DataSheet.es    


PDF TSC2046 Data sheet ( Hoja de datos )

Número de pieza TSC2046
Descripción Low Voltage I/O TOUCH SCREEN CONTROLLER
Fabricantes Burr-Brown Corporation 
Logotipo Burr-Brown Corporation Logotipo




1. TSC2046






Hay una vista previa y un enlace de descarga de TSC2046 (archivo pdf) en la parte inferior de esta página.


Total 23 Páginas

No Preview Available ! TSC2046 Hoja de datos, Descripción, Manual

TSC2046 ®
TSC2046 ®
TSC2046 ®
TSC2046
SBAS265C – OCTOBER 2002 – REVISED JULY 2004
Low Voltage I/O
TOUCH SCREEN CONTROLLER
FEATURES
z SAME PINOUT AS ADS7846
z 2.2V TO 5.25V OPERATION
z 1.5V TO 5.25V DIGITAL I/O
z INTERNAL 2.5V REFERENCE
z DIRECT BATTERY MEASUREMENT (0V to 6V)
z ON-CHIP TEMPERATURE MEASUREMENT
z TOUCH-PRESSURE MEASUREMENT
z QSPITM AND SPITM 3-WIRE INTERFACE
z AUTO POWER-DOWN
z AVAILABLE IN TSSOP-16, QFN-16, AND
VFBGA-48 PACKAGES
APPLICATIONS
z PERSONAL DIGITAL ASSISTANTS
z PORTABLE INSTRUMENTS
z POINT-OF-SALE TERMINALS
z PAGERS
z TOUCH SCREEN MONITORS
z CELLULAR PHONES
US Patent No. 6246394
QSPI and SPI are registered trademarks of Motorola.
Pen
Detect
+VCC
DESCRIPTION
The TSC2046 is a next-generation version to the ADS7846
4-wire touch screen controller which supports a low-voltage
I/O interface from 1.5V to 5.25V. The TSC2046 is 100% pin-
compatible with the existing ADS7846, and will drop into the
same socket. This allows for easy upgrade of current appli-
cations to the new version. The TSC2046 also has an on-
chip 2.5V reference that can be used for the auxiliary input,
battery monitor, and temperature measurement modes. The
reference can also be powered down when not used to
conserve power. The internal reference operates down to
2.7V supply voltage, while monitoring the battery voltage
from 0V to 6V.
The low-power consumption of < 0.75mW typ at 2.7V (refer-
ence off), high-speed (up to 125kHz sample rate), and on-
chip drivers make the TSC2046 an ideal choice for battery-
operated systems such as personal digital assistants (PDAs)
with resistive touch screens, pagers, cellular phones, and
other portable equipment. The TSC2046 is available in
TSSOP-16, QFN-16, and VFBGA-48 packages and is speci-
fied over the –40°C to +85°C temperature range.
PENIRQ
X+
X–
Y+
Y–
VBAT
AUX
VREF
Temperature
Sensor
Battery
Monitor
6-Channel
MUX
SAR
TSC2046
CDAC
Comparator
Serial
Data
In/Out
IOVDD
DOUT
BUSY
CS
DCLK
DIN
Internal 2.5V
Reference
Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of
Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet.
PRODUCTION DATA information is current as of publication date.
Products conform to specifications per the terms of Texas Instruments
standard warranty. Production processing does not necessarily include
testing of all parameters.
www.ti.com
Copyright © 2002-2004, Texas Instruments Incorporated

1 page




TSC2046 pdf
TYPICAL CHARACTERISTICS
At TA = +25°C, +VCC = +2.7V, IOVDD = +1.8V, VREF = External +2.5V, 12-bit mode, PD0 = 0, fSAMPLE = 125kHz, and fCLK = 16 • fSAMPLE = 2MHz, unless otherwise noted.
+VCC SUPPLY CURRENT vs TEMPERATURE
400
350
300
250
200
150
100
–40
–20
0 20 40 60
Temperature (°C)
80 100
IOVDD SUPPLY CURRENT vs TEMPERATURE
30
25
20
15
10
5
–40
–20
0 20 40 60
Temperature (°C)
80 100
POWER-DOWN SUPPLY CURRENT vs TEMPERATURE
140
120
100
80
60
40
–40
–20
0 20 40 60
Temperature (°C)
80 100
450
400
350
300
250
200
150
100
2.0
+VCC SUPPLY CURRENT vs +VCC
fSAMPLE = 125kHz
fSAMPLE = 12.5kHz
2.5 3.0 3.5 4.0 4.5
+VCC (V)
5.0
IOVDD SUPPLY CURRENT vs IOVDD
60
+VCC IOVDD
50
40
fSAMPLE = 125kHz
30
20
10
fSAMPLE = 12.5kHz
0
1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0
IOVDD (V)
MAXIMUM SAMPLE RATE vs +VCC
1M
100k
10k
1k
2.0 2.5 3.0 3.5 4.0 4.5 5.0
+VCC (V)
TSC2046
SBAS265C
www.ti.com
5

5 Page





TSC2046 arduino
always a percentage of the external resistance, regardless of
how it changes in relation to the on-resistance of the internal
switches. Note that there is an important consideration regarding
power dissipation when using the ratiometric mode of operation
(see the Power Dissipation section for more details).
As a final note about the differential reference mode, it must
be used with +VCC as the source of the +REF voltage and
cannot be used with VREF. It is possible to use a high-
precision reference on VREF and single-ended reference
mode for measurements which do not need to be ratiometric.
In some cases, it is possible to power the converter directly
from a precision reference. Most references can provide
enough power for the TSC2046, but might not be able to
supply enough current for the external load (such as a
resistive touch screen).
TOUCH SCREEN SETTLING
In some applications, external capacitors may be required
across the touch screen for filtering noise picked up by the
touch screen (e.g., noise generated by the LCD panel or
backlight circuitry). These capacitors provide a low-pass filter
to reduce the noise, but cause a settling time requirement
when the panel is touched that typically shows up as a gain
error. There are several methods for minimizing or eliminating
this issue. The problem is the input and/or reference has not
settled to the final steady-state value prior to the ADC sampling
the input(s) and providing the digital output. Additionally, the
reference voltage may still be changing during the measure-
ment cycle. Option 1 is to stop or slow down the TSC2046
DCLK for the required touch screen settling time. This allows
the input and reference to have stable values for the Acquire
period (3 clock cycles of the TSC2046; see Figure 9). This
works for both the single-ended and the differential modes.
Option 2 is to operate the TSC2046 in the differential mode
only for the touch screen measurements and command the
TSC2046 to remain on (touch screen drivers ON) and not go
into power-down (PD0 = 1). Several conversions are made
depending on the settling time required and the TSC2046 data
rate. Once the required number of conversions have been
made, the processor commands the TSC2046 to go into its
power-down state on the last measurement. This process is
required for X-Position, Y-Position, and Z-Position measure-
ments. Option 3 is to operate in the 15 Clock-per-Conversion
mode, which overlaps the analog-to-digital conversions and
maintains the touch screen drivers on until commanded to stop
by the processor (see Figure 13).
TEMPERATURE MEASUREMENT
In some applications, such as battery recharging, a measure-
ment of ambient temperature is required. The temperature
measurement technique used in the TSC2046 relies on the
characteristics of a semiconductor junction operating at a
fixed current level. The forward diode voltage (VBE) has a
well-defined characteristic versus temperature. The ambient
temperature can be predicted in applications by knowing the
+25°C value of the VBE voltage and then monitoring the delta
of that voltage as the temperature changes. The TSC2046
offers two modes of operation. The first mode requires
calibration at a known temperature, but only requires a single
reading to predict the ambient temperature. A diode is used
(turned on) during this measurement cycle. The voltage
across the diode is connected through the MUX for digitizing
the forward bias voltage by the ADC with an address of
A2 = 0, A1 = 0, and A0 = 0 (see Table I and Figure 6 for
details). This voltage is typically 600mV at +25°C with a 20µA
current through the diode. The absolute value of this diode
voltage can vary a few millivolts. However, the TC of this
voltage is very consistent at –2.1mV/°C. During the final test
of the end product, the diode voltage would be stored at a
known room temperature, in memory, for calibration pur-
poses by the user. The result is an equivalent temperature
measurement resolution of 0.3°C/LSB (in 12-bit mode).
+VCC
TEMP0
TEMP1
MUX
ADC
FIGURE 6. Functional Block Diagram of Temperature Mea-
surement Mode.
The second mode does not require a test temperature calibra-
tion, but uses a two-measurement method to eliminate the
need for absolute temperature calibration and for achieving
2°C accuracy. This mode requires a second conversion with
an address of A2 = 1, A1 = 1, and A0 = 1, with a 91 times larger
current. The voltage difference between the first and second
conversion using 91 times the bias current is represented by
kT/q • ln (N), where N is the current ratio = 91,
k = Boltzmann’s constant (1.38054 • 10–23 electron volts/
degrees Kelvin), q = the electron charge (1.602189 • 10–19 C),
and T = the temperature in degrees Kelvin. This method can
provide improved absolute temperature measurement over
the first mode at the cost of less resolution (1.6°C/LSB). The
equation for solving for °K is:
°K = q • V/(k • ln (N))
(1)
where,
V = V (I91) – V (I1) (in mV)
°K = 2.573 °K/mV • V
°C = 2.573 • V(mV) – 273°K
NOTE: The bias current for each diode temperature mea-
surement is only on for 3 clock cycles (during the acquisition
mode) and, therefore, does not add any noticeable increase
in power, especially if the temperature measurement only
occurs occasionally.
TSC2046
SBAS265C
www.ti.com
11

11 Page







PáginasTotal 23 Páginas
PDF Descargar[ Datasheet TSC2046.PDF ]




Hoja de datos destacado

Número de piezaDescripciónFabricantes
TSC2046Low Voltage I/O TOUCH SCREEN CONTROLLERBurr-Brown Corporation
Burr-Brown Corporation
TSC2046Low Voltage I/O Touch Screen Controller (Rev. G)Texas Instruments
Texas Instruments
TSC2046ELow Voltage I/O Touch Screen Controller (Rev. B)Texas Instruments
Texas Instruments
TSC2046E-Q1TSC2046E-Q1 Low Voltage I/O Touch Screen ControllerTexas Instruments
Texas Instruments

Número de piezaDescripciónFabricantes
SLA6805M

High Voltage 3 phase Motor Driver IC.

Sanken
Sanken
SDC1742

12- and 14-Bit Hybrid Synchro / Resolver-to-Digital Converters.

Analog Devices
Analog Devices


DataSheet.es es una pagina web que funciona como un repositorio de manuales o hoja de datos de muchos de los productos más populares,
permitiéndote verlos en linea o descargarlos en PDF.


DataSheet.es    |   2020   |  Privacy Policy  |  Contacto  |  Buscar