ACX709AKM SONY | Alldatasheet
Document overview
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Technical content
Features
- Number of effective dots: 320 × 320 Pixel pitch: 168µm × 168µm High reflection ratio High contrast ratio Number of colors: 262,144 Compact size Thin and bright front light unit with touch panel Element Structure Number of dots Number of active dots: 320 (H) × 320 (V) × 102,400 Dimensions Module dimensions: 64.65mm (W) × 87.65mm (D) × 6.0mm (H) (excluding FPC and area) Effective display dimensions: 53.76mm (H) × 53.76mm (V)
Applications
PDA, etc.
– 2 – ACX709AKM Block Diagram The block diagram of this LCD module is shown below. Touch Panel Front Light (LED) Poly-Si TFT LCD (320 × RGB × 320) H Driver (TAB-IC) V Driver +5.0V DC-DC Converter TG T1, T2 T3, T4 LED VCC (+3.0V) VDD (+5.0V) FHSYNC FVSYNC FSCLK PWM1 FMOD FLCLK FDE Data in (RGB × 6-bit) ENV EE +9.0V –3.0V –6.5V Control Pulse Vref VCOM LCD Controller Reference Voltage Driver
– 3 – ACX709AKM Absolute Maximum Ratings (T a = 25°C, VSS = 0V) Supply voltage V DD –0.3 to +6.0 V VCC –0.3 to +4.6 V Input voltage V I –0.3 to VDD /VCC + 0.3 V Storage temperature Tstg –20 to +60 °C LED current Iled (as below) mA Recommended Operating Conditions Supply voltage V DD 4.7 to 5.3 V VCC 2.7 to 3.3 V Operating temperature T opr 0 to +50 °C Allowable LED current Iled [mA] 20 40 Ambient temperature Ta [˚C] 60 80 100 Pin Description Pin No. Symbol Description Power supply (+5V) Power supply (+5V) Power supply (+5V) Vertical sampling clock Power control pulse Common plane pulse Data enable pulse Horizontal control pulse Start signal of horizontal timing Start signal of vertical timing Data sampling clock Data signal Data signal Data signal Data signal Data signal Pin No. Symbol Description Data30 GND Data25 Data24 Data23 Data22 Data21 Data20 GND Data15 Data14 Data13 Data12 Data11 Data10 FDE GND VCC VCC VCC Data signal Data signal Data signal Data signal Data signal Data signal Data signal Data signal Data signal Data signal Data signal Data signal Data signal Signal control pulse Power supply (+3V) Power supply (+3V) Power supply (+3V) VDD VDD VDD GND PWM1 ENV EE FMOD PWM0 FLCLK FHSYNC FVSYNC GND FSCLK GND GND Data35 Data34 Data33 Data32 Data31
– 4 – ACX709AKM Power Sequence (1) Power-up Sequence active All data: White activeLow Low Low Low Low active High within 10ms tpv2 tpv1 3.0V 3.0V 5.0V 5.0V FVSYNC DATA (out) FMOD ENV EE Pulses (except FVSYNC, Data, FMOD, ENV EE ) tpv3 2 fieldstpd tdf tsp Item Min. T yp. Max. Unit tpv1 tpv2 tpv1 + tpv2 tpv3 tpd tdf tsp 321PWM1 322PWM1 µs ms ms µs µs µs
– 5 – ACX709AKM (2) Power-down Sequence active Low 3.0V within 10ms tpv1 tpv2 Low Low (Low timing is the same as "Pulse") 3.0V 3.0V 5.0V 05.0V FVSYNC FMOD ENV EE DATA Pulses (except FVSYNC, Data, FMOD, ENV EE ) tdf active active tvdw 6 fields (min.) Low Low tfp tvs10 fields (min.)5 fields (min.) active All data: White Item Min. T yp. Max. Unit tpv1 tpv2 tvs tvdw tdf tfp 321PWM1 322PWM1 µs µs µs µs µs
– 6 – ACX709AKM
Electrical Characteristics
(1) Voltage and Current Characteristics ∗1 VCC = 3.0V/VDD = 5.0V gray scale (16 steps) ∗2 VCC = 3.3V/VDD = 3.8V black raster (2) Timing Item Supply voltage Ripple voltage Input Input voltage 2 Current consumption Symbol VDD VCC Vrip VH1 VL1 Vt+ Vt– Vt– – Vt+ IVDD IVCC Min. Ty p. Max. Unit Pins 4.7 2.7 0.7VCC 0.15V CC 0.2 5.0 3.0 7.0∗1 5.0∗1 5.3 3.3 100 0.2VCC 0.75VCC 8.0∗2 6.3∗2 V V mV V V V V V mA mA VDD VDD FSCLK (LVTTL level input) All inputs except for MCK (LVTTL level Schmitt trigger input) Item Master clock (MCK) DA T A setup time DA T A hold time Start pulse setup time Start pulse hold time Symbol tclk tSETUP1 tHOLD1 tSETUP2 tHOLD2 Min. Ty p. Max. Unit 8.0 tclk ns ns ns ns
– 7 – ACX709AKM (3) Horizontal Timing Chart Data10 to 15 Data20 to 25 Data30 to 35 FDE FHSYNC FLCLK 80 140 133 107 FVSYNC PWM1 PWM0 FMOD
420 FSCLK
– 8 – ACX709AKM (4) Detail of Horizontal Sequence (Example of B) B0 B3 B318 B1 B4 B319 B2 B5 X
140 FSCLK
1 FSCLK 107 FSCLK 31 FSCLK 1 FSCLK
– 9 – ACX709AKM (5) Vertical Timing Chart Notes) 1. Inversion pulse of PWM1 is not mentioned. 2. The pulse of FMOD is not prescribed. 313 314 315 316 317 318 319 320 V Blanking 1 2 34Display Data FVSYNC PWM1 FMOD FMOD phase variation point
– 10 – ACX709AKM (6) Color Table Data signalColors Gray scale Gray scale levels Black Blue Green Cyan Red Magenta Y ellow White Black Darker Brighter Red Black Darker Brighter Green Black Darker Brighter Blue GS0 GS1 GS2 GS61 GS62 GS63 GS0 GS1 GS2 GS61 GS62 GS63 GS0 GS1 GS2 GS61 GS62 GS63
– 11 – ACX709AKM (7) Color Coding The color filters are coded in vertical stripe arrangement. (8) Scanning Direction The scanning direction for the horizontal period and for the vertical period are A and B respectively as shown below. These scanning directions are from a front view.Active area Horizontal direction A B Vertical direction Active area 320 320 × RGB GRR BB G GRR BB G GRB GRB GRR BB G GRB GRR BB G GRR BB G GRB GRB GRR BB G GRB GRR BB G GRR BB G GRB GRB GRR BB G GRB GRR BB G GRR BB G GRB GRB GRR BB G GRB Front View Front View
– 12 – ACX709AKM (9) Touch Panel Electrical Characteristic Specifications 1. Scope These specifications shall apply to the transparent tablet (for the ACX709AKM). 2. Shape The shape, structure and dimensions shall be according to the drawings. 3. Ratings 3-1. Maximum voltage 3-2. Operating temperature range 0 to +50°C (discrete tablet state, humidity: 20 to 90%, no condensation) 3-3. Storage temperature range –20 to +70°C (discrete tablet state, humidity: 20 to 90%, no condensation) 4. Electrical Performance 4-1. Resistance between pins X direction: 300 to 1000Ω Y direction: 200 to 1000Ω 4-2. Linearity X direction: ±1.5% or less Y direction: ±1.5% or less ∗ See Separate Sheet 1 for the measurement method. 4-3. Insulation resistance DC 25V , 20MΩ or more 4-4. Chattering 10ms or less ∗ See Separate Sheet 2 for the measurement method. 5. Mechanical Performance 5-1. Input method Dedicated pen or finger 5-2. Operating force Finger input: 0.8N or less Pen input: 0.8N or less ∗ See Separate Sheet 3 for the measurement method. 5-3. Surface hardness Pencil lead hardness 2H or more (JIS-K5400)
– 13 – ACX709AKM 6. Optical Performance 6-1. Ray of light transmittance 83% or more of all rays of light. Surface: clear type 7. Reliability 7-1. High temperature storage The following items shall be satisfied when measured after storing for 240 hours in a temperature 70°C tank followed by storing at room temperature for 24 hours or more. Resistance between pins: Conforms to item 4-1. Linearity: Conforms to item 4-2. Insulation resistance: Conforms to item 4-3. 7-2. Low temperature storage The following items shall be satisfied when measured after storing for 240 hours in a temperature –20°C tank followed by storing at room temperature for 24 hours or more. Resistance between pins: Conforms to item 4-1. Linearity: Conforms to item 4-2. Insulation resistance: Conforms to item 4-3. 7-3. High temperature and high humidity storage The following items shall be satisfied when measured after storing for 240 hours in a 60°C, 90% RH tank followed by storing at room temperature for 24 hours or more. Resistance between pins: Conforms to item 4-1. Linearity: Conforms to item 4-2. Insulation resistance: Conforms to item 4-3. 7-4. Heat shock The following items shall be satisfied when measured after storing for 10 cycles of –20°C (30 min) → 25°C (1 min or less) → 70°C (30 min) → 25°C (1 min or less), followed by storing at room temperature for 24 hours or more. Resistance between pins: Conforms to item 4-1. Linearity: Conforms to item 4-2. Insulation resistance: Conforms to item 4-3. 8. Durability Performance 8-1. Pen touching life The following items shall be satisfied after touching one million times with a R0.8 polyacetal pen. Note that the touching load shall be 2.45N and the touching speed shall be 3 times/s. Resistance between pins: Conforms to item 4-1. Linearity: Conforms to item 4-2. Insulation resistance: Conforms to item 4-3. 8-2. Handwriting sliding resistance The following items shall be satisfied after writing 100,000 characters of the 50 katakana phonograms using the dedicated pen within a 20mm × 20mm frame. Note that the load shall be 2.45N and the speed shall be 3,000 characters/h. Resistance between pins: Conforms to item 4-1. Linearity: Conforms to item 4-2. Insulation resistance: Conforms to item 4-3.
– 14 – ACX709AKM 9. Inspection Specifications 9-1. Resistance between pins Standard: Confirm item 4-1. The number of inspection: All tablets in the initial state of production. However, shift to sampling inspection after discussions in view of the process capability. 9-2. Linearity Standard: Confirm item 4-2. The number of inspection: All tablets in the initial fluid state of production. However, shift to sampling inspection after discussions in view of the process capability. 9-3. Insulation resistance Standard: Confirm item 4-3. The number of inspection: All tablets in the initial fluid state of production. However, shift to sampling inspection after discussions in view of the process capability. 9-4. Appearance Standard: According to the appearance standards. The number of inspection: All tablets 10. Appearance Standards 10-1. Inspection method Inspection shall be performed at a distance of 30cm from the eyes by a healthy adult with vision of 1.0 or better (glasses or other vision aids may be used). The fluorescent light shall use two 14W 3-wavelength type. The background and worktable top shall be black plates, and visual inspection shall be performed at the relative positions shown in the figures below. Lighting conditions: 1000 lx or less in a bright room Transmitted light Reflected light Approximately 30cm Observer's eye point Approximately 30cm Approximately 60˚ Observer's eye point
– 15 – ACX709AKM 11. Requests on Handling (Be sure to read Separate Sheets 4 and 5 before handling.) 11-1.Do not input with anything but your finger or the dedicated pen. Also, do not stack or place heavy objects on the product. 11-2.Avoid mechanical shocks, vibration and drops. 11-3.Do not expose the product to water, organic solvents or chemical products such as acids or alkalis. Also, do not store the product in these atmospheres. 11-4.Hold the edges of the glass when moving the product. Gripping the product inside the effective operation area may cause scratches or dirtiness. Also, avoid handling only the cable or applying excessive force to peripheral circuits, as this may damage the cable and result in disconnection. 11-5.If the film surface becomes dirty, wipe it clean using a commercially available eyeglass cleaner or other soft, dry cloth. 12. Notes on Mounting 12-1.Do not pull on, apply excessive force to or fold the cable, as this may damage the cable and result in disconnection. 12-2.Be careful not to apply an excessive load when mounting the product. Fixing the product with double- sided adhesive tape on the rear surface of the glass is recommended.
– 16 – ACX709AKM [Separate Sheet 1: Linearity Measurement Method] Definition of Linearity Apply a DC 5V load between the X direction and Y direction electrodes of the transparent tablet as shown in Fig. 1, and label the voltage between the pressed location and reference surface as the output voltage (Eox, Eoy). Then, measure the output voltage when each intersection of the 10mm lattice enclosed by A and B which are located only a certain distance inside the visible area is pressed as shown in Fig. 2. Fig. 1 Fig. 2 Plot the output voltage for each measurement position as shown in Fig. 3, and label the difference between the voltage value on the lattice enclosed by A and B and the output voltage at the same position as (∆Ex, ∆Ey). Linearity is defined as the ratio between (∆Ex, ∆Ey) and the potential difference between A and B (EABx, EABy). T ransparent tablet linearity (X) = (∆Ex/EABx) × 100% T ransparent tablet linearity (Y) = (∆Ey/EABy) × 100% Fig. 3 X axis Y axis 5V Bus bar Transparent electrode 10mm A B 10mm ∆Ex EBX EAX AB Measurement value Measurement position ∆Ey EBY EAY AB Measurement value Measurement position
– 17 – ACX709AKM Linearity Measurement Connect wiring as shown in Fig. 4, and use the maximum value of the error absolute values when each intersection of the lattice shown in Fig. 5 is pressed as the measurement value. <Lighting conditions> Load: 0.8N Measurement tool: 0.8R resin pen Measurement locations: Measure at 10mm intervals (6 × 8 points) inside the effective input area of the panel <Measurement circuit> Fig. 4 Fig. 5 4 (X) 2 (X) DC5V DC5V 1 (Y) 3 (Y) V 4 (X) 2 (X) 1 (Y) 3 (Y) V
– 18 – ACX709AKM [Separate Sheet 2: Chattering Measurement Method] Measuring equipment: HIOKI 8802 MEMORY Hi CORDER Measurement conditions: Measurement voltage: 5V T est resistor: 100k Ω Switching operation: Holding a R8 silicon rubber rod, perform on and off operation behavior with the same load and speed as normal finger input. Rise, fall time setting: Rise: When the switch changes from off to on, the voltage at both ends of the transparent tablet in the measurement circuit shown below follows a curve such as that shown in the chart below. The rise time is the time from 10% to 90% of the stable measurement voltage. Fall: When the switch changes from on to off, the voltage at both ends of the transparent tablet in the measurement circuit shown below follows a curve such as that shown in the chart below. The fall time is the time from 90% to 10% of the stable measurement voltage. Measurement circuit Rise time Fall time Hi CORDERON OFF Test resistor (100kΩ ) Tablet ON 90% 10% OFF ON 90% 10% OFF
– 19 – ACX709AKM [Separate Sheet 3: Operating Force Measurement] Apply DC 5V to the X side and apply a load with a R8 Hs60° silicon rubber head. The load at which the voltage value stabilizes is the operating force for that point. For pen operation, use a R0.8 Polyacetal pen. Finger input measurement Pen input measurement Polyacetal pen (R0.8) Tension gauge Tablet R8 Hs60˚ silicon rubber Tension gauge Tablet
– 20 – ACX709AKM [Separate Sheet 4: Notes on Handling] This touch panel is designed for use in standard applications (OA and other office equipment, industrial and communications-related equipment, consumer use equipment, etc.). Avoid use in applications where malfunction or misoperation may pose the risk of direct harm to people, or for special applications (aerospace, nuclear power control, medical life support, etc.) which require extremely high reliability. Touch panel a) Do not rub or press on the touch panel with sharp blades or other pointed objects. b) Do not excessively fold or bend the touch panel. c) When storing the touch panel, use a packing box and store within the recommended storage temperature range. Also make sure that an excessive load is not applied to the touch panel in the stored condition. d) Avoid storing or using the touch panel under conditions exposed to water and organic solvents, or in an acidic atmosphere. e) Avoid using the touch panel in locations exposed to direct sunlight. f) Do not peel apart or disassemble the touch panel. g) Do not hold the touch panel by just the tail portion; hold the panel glass itself. h) If the touch panel becomes dirty, wipe it clean using a cloth moistened with a neutral detergent or alcohol. Should any chemicals adhere to the touch panel, wipe them off immediately in a manner that does not pose an effect to the human body. i) The glass edges are not beveled, so be careful not to cut yourself when handling the touch panel. Structure a) The environmental, mechanical and electrical characteristics and other specifications are guaranteed only for the input area. b) Condensation forming inside the touch panel does not indicate a malfunction. Condensation will disappear naturally as the touch panel approaches room temperature, but avoid use in the condition where condensation has formed as this may result in malfunction. Electrical specifications and software a) Contact resistance occurs in the conduction between the upper and lower electrodes, and this contact resistance changes according to the finger or pen pressure. Design the software so that data is loaded after the contact resistance stabilizes. b) There are always individual differences in the resistance between pins of analog resistor film type touch panels, and this resistance may also change over time or due to the environment. When designing the software, be sure to provide calibration functions to align the display position with the input position. c) Analog resistor film type touch panels have a structure such that when two points are pressed at the same time, a dot is judged to have been input at the center of the line connecting those two points. Therefore, do not compile software that requires two-point input. d) When drawing with pen input, the line may be broken when the pen passes over a dot spacer. Therefore, corrective functions should be included in the software.
– 21 – ACX709AKM [Separate Sheet 5: Notes on Mounting] (1) Bezel tip Make sure the bezel tip falls between the input area and the transparent area. If the bezel tip extends into the input area, when the bezel is pressed the tip may press on the touch panel and result in input. (2) Gap between the bezel and the touch panel Provide a gap of approximately 0.5mm between the inside of the bezel and top surface of the upper electrode of the touch panel. A narrow gap between the bezel and the upper electrode of the touch panel may result in unanticipated input. (3) Use of buffer materials When installing buffer materials between the inside of the bezel and the upper electrode of the touch panel, provide a certain amount of leeway to absorb differences in expansion and contraction between the bezel and the upper electrode due to temperature changes. If the buffer materials are firmly clamped, they may be unable to fully absorb the expansion and contraction, which may cause warping or deflection of the upper electrode of the touch panel, possibly affecting both the appearance and performance of the touch panel. In addition, be sure to insert the buffer materials to the inside of the insulated area. (4) Tolerance The touch panel and the tail dimensions have tolerances of ± 0.2 to 0.3mm, so be sure to provide leeway of this amount between the case and the connector. 5) Tail bending Do not use a structure where the tail is strongly clamped, bent sharply at the base, or otherwise subject to stress due to case pressure or other factors. Otherwise, insulation defects or disconnected circuits may result. (6) Mounting the touch panel Be sure to use a structure that supports the touch panel from the bottom such as by adhering the touch panel to the display. If the structure adheres the inside of the bezel to the upper electrode of the touch panel, the joint between the upper and lower electrodes will be subject to stress and easily damaged. Input area Bezel Transparent area 0.5mmBezel Upper electrode Bezel Buffer material Insulated area Upper electrode 0.2 to 0.3mm Case Tail Bezel Display
– 22 – ACX709AKM (7) Input prohibited area The area 2mm to the inside from the insulated area has a structurally weak durability. Particularly if this area is pressed during pen input, the film may stretch and be damaged, so make sure the bezel opening does not extend into this area. (8) Ventilation holes Some touch panels have ventilation holes to equalize the internal and external air pressure. Be sure not to block these ventilation holes when mounting the touch panel. In addition, moisture accumulating near ventilation holes may seep into the touch panel, so take care to prevent moisture from accumulating. Also avoid situations where pressure from inside the equipment causes the upper film of the touch panel to bulge. Bezel Input prohibited area
– 23 – ACX709AKM Electro-optical Characteristics Ta = 25°C, with front light turning off Ta = 25°C, with front light turning on (Iled = 15mA × 4 lights (Number in parentheses is a reference value for 20mA)) Notes: 1. Reflection ratio (R) In the Measurement System-1 (see Fig. 1 (a), (b)), calculate the reflection ratio by using the formula (1). R = R (White) = … (1) 2. Contrast ratio (CR) In the Measurement System-1 (see Fig. 1 (a), (b)), measure the reflection ratio of "White" and "Black" respectively and calculate by using the formula (2). CR = … (2) 3. White chromaticity In the Measurement System-2 (see Fig. 2), measure the white chromaticity. The light source and viewing area are D65 and 2° respectively. 4. Response time In the Measurement System-3 (see Fig. 3), measure the electro-optical response time. R (White) R (Black) Output from the "White" displayed panel Output from the reflectance standard Item Reflection ratio Contrast ratio White chromaticity Response time Viewing angle (CR ≥ 5) Symbol R CR xfloff yfloff Tr Tf θT + B θR + L Min. T yp. Max. Unit Notes 0.27 0.290 0.320 0.339 0.375 0.390 CIE CIE ms ms degree (°) degree (°) x y rise fall T op-Bottom Left-Right Item Luminance of active area Luminance uniformity White chromaticity Power consumption Symbol Laa Flunif x y WL Min. T yp. Max. Unit Notes 7 (8.4) 0.295 0.285 9.8 (11.8) 0.350 0.350 216 0.400 0.415 240 cd/m2 mW
– 24 – ACX709AKM 5. Viewing angle In the Measurement System-1 (see Fig. 1 (c)), viewing area is defined by the area which makes the CR ≥ 5. 6. Luminance In the Measurement System-4 (see Fig. 4), the luminance is defined as follows. Lcfl = Luminance (5) 7. Luminance uniformity In the Measurement System-4 (see Fig. 4), measure the luminance and calculate using the following formula. Flunif = (Luminance (1) + Luminance (2) + ... + Luminance (9))/9 8. White chromaticity with front light turning on. In the Measurement System-4 (see Fig. 4), measure the white chromaticity.
– 25 – ACX709AKM Fig. 1 Measurement System-1 LCD Panel Optical Fiber Light Source Optical Detector Measurement Equipment Left Right Top θ = 30˚ θ = 0˚ Bottom Driving Circuit Left Right Top θ = 0˚ Bottom (a) (b) (c) φ φ = Top ± 5˚ θTθB θL θR Basic Measurement Conditions (1) Driving voltage T ypical condition (2) Measurement temperature +25°C unless otherwise specified. (3) Measurement point One point on the center of the panel unless otherwise specified. (4) Light source and viewing area D65 and 2° (5) Display "White": All R, G and B signal data are (111111). Display "Black": All R, G and B signal data are (000000). Front light is turned off unless otherwise specified.
– 26 – ACX709AKM Fig. 3 Measurement System-3 Oscilloscope Optical Detector Light Source LCD Panel 30˚ Tr 100% Display Data Optical Instruments Response White (111111) White (111111)Black (000000) Tf 90% 10% Time Fig. 2 Measurement System-2 LCD Panel Integrated Sphere Optical Fiber Light Source Optical Detector Measurement Equipment
– 27 – ACX709AKM Fig. 4 Measurement System-4 (a) The apparatus for luminance measurement (b) The spot locations for luminance measurement Illuminance Colorimeter BM-5A Reflective LCD Module 400 ± 50mm 1 2 3 4 5 6 7 8 9 K/6 L/6L/3 L L/3L/6 K/3 K/3 K/6 K
– 28 – ACX709AKM Notes on Handling (1) Static charge prevention Be sure to take the following protective measures. TFT -LCD modules are easily damaged by static charges. a) Use non-chargeable gloves, or simply use bare hands. b) Use an earth-band when handling. c) Do not touch any electrodes of a module. d) Wear non-chargeable clothes and conductive shoes. e) Install grounded conductive mats on the working floor and working table. f) Keep modules away from any charged materials. g) Use ionized air to discharge the modules. (2) Protection from dust and dirt a) Operate in a clean environment. b) Use ionized air to blow dust off the module. (3) Others a) Do not touch the surface of any parts of the PWB. b) Do not drop the module. c) Do not twist or bend the module. d) Keep the module away from heat sources. e) Do not dampen the module with water or other solvents. f) Avoid storage or use of the module at high temperatures or high humidity, as this may result in damage.
– 29 – ACX709AKM Sony Corporation Package Outline Unit: mm 3.92 (80) (36.7) T/S FPC LED FPC (53.76 Active Area) 5.34 56.6 +0.1 0 (Viewing area) 64.65±0.3(Touch panel) (32.225) (32.4) (53.76 Active area) 5.52 (59.9 Icon sheet) 87.65 +0.3 -0.6 (Touch panel) (18.725) (49.15) 5.025±0.1 8.625±0.1 43.825±0.1 47.425±0.1 1.16 1.34 4.14 5.25 10.4 6.7 32.4 56.7±0.1 59.4 84.8±0.1 2.34 -0.1 0.64 67.15 -0.1 0.34 1.64 +0.1 2.07 2.34 +0.1 (4.14) 0.95(Touch panel) (4.14) 4.7 0.7 (6.01) (43.85) 64.45 +0.1 0 (Metal frame) (38.9) (52.18) 87.45 +0.1 0 (Metal frame) 0.5 +0.05 356 Note .Tolerance with no indication(±0.2)
6 TAB
5 WCB
No, DESCRIPTION