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10.1 Inch Capacitive Touch TFT LCD Display 1024x600 24-bit RGB Interface Industrial Touch Screen

10.1 Inch Capacitive Touch TFT LCD Display 1024x600 24-bit RGB Interface Industrial Touch Screen

MOQ: 1 Piece
Price: USD 40-75 / Piece
Standard Packaging: Anti-static bag with shock-proof foam insert, export-grade corrugated carton
Delivery Period: 3-7 working days for samples, 15-25 days for mass production
Payment Method: T/T,L/C,PayPal,Western Union
Supply Capacity: 30000 Pieces per Month
Detail Information
Place of Origin
Guangdong, China
Brand Name
TXW
Certification
RoHS, ISO 9001:2015
Model Number
TXW100076B0-XL
Display Size:
10.1 Inch
Resolution:
1024 X RGB X 600 Dots (WSVGA)
LCD Type:
TFT Active Matrix, Normally Black
Display Driver IC:
HX8282 + HX8696
Touch Structure:
G+G Capacitive
Touch Driver IC:
GT9271
Touch Interface:
I2C
Touch Surface:
6H, >=85% Transmittance
Interface:
24-bit RGB (DE / SYNC)
Viewing Direction:
ALL
Pixel Pitch:
0.0725 X 0.2088 Mm
Active Area:
222.72 X 125.28 Mm
LCM Size:
235.16 X 143.16 X 4.60 Mm
LCM+CTP Size:
252.00 X 150.00 X 6.50 Mm
Brightness:
700 Cd/m2
Backlight:
39 White LEDs, 520mA, 8.4-9.6V
LED Life Time:
20000 Hours
Operating Temperature:
-20C To +70C
Storage Temperature:
-30C To +80C
Certification:
RoHS
Highlight:

10.1 inch capacitive touch LCD display

,

industrial TFT LCD touch screen

,

1024x600 RGB interface display

Product Description
10.1-Inch Touch Display · G+G Capacitive · 24-bit RGB

Where the glass you touch and the image behind it are engineered as one

The TXW100076B0-XL pairs a 10.1-inch 1024×600 TFT LCD with a G+G capacitive touch surface driven by the GT9271 over I2C — a bonded, ready-to-integrate front end for industrial HMI, kiosks, POS, and medical devices. By Shenzhen Tianxianwei Technology.

10.1″
Screen + Touch
1024×600
WSVGA
700
cd/m²
6H
Hardness
I2C
Touch Bus

A touch display is rarely just a screen with a digitizer taped on. The best ones are designed from the front surface backward, so that the glass you touch, the ITO sensing layer beneath it, and the panel that lights the image all work as one optical and mechanical stack. What follows is a structured walk-through of the TXW100076B0-XL — from sensing physics to layout — for engineers and buyers who need to specify it with confidence.

01

The touch stack: why G+G, and what it buys you

The sensing layer is a G+G construction — a 1.1 mm chemically strengthened cover glass laminated to a 0.55 mm ITO sensing glass with a 0.2 mm optically clear adhesive, for a total of 1.85 ± 0.1 mm. The two-glass approach keeps the driven-and-sensed electrode grid on a dimensionally stable substrate, which is what holds the capacitance baseline steady as temperature and humidity move. A steady baseline is what every reliable touch reading is built on.

The numbers that decide the user experience are the cover hardness (6H) and the transmission (≥85%). Hardness governs how the surface survives keys, rings, and cleaning wipes; transmission governs how much of the backlight's 700 cd/m² actually survives the glass to reach the eye. Because the panel is bonded rather than air-gapped, there is no reflective air interface to rob the image of contrast — which is precisely why a laminated display looks brighter and clearer than its air-gapped equivalent at the same nit rating.

Why SNR matters more than the electrode pattern: a capacitive sensor works by resolving tiny changes in mutual capacitance against a baseline, and the readable signal depends on the ratio between that change and the electrical noise around it. Stable substrates, a bonded stack, and a clean ground return all raise the signal-to-noise ratio — the real reason a well-engineered panel feels “crisp” and a cheap one feels “laggy.”
02

One part, not two: the case for a bonded assembly

The module ships as a single unit — TFT panel + driver + FPC + backlight + CTP. Integrating touch and display this way removes the single most common source of field trouble in touch products: the separate bonding and alignment of a sensor to a display. There is no tolerance stack to manage between two vendors, no second optical bond to qualify, and one part number to mount, wire, and warrant.

Physically it is compact for its class: the LCM measures 235.16 × 143.16 × 4.60 mm, and the full LCM+CTP assembly 252.00 × 150.00 × 6.50 mm, with an active area of 222.72 × 125.28 mm centred within it. That thin, integrated footprint suits panel-mount enclosures, freestanding terminals, and anything where the front glass must sit flush with the product surface.

03

The display engine: 1024×600, ALL O'CLOCK

Behind the glass is a normally-black, transmissive TFT active-matrix panel with 1024×600 (WSVGA) resolution, driven by the HX8282 + HX8696 chipset and capable of 16.7 million colours — true 8-bit-per-channel depth, so gradients and anti-aliased text render without banding. The ALL O'CLOCK viewing designation means there is no preferred orientation to design around: a panel read from the side, tilted in a hand, or approached at an angle stays consistent across its axes.

A high-density interface does more than look sharp. It lets a single 10.1-inch canvas host a live chart with labelled axes, a status column, a soft-key toolbar, and a header simultaneously — without crowding — and it leaves headroom for the fields, graphs, and localisation strings that future firmware will inevitably add.

04

The interface: 24-bit RGB, and the pins that buy flexibility

Pixels arrive over a 24-bit RGB interface (R7-R0, G7-G0, B7-B0, DCLK) that accepts both DE and SYNC timing, selected by the MODE pin — so the panel slots into most graphics pipelines without a bridge chip. A typical 1024×600 frame at 24 bpp and 60 Hz carries roughly 885 Mbps of active payload, with a pixel clock in the 50-60 MHz band: comfortably within reach of mainstream MCUs, SoCs, and mid-range FPGAs.

Three pins make mechanical design easier. SHLR reverses the source-output direction (left/right) and UPDN flips the gate-scan direction (up/down) — mount the module however your enclosure wants, set two pins, and the image follows without software remapping. A fourth, DITHB, enables or disables internal dithering for smoother gradients. The result is a display that adapts to the product instead of the product bending to the display.

05

Brightness and the backlight: a light budget, not just LEDs

Front luminance of 700 cd/m² (typical) with a minimum uniformity of 70% is the end of a lossy chain. Light from 39 white LEDs is edge-coupled into a light-guide plate, homogenised by diffusers, and then passes through the liquid-crystal cell — where, as in every transmissive LCD, crossed polarizers and colour filters absorb the majority of the flux. That is why the backlight must emit several times the on-screen figure.

The string runs at a low forward voltage of 8.4-9.6 V and a nominal 520 mA, straightforward to drive from a compact constant-current stage. Rated life is 20,000 hours to half luminance at 40 mA per LED, and it degrades above 45 mA per LED — a reminder that LED ageing is a thermally activated process, so the thermal relief around the LED edge is what turns a datasheet figure into a field reality.

06

Power architecture: one rail in, many rails out

The module runs from a single 3.3 V logic supply and internally generates its own gate and analog rails — VGH (~17 V), VGL (~-7 V), AVDD (~9.6 V) — with VCOM tuned per panel to minimise flicker. That keeps your power design simple: provide one clean, well-decoupled logic rail plus the backlight drive, and the module handles the rest.

Sequencing is not optional. Bring up the logic rail and the module's internal rails before driving the LED string hard, and reverse the order on power-down. A few milliseconds of deliberate sequencing prevents an entire class of intermittent faults that are painful to diagnose later — and it costs nothing but planning.
07

Built for real operating conditions

Display operation spans -20 °C to +70 °C with storage from -30 °C to +80 °C; the touch panel is rated across the same range at up to 90% RH. The module is qualified against high- and low-temperature storage (+80 °C / -30 °C, 96 h), high- and low-temperature operation (+70 °C / -20 °C, 96 h), a 60 °C / 90%RH humidity soak (96 h), and 10 thermal-shock cycles between -20 °C and +70 °C.

Those tests exist to reject the failure modes that would otherwise surface in the field: segment faults, short or unclear segments, non-display and abnormal display, liquid-crystal leakage, low-temperature bubbles, seal loosening, and frame rainbow. Passing them is what lets you specify the panel for equipment that lives in real rooms, vehicles, and kiosks rather than in a lab.

08

EMC and layout: the two-bus discipline

There are two buses to tame, and they want opposite treatment. The 24-bit RGB bus is wide and fast, so keep it short and tightly grouped, return its ground directly beneath it, avoid layer changes mid-bus, and never route it alongside the backlight's switching node. Keep the touch I2C pair short and away from that same switching node, with the interrupt line routed cleanly to the host. A small series resistor near the source can tame the fastest clock edges without harming the image.

Then give it a home: leave clearance where the FPC exits, respect the flex bend radius during assembly, and thermally couple the LED edge to any available copper or chassis. These are habits, not luxuries — a display that passes functional test but radiates, or is susceptible, will cost far more to fix after tooling than to lay out correctly the first time.

Engineering Deep Dive
Resolution
1024 × 600
Touch
G+G / GT9271
Interface
24-bit RGB
Brightness
700 cd/m²
Frame Rate
60 Hz
Backlight
39 LEDs
Touch Bus
I2C
Viewing
ALL O'CLOCK
Driver IC
HX8282+HX8696
Op. Temp.
-20 ~ +70°C
Module
252 × 150 mm
Colours
16.7 M

Where it fits

A 10.1-inch touch display is the natural front end wherever a person interacts directly with equipment. In each case, one bonded part carries the pixels, the touch, and the mechanical interface together.

Industrial HMI
Self-service kiosks
POS & payment terminals
Medical & diagnostic devices
Access & building control
Ticketing & vending
Test & measurement
Vehicle & fleet panels

Integration checklist

Plan for three things and the rest follows. Power and sequencing: provide a clean 3.3 V rail and follow the recommended power-up order, asserting RESET before streaming pixels. Two buses: route the 24-bit RGB bus with matched lengths and a continuous ground return, and keep the touch I2C pair short and clear of the backlight switching node. Mechanical and optical: respect the flex-exit clearance and plan the bezel around the 252.00 × 150.00 mm outline so the 6H glass sits flush with the product surface.

Bring it to your next touch product

The TXW100076B0-XL is available for sampling and volume programs, with OEM/ODM customization across cover-glass printing, touch configuration, backlight brightness, and FPC layout.

Contact us for samples and pricing — and tell us about your enclosure and operating conditions.

Products
PRODUCTS DETAILS
10.1 Inch Capacitive Touch TFT LCD Display 1024x600 24-bit RGB Interface Industrial Touch Screen
MOQ: 1 Piece
Price: USD 40-75 / Piece
Standard Packaging: Anti-static bag with shock-proof foam insert, export-grade corrugated carton
Delivery Period: 3-7 working days for samples, 15-25 days for mass production
Payment Method: T/T,L/C,PayPal,Western Union
Supply Capacity: 30000 Pieces per Month
Detail Information
Place of Origin
Guangdong, China
Brand Name
TXW
Certification
RoHS, ISO 9001:2015
Model Number
TXW100076B0-XL
Display Size:
10.1 Inch
Resolution:
1024 X RGB X 600 Dots (WSVGA)
LCD Type:
TFT Active Matrix, Normally Black
Display Driver IC:
HX8282 + HX8696
Touch Structure:
G+G Capacitive
Touch Driver IC:
GT9271
Touch Interface:
I2C
Touch Surface:
6H, >=85% Transmittance
Interface:
24-bit RGB (DE / SYNC)
Viewing Direction:
ALL
Pixel Pitch:
0.0725 X 0.2088 Mm
Active Area:
222.72 X 125.28 Mm
LCM Size:
235.16 X 143.16 X 4.60 Mm
LCM+CTP Size:
252.00 X 150.00 X 6.50 Mm
Brightness:
700 Cd/m2
Backlight:
39 White LEDs, 520mA, 8.4-9.6V
LED Life Time:
20000 Hours
Operating Temperature:
-20C To +70C
Storage Temperature:
-30C To +80C
Certification:
RoHS
Minimum Order Quantity:
1 Piece
Price:
USD 40-75 / Piece
Packaging Details:
Anti-static bag with shock-proof foam insert, export-grade corrugated carton
Delivery Time:
3-7 working days for samples, 15-25 days for mass production
Payment Terms:
T/T,L/C,PayPal,Western Union
Supply Ability:
30000 Pieces per Month
Highlight

10.1 inch capacitive touch LCD display

,

industrial TFT LCD touch screen

,

1024x600 RGB interface display

Product Description
10.1-Inch Touch Display · G+G Capacitive · 24-bit RGB

Where the glass you touch and the image behind it are engineered as one

The TXW100076B0-XL pairs a 10.1-inch 1024×600 TFT LCD with a G+G capacitive touch surface driven by the GT9271 over I2C — a bonded, ready-to-integrate front end for industrial HMI, kiosks, POS, and medical devices. By Shenzhen Tianxianwei Technology.

10.1″
Screen + Touch
1024×600
WSVGA
700
cd/m²
6H
Hardness
I2C
Touch Bus

A touch display is rarely just a screen with a digitizer taped on. The best ones are designed from the front surface backward, so that the glass you touch, the ITO sensing layer beneath it, and the panel that lights the image all work as one optical and mechanical stack. What follows is a structured walk-through of the TXW100076B0-XL — from sensing physics to layout — for engineers and buyers who need to specify it with confidence.

01

The touch stack: why G+G, and what it buys you

The sensing layer is a G+G construction — a 1.1 mm chemically strengthened cover glass laminated to a 0.55 mm ITO sensing glass with a 0.2 mm optically clear adhesive, for a total of 1.85 ± 0.1 mm. The two-glass approach keeps the driven-and-sensed electrode grid on a dimensionally stable substrate, which is what holds the capacitance baseline steady as temperature and humidity move. A steady baseline is what every reliable touch reading is built on.

The numbers that decide the user experience are the cover hardness (6H) and the transmission (≥85%). Hardness governs how the surface survives keys, rings, and cleaning wipes; transmission governs how much of the backlight's 700 cd/m² actually survives the glass to reach the eye. Because the panel is bonded rather than air-gapped, there is no reflective air interface to rob the image of contrast — which is precisely why a laminated display looks brighter and clearer than its air-gapped equivalent at the same nit rating.

Why SNR matters more than the electrode pattern: a capacitive sensor works by resolving tiny changes in mutual capacitance against a baseline, and the readable signal depends on the ratio between that change and the electrical noise around it. Stable substrates, a bonded stack, and a clean ground return all raise the signal-to-noise ratio — the real reason a well-engineered panel feels “crisp” and a cheap one feels “laggy.”
02

One part, not two: the case for a bonded assembly

The module ships as a single unit — TFT panel + driver + FPC + backlight + CTP. Integrating touch and display this way removes the single most common source of field trouble in touch products: the separate bonding and alignment of a sensor to a display. There is no tolerance stack to manage between two vendors, no second optical bond to qualify, and one part number to mount, wire, and warrant.

Physically it is compact for its class: the LCM measures 235.16 × 143.16 × 4.60 mm, and the full LCM+CTP assembly 252.00 × 150.00 × 6.50 mm, with an active area of 222.72 × 125.28 mm centred within it. That thin, integrated footprint suits panel-mount enclosures, freestanding terminals, and anything where the front glass must sit flush with the product surface.

03

The display engine: 1024×600, ALL O'CLOCK

Behind the glass is a normally-black, transmissive TFT active-matrix panel with 1024×600 (WSVGA) resolution, driven by the HX8282 + HX8696 chipset and capable of 16.7 million colours — true 8-bit-per-channel depth, so gradients and anti-aliased text render without banding. The ALL O'CLOCK viewing designation means there is no preferred orientation to design around: a panel read from the side, tilted in a hand, or approached at an angle stays consistent across its axes.

A high-density interface does more than look sharp. It lets a single 10.1-inch canvas host a live chart with labelled axes, a status column, a soft-key toolbar, and a header simultaneously — without crowding — and it leaves headroom for the fields, graphs, and localisation strings that future firmware will inevitably add.

04

The interface: 24-bit RGB, and the pins that buy flexibility

Pixels arrive over a 24-bit RGB interface (R7-R0, G7-G0, B7-B0, DCLK) that accepts both DE and SYNC timing, selected by the MODE pin — so the panel slots into most graphics pipelines without a bridge chip. A typical 1024×600 frame at 24 bpp and 60 Hz carries roughly 885 Mbps of active payload, with a pixel clock in the 50-60 MHz band: comfortably within reach of mainstream MCUs, SoCs, and mid-range FPGAs.

Three pins make mechanical design easier. SHLR reverses the source-output direction (left/right) and UPDN flips the gate-scan direction (up/down) — mount the module however your enclosure wants, set two pins, and the image follows without software remapping. A fourth, DITHB, enables or disables internal dithering for smoother gradients. The result is a display that adapts to the product instead of the product bending to the display.

05

Brightness and the backlight: a light budget, not just LEDs

Front luminance of 700 cd/m² (typical) with a minimum uniformity of 70% is the end of a lossy chain. Light from 39 white LEDs is edge-coupled into a light-guide plate, homogenised by diffusers, and then passes through the liquid-crystal cell — where, as in every transmissive LCD, crossed polarizers and colour filters absorb the majority of the flux. That is why the backlight must emit several times the on-screen figure.

The string runs at a low forward voltage of 8.4-9.6 V and a nominal 520 mA, straightforward to drive from a compact constant-current stage. Rated life is 20,000 hours to half luminance at 40 mA per LED, and it degrades above 45 mA per LED — a reminder that LED ageing is a thermally activated process, so the thermal relief around the LED edge is what turns a datasheet figure into a field reality.

06

Power architecture: one rail in, many rails out

The module runs from a single 3.3 V logic supply and internally generates its own gate and analog rails — VGH (~17 V), VGL (~-7 V), AVDD (~9.6 V) — with VCOM tuned per panel to minimise flicker. That keeps your power design simple: provide one clean, well-decoupled logic rail plus the backlight drive, and the module handles the rest.

Sequencing is not optional. Bring up the logic rail and the module's internal rails before driving the LED string hard, and reverse the order on power-down. A few milliseconds of deliberate sequencing prevents an entire class of intermittent faults that are painful to diagnose later — and it costs nothing but planning.
07

Built for real operating conditions

Display operation spans -20 °C to +70 °C with storage from -30 °C to +80 °C; the touch panel is rated across the same range at up to 90% RH. The module is qualified against high- and low-temperature storage (+80 °C / -30 °C, 96 h), high- and low-temperature operation (+70 °C / -20 °C, 96 h), a 60 °C / 90%RH humidity soak (96 h), and 10 thermal-shock cycles between -20 °C and +70 °C.

Those tests exist to reject the failure modes that would otherwise surface in the field: segment faults, short or unclear segments, non-display and abnormal display, liquid-crystal leakage, low-temperature bubbles, seal loosening, and frame rainbow. Passing them is what lets you specify the panel for equipment that lives in real rooms, vehicles, and kiosks rather than in a lab.

08

EMC and layout: the two-bus discipline

There are two buses to tame, and they want opposite treatment. The 24-bit RGB bus is wide and fast, so keep it short and tightly grouped, return its ground directly beneath it, avoid layer changes mid-bus, and never route it alongside the backlight's switching node. Keep the touch I2C pair short and away from that same switching node, with the interrupt line routed cleanly to the host. A small series resistor near the source can tame the fastest clock edges without harming the image.

Then give it a home: leave clearance where the FPC exits, respect the flex bend radius during assembly, and thermally couple the LED edge to any available copper or chassis. These are habits, not luxuries — a display that passes functional test but radiates, or is susceptible, will cost far more to fix after tooling than to lay out correctly the first time.

Engineering Deep Dive
Resolution
1024 × 600
Touch
G+G / GT9271
Interface
24-bit RGB
Brightness
700 cd/m²
Frame Rate
60 Hz
Backlight
39 LEDs
Touch Bus
I2C
Viewing
ALL O'CLOCK
Driver IC
HX8282+HX8696
Op. Temp.
-20 ~ +70°C
Module
252 × 150 mm
Colours
16.7 M

Where it fits

A 10.1-inch touch display is the natural front end wherever a person interacts directly with equipment. In each case, one bonded part carries the pixels, the touch, and the mechanical interface together.

Industrial HMI
Self-service kiosks
POS & payment terminals
Medical & diagnostic devices
Access & building control
Ticketing & vending
Test & measurement
Vehicle & fleet panels

Integration checklist

Plan for three things and the rest follows. Power and sequencing: provide a clean 3.3 V rail and follow the recommended power-up order, asserting RESET before streaming pixels. Two buses: route the 24-bit RGB bus with matched lengths and a continuous ground return, and keep the touch I2C pair short and clear of the backlight switching node. Mechanical and optical: respect the flex-exit clearance and plan the bezel around the 252.00 × 150.00 mm outline so the 6H glass sits flush with the product surface.

Bring it to your next touch product

The TXW100076B0-XL is available for sampling and volume programs, with OEM/ODM customization across cover-glass printing, touch configuration, backlight brightness, and FPC layout.

Contact us for samples and pricing — and tell us about your enclosure and operating conditions.

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