Signal (D-)R1DN 22 Ground GND 21 FIRST LVDS Receiver Signal (B+) R1BP 15 FIRST LVDS Receiver Signal (B-)R1BN 14 FIRST LVDS Receiver Signal (A+) R1AP 13 FIRST LVDS Receiver Signal (A-)R1AN 12 Ground GND 11 No Connection (Note 4) NC 2 No Connection (Note 4) NC 3 No Connection (Note 4) NC 4 No Connection (Note 4) NC 5 No Connection (Note 4) NC 6 ‘H’ =JEIDA , ‘L’ or NC = VESA LVDS Select 7 No Connection (Note 4) NC 8 No Connection (Note 4) NC 9 No Connection (Note 4) NC 10 FIRST LVDS Receiver Signal (C-)R1CN 16 FIRST LVDS Receiver Signal (C+) R1CP 17 Ground GND 18 FIRST LVDS Receiver Clock Signal(-)R1CLKN 19 FIRST LVDS Receiver Clock Signal(+) R1CLKP 20 No Connection or Ground NC or GND 26 Description Symbol No NC or GND No Connection or Ground 1 - LCD Connector(CN1): FI-R51S-HF(manufactured by JAE) or IS050-C51B-C39(manufactured by UJU) Refer to below and next Page table - Mating Connector : FI-R51HL(JAE) or compatible This LCD module employs two kinds of interface connection, 51-pin connector and 41-pin connector are used for the module electronics and 12-pin,13-pin connectors are used for the integral backlight system.
Ver. 1.5 Table 4-2. MODULE CONNECTOR(CN2) PIN CONFIGURATION - LCD Connector(CN2): FI-R41S-HF(manufactured by JAE) or IS050-C41B-C39(manufactured by UJU) - Mating Connector : FI-RE41HL or compatible No Ground Ground FORTH LVDS Receiver Signal (E+) FORTH LVDS Receiver Signal (E-) FORTH LVDS Receiver Signal (D+) FORTH LVDS Receiver Signal (D-) Ground FORTH LVDS Receiver Clock Signal(+) FORTH LVDS Receiver Clock Signal(-) Ground FORTH LVDS Receiver Signal (C+) FORTH LVDS Receiver Signal (C-) FORTH LVDS Receiver Signal (B+) FORTH LVDS Receiver Signal (B-) FORTH LVDS Receiver Signal (A+) FORTH LVDS Receiver Signal (A-) Ground Ground THIRD LVDS Receiver Signal (E+) THIRD LVDS Receiver Signal (E-) THIRD LVDS Receiver Signal (D+) RD3P 21 THIRD LVDS Receiver Signal (C+) RC3P 15 THIRD LVDS Receiver Signal (C-)RC3N 14 THIRD LVDS Receiver Signal (B+) RB3P 13 THIRD LVDS Receiver Signal (B-)RB3N 12 THIRD LVDS Receiver Signal (A+) RA3P 11 No connection NC 2 No connection NC 3 No connection NC 4 No connection NC 5 No connection NC 6 No connection NC 7 No connection NC 8 Ground GND 9 THIRD LVDS Receiver Signal (A-)RA3N 10 Ground GND 16 THIRD LVDS Receiver Clock Signal(-)RCLK3N 17 THIRD LVDS Receiver Clock Signal(+) RCLK3P 18 Ground GND 19 THIRD LVDS Receiver Signal (D-)RD3N 20 Description Symbol No NC No connection 1 Note : 1. All GND(ground) pins should be connected together to the LCD module’s metal frame. 2. LVDS pin (pin No. #22,23,38,39) are used for 10Bit(D) of the LCD module. If used for 8Bit(R), these pins are no connection. CN1 CN2 #1 #51 #1 #41 Rear view of LCM #1 #51 #1 #41 CN1 CN2
Table 5. BACKLIGHT CONNECTOR PIN CONFIGURATION(CN201,CN202)
1 Anode_R2
3 R8Cathode LED Output Current
4 R7 Cathode LED Output Current
5 R6 Cathode LED Output Current
6 R5 Cathode LED Output Current
7 R4 Cathode LED Output Current
8 R3 Cathode LED Output Current
9 R2 Cathode LED Output Current
10 R1 Cathode LED Output Current
12 Anode_R1
1 Anode_L1
3 L1 Cathode LED Output Current
4 L2 Cathode LED Output Current
5 L3 Cathode LED Output Current
6 L4 Cathode LED Output Current
8 L5 Cathode LED Output Current
9 L6 Cathode LED Output Current
10 L7 Cathode LED Output Current
11 L8 Cathode LED Output Current
13 Anode_L2
timings should be satisfied with the following specification for normal operation. Table 6. TIMING TABLE (DE Only Mode) Note: 1. The input of HSYNC & VSYNC signal does not have an effect on normal operation (DE Only Mode). If you use spread spectrum of EMI, add some additional clock to minimum value for clock margin.
- The performance of the electro-optical characteristics may be influenced by variance of the vertical
※ Timing should be set based on clock frequency.
Ver. 1.5 3-4. LVDS Signal Specification 3-4-1. LVDS Input Signal Timing Diagram 0.7VDD 0.3VDD tCLK Invalid data Valid data Invalid data Invalid data Invalid data Pixel 0 Pixel 4 Pixel 1 Pixel 5 DE(Data Enable) Valid data
0.5 VDD DCLK
DE, Data Invalid data Valid data Invalid data Invalid data Invalid data Pixel 2 Pixel 6 Pixel 3 Pixel 7 Valid data Third data Forth data * tHB = t HFP + t WH +t HBP * tVB = t VFP + t WV +t VBP DE(Data Enable) tVV tVP 1 1080
Ver. 1.5 1) DC Specification 2) AC Specification -V1.8 0.7 V IN LVDS Input Voltage Range -mV 250 ΔVCM Change in common mode Voltage -V1.5 1.0 V CM LVDS Common mode Voltage Note Unit Max Min Symbol Description LVDS 1’st Clock T clk LVDS 2 nd / 3 rd / 4 th Clock tSKEW_min tSKEW_max 20% 80% A tRF LVDS Data tSKEW LVDS Clock T clk (Fclk = 1/Tclk )tSKEW A 1. All Input levels of LVDS signals are based on the EIA 644 Standard. 2. If tRF isn’t enough, teff should be meet the range. 3. LVDS Differential Voltage is defined within t eff LVDS + LVDS - V CM # VCM = {( LVDS +) + ( LVDS - )} /2 V IN _ MAX V IN _ MIN Note 3-4-2. LVDS Input Signal Characteristics Description Symbol Min Max Unit Note LVDS Differential Voltage V TH 100 300 mV V TL -300 -100 mV LVDS Clock to Data Skew t SKEW - |(0.25*T clk )/7| ps - LVDS Clock/DATA Rising/Falling time t RF 260 |(0.3*T clk )/7| ps 2 Effective time of LVDS t eff |±360| - ps - LVDS Clock to Clock Skew (Even to Odd) t SKEW_EO - |1/7* T clk | ps - High Threshold Low Threshold
Ver. 1.5 data data Vcm tui 0.5tui 360ps 360ps tui : Unit Interval teff clk clk Vcm VTH VTL
The brightness of each primary color(red,green,blue) is based on the 10bit gray scale data input for the color. The higher binary input, the brighter the color. Table 7 provides a reference for color versus data input. Table 7. COLOR DATA REFERENCE
Table 8. POWER SEQUENCE
- Even though T1 is over the specified value, there is no problem if I2T spec of fuse is satisfied.
- If T2 is satisfied with specification after removing LVDS Cable, there is no problem.
- The T3 / T4 is recommended value, the case when failed to meet a minimum specification,
abnormal display would be shown. There is no reliability problem.
- T5 should be measured after the Module has been fully discharged between power off and on period.
- If the on time of signals (Interface signal and user control signals) precedes the on time of Power (VLCD ),
it will be happened abnormal display. When T6 is NC status, T6 doesn’t need to be measured.
- If there is no abnormal display, no problem.
- It is recommendation specification that T8 has to be 100ms as a minimum value.
※ Please avoid floating state of interface signal at invalid period. ※ When the power supply for LCD (VLCD) is off, be sure to pull down the valid and invalid data to 0V.
Optical characteristics are determined after the unit has been ‘ON’ and stable in a dark environment at 25 ±2°C. The values are specified at distance 50cm from the LCD surface at a viewing angle of Φ and θ equal to 0 °. FIG. 1 shows additional information concerning the measurement equipment and method. Table 10. OPTICAL CHARACTERISTICS
Table 11. GRAY SCALE SPECIFICATION It is measured at center 1-point.
- Surface luminance are determined after the unit has been ‘ON’ and 1 Hour after lighting the
1-point across the LCD surface 50cm from the surface with all pixels displaying white. For more information see the FIG. 2.
- The variation in surface luminance , δ WHITE is defined as :
Where Lon1 to L on5 are the luminance with all pixels displaying white at 5 locations . For more information, see the FIG. 2.
- Response time is the time required for the display to transit from G(N) to G(M) (Rise Time, Tr R )
※ G to G Spec stands for average value of all measured points.
- MPRT is defined as the 10% to 90% blur-edge width B ij (pixels) and scroll speed U(pixels/frame)at
- Gray to Gray / MPRT Response time uniformity is Reference data. Appendix VIII-1 / VIII-2.
- Viewing angle is the angle at which the contrast ratio is greater than 10. The angles are
is normal to the LCD module surface. For more information, see the FIG. 5. Gamma Value is approximately 2.2. For more information, see the Table 11.
Ver. 1.5 FIG. 3 Response Time Response time is defined as the following figure and shall be measured by switching the input signal for “Gray(N)” and “Gray(M)”. Measuring point for surface luminance & measuring point for luminance variation. FIG. 2 5 Points for Luminance Measure A : H / 4 mm B : V / 4 mm @ H,V : Active Area H A V B ①① ①① ③③ ③③②② ②② ⑤⑤ ⑤⑤④④ ④④ Gray(M) Gray(N) T rR T rD 100 Optical Response N,M = Black~White, N<M Gray(N)
Ver. 1.5 FIG. 5 Viewing Angle Dimension of viewing angle range Normal Y E φ θ φ = 0°, Right φ = 180°, Left φ = 270°, Down φ = 90°, Up FIG. 4 MPRT MPRT is defined as the 10% to 90% blur-edge with Bij (pixels) and scroll speed U(pixels/frame)at the moving picture. LL LLjj jj LL LLii ii Bij M = U Bij (i=j) 90% 10% Example) Bij = 12pixels, U = 10pixels / 120Hz M = 12pixels / (10pixels / 120Hz) = 12pixels / {10pixels / (1/120)s} = 12 / 1,200 s = 10 ms
Table 12 provides general mechanical characteristics.
- Mechanical Characteristics
Table 12. MECHANICAL CHARACTERISTICS Note : Please refer to a mechanical drawing in terms of tolerance at the next page.
Ver. 1.5 [ FRONT VIEW ] Set : Top Set : Down
Ver. 1.5 [ REAR VIEW ] Set : Top Set : Down
Table 13. ENVIRONMENT TEST CONDITION Note : Before and after Reliability test, LCM should be operated with normal function.
Ver. 1.5 7. International Standards 7-1. Safety a) UL 60065, Seventh Edition, Underwriters Laboratories Inc. Audio, Video and Similar Electronic Apparatus - Safety Requirements. b) CAN/CSA C22.2 No.60065:03, Canadian Standards Association. Audio, Video and Similar Electronic Apparatus - Safety Requirements. c) EN 60065:2002 + A11:2008, European Committee for Electrotechnical Standardization (CENELEC). Audio, Video and Similar Electronic Apparatus - Safety Requirements. d) IEC 60065:2005 + A1:2005, The International Electrotechnical Commission (IEC). Audio, Video and Similar Electronic Apparatus - Safety Requirements. (Including report of IEC60825-1:2001 clause 8 and clause 9) 7-3. Environment a) RoHS, Directive 2002/95/EC of the European Parliament and of the council of 27 January 2003 7-2. EMC a) ANSI C63.4 “American National Standard for Methods of Measurement of Radio-Noise Emissions from Low-Voltage Electrical and Electronic Equipment in the Range of 9 kHz to 40 GHz.” American National Standards Institute (ANSI), 2003. b) CISPR 22 “Information technology equipment – Radio disturbance characteristics – Limit and methods of measurement." International Special Committee on Radio Interference (CISPR), 2005. c) CISPR 13 “Sound and television broadcast receivers and associated equipment – Radio disturbance characteristics – Limits and method of measurement." International Special Committee on Radio Interference (CISPR), 2006. Notes 1. Laser (LED Backlight) Information Class 1M LED Product IEC60825-1 : 2001 Embedded LED Power (Class 1M) 2. Caution : LED inside. Class 1M laser (LEDs) radiation when open. Do not open while operating.
Ver. 1.5 a) Lot Mark A B C D E F G H I J K L M Note 1. YEAR b) Location of Lot Mark 2. MONTH Serial NO. is printed on the label. The label is attached to the backside of the LCD module. This is subject to change without prior notice. 8-2. Packing Form B Nov Mark Month A Oct Jun Jul Aug Sep Apr May C321 Dec Mar Feb Jan 8. Packing A,B,C : SIZE(INCH) D : YEAR E : MONTH F ~ M : SERIAL NO. 8-1. Information of LCM Label a) Package quantity in one Pallet : 16 pcs b) Pallet Size : 1300 mm(W) X 1140 mm(D) X 848.5 mm(H) Mark Year J 2020 F 2016 G 2017 H 2018 I 2019 D 2014 E 2015 CBA 2013 2012 2011
Ver. 1.5 Please pay attention to the followings when you use this TFT LCD module. 9-1. Mounting Precautions (1) You must mount a module using specified mounting holes (Details refer to the drawings). (2) You should consider the mounting structure so that uneven force (ex. Twisted stress) is not applied to the module. And the case on which a module is mounted should have sufficient strength so that external force is not transmitted directly to the module. (3) Please attach the surface transparent protective plate to the surface in order to protect the polarizer. Transparent protective plate should have sufficient strength in order to the resist external force. (4) You should adopt radiation structure to satisfy the temperature specification. (5) Acetic acid type and chlorine type materials for the cover case are not desirable because the former generates corrosive gas of attacking the polarizer at high temperature and the latter causes circuit break by electro-chemical reaction. (6) Do not touch, push or rub the exposed polarizers with glass, tweezers or anything harder than HB pencil lead. And please do not rub with dust clothes with chemical treatment. Do not touch the surface of polarizer for bare hand or greasy cloth.(Some cosmetics are detrimental to the polarizer.) (7) When the surface becomes dusty, please wipe gently with absorbent cotton or other soft materials like chamois soaks with petroleum benzine. Normal-hexane is recommended for cleaning the adhesives used to attach front / rear polarizers. Do not use acetone, toluene and alcohol because they cause chemical damage to the polarizer (8) Wipe off saliva or water drops as soon as possible. Their long time contact with polarizer causes deformations and color fading. (9) Do not open the case because inside circuits do not have sufficient strength. 9-2. Operating Precautions 9. Precautions (1) The spike noise causes the mis-operation of circuits. It should be lower than following voltage : V= ±200mV(Over and under shoot voltage) (2) Response time depends on the temperature.(In lower temperature, it becomes longer.) (3) Brightness depends on the temperature. (In lower temperature, it becomes lower.) And in lower temperature, response time(required time that brightness is stable after turned on) becomes longer (4) Be careful for condensation at sudden temperature change.Condensation makes damage to polarizer or electrical contacted parts. And after fading condensation, smear or spot will occur. (5) When fixed patterns are displayed for a long time, remnant image is likely to occur. (6) Module has high frequency circuits. Sufficient suppression to the electromagnetic interference shall be done by system manufacturers. Grounding and shielding methods may be important to minimized the interference. (7) Please do not give any mechanical and/or acoustical impact to LCM. Otherwise, LCM can’t be operated its full characteristics perfectly. (8) A screw which is fastened up the steels should be a machine screw. (if not, it can causes conductive particles and deal LCM a fatal blow) (9) Please do not set LCD on its edge.
Ver. 1.5 Since a module is composed of electronic circuits, it is not strong to electrostatic discharge. Make certain that treatment persons are connected to ground through wrist band etc. And don’t touch interface pin directly. 9-3. Electrostatic Discharge Control Strong light exposure causes degradation of polarizer and color filter. 9-4. Precautions for Strong Light Exposure When storing modules as spares for a long time, the following precautions are necessary. (1) Store them in a dark place. Do not expose the module to sunlight or fluorescent light. Keep the temperature between 5 °C and 35 °C at normal humidity. (2) The polarizer surface should not come in contact with any other object. It is recommended that they be stored in the container in which they were shipped. (3) Storage condition is guaranteed under packing conditions. (4) The phase transition of Liquid Crystal could be recovered if the LCM is released at the normal condition after the low or over the storage temperature. 9-5. Storage 9-6. Handling Precautions for Protection Film (1) The protection film is attached to the bezel with a small masking tape When the protection film is peeled off, static electricity is generated between the film and polarizer. This should be peeled off slowly and carefully by people who are electrically grounded and with well ion- blown equipment or in such a condition, etc. (2) When the module with protection film attached is stored for a long time, sometimes there remains a very small amount of glue still on the bezel after the protection film is peeled off. (3) You can remove the glue easily. When the glue remains on the bezel surface or its vestige is recognized, please wipe them off with absorbent cotton waste or other soft material like chamois soaked with normal- hexane.
Ver. 1.5 # APPENDIX-I ■■ ■■ Pallet Ass’y NO. DESCRIPTION MATERIAL
1 LCD Module 47” LCD
2 BAG 47INCH
3 TAPE MASKING 20MMX50M
4 PALLET Plywood 1300X1140X125.5mm
5 PACKING,BOTTOM EPS
6 PACKING,TOP EPS
7 ANGLE,PACKING PAPER
8 BAND PP
9 ANGLE,COVER PAPER
10 BAND STEEL OR PP
11 LABEL YUPO 80G 100X70
Ver. 1.5 ■ LCM Label # APPENDIX- II-1 Model Serial No. UL, TUV Mark LGD Logo US PATENT No. Origin LC470EUF (SD)(A1) ■ Production site - LG Display (Paju) Co., LTD - LG Display (Guangzhou) Co., LTD - LG Display (Nanjing) Co., LTD - LG Display (Poland) Co., LTD Note 1.The origin of LCM Label will be changed according to the production site.
Ver. 1.5 # APPENDIX- II-2 ■ Pallet Label LC470EUF SDA1
16 PCS 001/01-01
MADE IN KOREA RoHS Verified XXXXXXXXXXXXX XXX
Ver. 1.5 # APPENDIX- III-1 ■ Required signal assignment for Flat Link (Thine : THC63LVD103) Transmitter(Pin7=“L” or “NC”) Note: 1. The LCD module uses a 100 Ohm[ Ω] resistor between positive and negative lines of each receiver input. 2. Refer to LVDS Transmitter Data Sheet for detail descriptions. (THC63LVD103 or Compatible) 3. ‘9’ means MSB and ‘0’ means LSB at R,G,B pixel data. Host System
30 Bit
100 Ω 100 Ω 100 Ω 100 Ω 100 Ω 100 Ω RO0N RO0P RO1N RO1P RO2N RO2P ROCLKN ROCLKP RO3N RO3P RO4N RO4P VESA / JEIDA FI-RE51S-HF LCM Module GND
Ver. 1.5 # APPENDIX- III-2 ■ Required signal assignment for Flat Link (Thine : THC63LVD103) Transmitter(Pin7=“H”) Note :1. The LCD module uses a 100 Ohm[ Ω] resistor between positive and negative lines of each receiver input. 2. Refer to LVDS Transmitter Data Sheet for detail descriptions. (THC63LVD103 or Compatible) 3. ‘9’ means MSB and ‘0’ means LSB at R,G,B pixel data. Host System 100 Ω 100 Ω 100 Ω 100 Ω 100 Ω 100 Ω RO0N RO0P RO1N RO1P RO2N RO2P ROCLKN ROCLKP RO3N RO3P RO4N RO4P VESA / JEIDA FI-RE51S-HF LCM Module VCC
Ver. 1.5 # APPENDIX- IV-1 ■ LVDS Data-Mapping Information ( 10 Bit ) 1) LVDS Select : “H ” Data-Mapping ( JEIDA format ) 2) LVDS Select : “L” Data-Mapping ( VESA format ) R19 R18 R17 R16 G14 R15 R14’ R14 R15’ G14” B14 G19 G18 G17 B15 G16 G15’ G15 G16’ B15” VSYNC HSYNC B19 B18 DE B17 B16’ B16 B17’ DE” B13 B12 G13 G12 X R13 R12’ R12 R13’ X” RCLKP RCLKM RAP RBP RCP RDP B11 B10 G11 G10 X R11 R10’ R10 R11’ X”REP R15 R14 R13 R12 G10 R11 R10’ R10 R11’ G10” B10 G15 G14 G13 B11 G12 G11’ G11 G12’ B15” VSYNC HSYNC B15 B14 DE B13 B12’ B12 B13’ DE” B17 B16 G17 G16 X R17 R16’ R16 R17’ X” RCLKP RCLKM RAP RBP RCP RDP B19 B18 G19 G18 X R19 R18’ R18 R19’ X”REP
Ver. 1.5 # APPENDIX- IV-2 ■ LVDS Data-Mapping Information ( 8 Bit ) 1) LVDS Select : “H” Data-Mapping ( JEIDA format ) 2) LVDS Select : “L” Data-Mapping ( VESA format ) R17 R16 R15 R14 G12 R13 R12’ R12 R13’ G12” B12 G17 G16 G15 B13 G14 G13’ G13 G14’ B13” VSYNC HSYNC B17 B16 DE B15 B14’ B14 B15’ DE” B11 B10 G11 G10 X R11 R10’ R10 R11’ X” RCLKP RCLKM RAP RBP RCP RDP R15 R14 R13 R12 G10 R11 R10’ R10 R11’ G10” B10 G15 G14 G13 B11 G12 G11’ G11 G12’ B15” VSYNC HSYNC B15 B14 DE B13 B12’ B12 B13’ DE” B17 B16 G17 G16 X R17 R16’ R16 R17’ X” RCLKP RCLKM RAP RBP RCP RDP
Ver. 1.5 # APPENDIX- V ■ Option Pin Circuit Block Diagram 2) Circuit Block Diagram of Bit Selection pin 1) Circuit Block Diagram of LVDS Format Selection pin ASIC (TCON) 60k ΩΩ ΩΩ System Side LCM Side LVDS Select (Pin 7) LVDS Select 1K ΩΩ ΩΩ LVDS Select Pin : Pin 7 ASIC (TCON) System Side LCM Side Bit Select (Pin 27) Bit Select 1K ΩΩ ΩΩ Bit Select Pin : Pin 27 VCC 65k ΩΩ ΩΩ OPEN
Ver. 1.5 # APPENDIX- VI ■■ ■■ LED Array Electrical Spec ■■ ■■ Forward Current vs. Forward Voltage ■■ ■■ Ambient Temperature vs. Forward Voltage V1.7 --IFM =800mA ΔV OP V56 51.2 46.4 IFM =800mA V F Array Operating Voltage Unit Max Typ Min Condition Symbol Item (Ta=25 ℃)
Ver. 1.5 # APPENDIX- VII ■■ ■■ Local Dimming Block Pin Matching -Anode_L2 (5~8Cathode) 13 LED Driver CNT Pin No CN_201 CN_202 (1~4Cathode) Anode_R2 (5~8Cathode) 2 N.C N.C
3 L1 Cathode R8Cathode
4 L2 Cathode R7 Cathode
5 L3 Cathode R6 Cathode
6 L4 Cathode R5 Cathode
7 N.C R4 Cathode
8 L5 Cathode R3 Cathode
9 L6 Cathode R2 Cathode
10 L7 Cathode R1 Cathode
11 L8 Cathode N.C 12 N.C Anode_R1 (1~4Cathode) Front T-con L8 L8 L8 L8 L7 L7 L7 L7 L6 L6 L6 L6 L5 L5 L5 L5 L4 L4 L4 L4 L3 L3 L3 L3 L2 L2 L2 L2 L1 L1 L1 L1 L R R8 R8 R8 R8 R7 R7 R7 R7 R6 R6 R6 R6 R5 R5 R5 R5 R4 R4 R4 R4 R3 R3 R3 R3 R2 R2 R2 R2 R1 R1 R1 R1 Rear T-con L1 L1 L1 L1 L2 L2 L2 L2 L3 L3 L3 L3 L4 L4 L4 L4 L5 L5 L5 L5 L6 L6 L6 L6 L7 L7 L7 L7 L8 L8 L8 L8 R1 R1 R1 R1 R2 R2 R2 R2 R3 R3 R3 R3 R4 R4 R4 R4 R5 R5 R5 R5 R6 R6 R6 R6 R7 R7 R7 R7 R8 R8 R8 R8
Ver. 1.5 This is only the reference data of G to G and uniformity for LC470EUF-SDA1 model. 1. G to G Response Time : Response time is defined as Figure3 and shall be measured by switching the input signal for “Gray (N) ” and “Gray(M)”.(32Gray Step at 8bit) 2. G to G Uniformity The variation of G to G Uniformity , δ G to G is defined as : *Maximum (GtoG) means maximum value of measured time (N, M = 0 (Black) ~ 1023(White), 128 gray step). 3. Sampling Size : 2 pcs 4. Measurement Method : Follow the same rule as optical characteristics measurement. 5. Current Status Below table is actual data of production on Oct. 30. 2010 ( LGD RV Event Sample) Gray to Gray Response Time Uniformity G to G Uniformity = ≤1 3.83 3.05 Min. 9.78 9.73 Max. G to G Response Time [ms] 0.96 0.95 Uniformity # 2 # 1 )()( GtoGTypical GtoGTypicalGtoGMaximum − # APPENDIX- VIII-1 TrR:0G /barb2right1023G TrR:0G /barb2right895G …TrR:0G /barb2right255G TrR:0G /barb2right127G 0Gray TrD:1023G /barb2right0G TrD:895G /barb2right0G TrD:255G /barb2right0G TrD:127G /barb2right0G 0Gray TrD:1023G /barb2right895G…TrD:1023G /barb2right255GTrD:1023G /barb2right127G1023Gray TrR:895G /barb2right1023G …TrD:895G /barb2right255GTrD:895G /barb2right127G895Gray TrR:255G /barb2right1023G TrR:255G /barb2right895G …TrD:255G /barb2right127G255Gray TrR:127G /barb2right1023G TrR:127G /barb2right895G …TrR:127G /barb2right255G 127Gray 1023Gray 895Gray …255Gray 127ray G 255 G 223 G 191 G 159 G 127 G 95 G 63 G 31 G 0 G 255 G 191 G 127 G 63 G 0 - 1 1 1 1 3 1 5 G 255 G 223 G 191 G 159 G 127 G 95 G 63 G 31 G 0 G 255 G 191 G 127 G 63 G 0 F a llin g R is in g G 255 G 223 G 191 G 159 G 127 G 95 G 63 G 31 G 0 G 255 G 191 G 127 G 63 G 0 - 1 1 1 1 3 1 5 G 255 G 223 G 191 G 159 G 127 G 95 G 63 G 31 G 0 G 255 G 191 G 127 G 63 G 0 F a llin g R is in g
Ver. 1.5 # APPENDIX- VIII-2 ■ MPRT Response Time Uniformity ( δδ δδMPRT ) This is only the reference data of MPRT and uniformity for LC470EUF-SDA1 model. 1. MPRT Response Time : Response time is defined as Figure3 2. MPRT Uniformity The variation of MPRT Uniformity , δ MPRT is defined as : 3. Sampling Size : 2 pcs 4. Measurement Method : Follow the same rule as optical characteristics measurement. 5. Current Status Below table is actual data of production on Oct. 30. 2010 ( LGD RV Event Sample) 6.80 6.17 Min. 11.97 11.94 Max. MPRT Response Time [ms] 0.50 0.49 Uniformity # 2 # 1 Sample MPRT Uniformity = ≤1Typical (MPRT) Maximum (MPRT) - Typical (MPRT)