TC850CLW Microchip Technology, TC850CLW Datasheet - Page 16

IC ADC 15BIT FAST 44PLCC

TC850CLW

Manufacturer Part Number
TC850CLW
Description
IC ADC 15BIT FAST 44PLCC
Manufacturer
Microchip Technology
Datasheet

Specifications of TC850CLW

Data Interface
Parallel
Number Of Bits
15
Sampling Rate (per Second)
40
Number Of Converters
1
Voltage Supply Source
Dual ±
Operating Temperature
0°C ~ 70°C
Mounting Type
Surface Mount
Package / Case
44-PLCC
Resolution (bits)
15bit
Sampling Rate
40SPS
Input Channel Type
Differential
Supply Voltage Range - Analog
± 5V
Supply Current
2mA
Digital Ic Case Style
LCC
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

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TC850
8.0
8.1
The TC850 may operate with a crystal oscillator. The
crystal selected should be designed for a Pierce
oscillator, such as an AT-cut quartz crystal. The crystal
oscillator schematic is shown in Figure 8-1.
Since low-frequency crystals are very large and
ceramic resonators are too lossy, the TC850 clock
should be derived from an external source, such as a
microprocessor clock. The clock should be input on the
OSC
OSC
DGND and V
Since oscillator frequency is ÷ 4 internally and each
conversion requires 1280 internal clock cycles, the
conversion time will be:
EQUATION 8-1:
An important advantage of the integrating ADC is the
ability to reject periodic noise. This feature is most often
used to reject line frequency (50 Hz or 60 Hz) noise.
Noise rejection is accomplished by selecting the inte-
gration period equal to one or more line frequency
cycles. The desired clock frequency is selected as
follows:
EQUATION 8-2:
For example, 60 Hz noise will be rejected with a clock
frequency of 61.44 kHz, giving a conversion rate of 12
conversions/sec. Integer submultiples of 61.44 kHz
(such as 30.72 kHz, etc.) will also reject 60 Hz noise.
For 50 Hz noise rejection, a 51.2 kHz frequency is
recommended.
If noise rejection is not important, other clock frequen-
cies can be used. The TC850 will typically operate at
conversion rates ranging from 3 to 40 conversions/sec,
corresponding to oscillator frequencies from 15.36 kHz
to 204.8 kHz.
DS21479C-page 16
where:
1
2
F
4 represents the clock divider,
256 is the number of integrate cycles.
pin and no connection should be made to the
pin. The external clock should swing between
Conversion Time =
NOISE
DIGITAL SECTION TYPICAL
APPLICATIONS
Oscillator
DD
is the noise frequency to be rejected,
F
CLOCK
.
= F
NOISE
4 x 1280
F
x 4 x 256
CLOCK
FIGURE 8-1:
8.2
The TC850 provides an easy and flexible digital inter-
face. A 3-state data bus and six control inputs permit
the TC850 to be treated as a memory device, in most
applications. The conversion result can be accessed
over an 8-bit bus or via a μP I/O port.
A typical μP bus interface for the TC850 is shown in
Figure 8-2. In this example, the TC850 operates in the
Demand mode and conversion begins when a write
operation is performed to any decoded address space.
The BUSY output interrupts the μP at the end-of-con-
version.
The A/D conversion result is read as three memory
bytes. The two LSBs of the address bus select high/low
byte and overrange/polarity bit data, while high-order
address lines enable the CE input.
FIGURE 8-2:
Bus
CONT/DEMAND
Data Bus Interfacing
17
100 pF
61.44 kHz
OVR/POL
Address
TC850
X00
X01
X10
10 MΩ
BUSY
DB0
DB1
DB2
DB3
DB4
DB5
DB6
DB7
CE
WR
L/H
RD
CS
Crystal Oscillator Schematic
Interface to Typical
© 2006 Microchip Technology Inc.
High Byte Polarity
Low Byte
High Byte Overrange
+5V
TC850
Address
Decode
18
100 pF
Data Bus
¸4
INTERRUPT
DB0
DB1
DB2
DB4
RD
DB3
DB5
DB6
DB7
A15
A0
A1
WR
A2
μ
μP
P Data
System
Clock

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