参数资料
型号: ADS7815UE4
厂商: Texas Instruments
文件页数: 14/16页
文件大小: 0K
描述: IC 16BIT 250KHZ ADC CONV 28-SOIC
产品培训模块: Data Converter Basics
标准包装: 20
位数: 16
采样率(每秒): 250k
数据接口: 并联
转换器数目: 1
功率耗散(最大): 250mW
电压电源: 双 ±
工作温度: -25°C ~ 85°C
安装类型: 表面贴装
封装/外壳: 28-SOIC(0.295",7.50mm 宽)
供应商设备封装: 28-SOIC
包装: 管件
输入数目和类型: 1 个单端,双极
ADS7815
7
SBAS065B
www.ti.com
REFERENCE
The ADS7815 can be operated with the internal 2.5V refer-
ence or an external reference. By applying an external
reference to the REF pin, the internal reference is bypassed.
The reference voltage at REF is buffered internally.
The voltage at the reference input sets the full-scale range of
the converter. With the internal 2.5V reference, the input
range is
±2.5V. Thus, the input range of the converter’s
analog input is simply
±V
REF, where VREF is the voltage at
the reference input. Because of internal gain and offset error,
the input range will not be exactly
±V
REF. The full-scale
error of the converter with an external reference will typi-
cally be 0.25% or less. The bipolar zero error will be similar
to that listed in the Electrical Characteristics table. The range
for the external reference is 2.3V to 2.7V.
REF PIN
The REF pin itself should be bypassed with a 0.1
F ceramic
capacitor in parallel with a 2.2
F tantalum capacitor. While
both capacitors should be physically close to the ADS7815,
it is very important that the ceramic capacitor be placed as
close as possible.
The REF voltage should not be used to drive a large load or
any load which is dynamic. A large load will reduce the
reference voltage and the corresponding input range of the
converter. A dynamic load will modulate the reference
voltage and this modulation will be present in the converter’s
output data.
CAP PIN
The voltage on the CAP pin is the output of the reference
buffer. This pin should be bypassed with a 0.1
F ceramic
capacitor in parallel with a 2.2
F tantalum capacitor. While
both capacitors should be physically close to the ADS7815,
it is very important that the ceramic capacitor be placed as
close as possible.
The CAP pin connects to the internal reference buffer and
directly to the binary weighted capacitor array of the con-
verter. Thus, the signal at the CAP pin has high-frequency
glitches which occur at each bit decision. For this reason, the
CAP voltage should not be used to provide a reference
voltage for external circuitry.
R/C and CS should remain static prior to that start of
conversion and during the later part of a conversion. To start
a conversion, R/C should be taken LOW at least 100ns
before CS is taken LOW. R/C and/or CS should be taken
HIGH during the early part of the conversion, preferably
within 200ns of the start of the conversion. If these times are
not observed, then there is risk that the transition of these
digital signals may affect the conversion result.
The three NAND gates shown in Figure 1 can be used to
generate R/C and CS signals from a single negative going
pulse.
BUSY
BUSY goes LOW when a conversion is started and remains
LOW throughout the conversion. Just prior to BUSY going
HIGH, the digital outputs become active with the conversion
result. Time t11, shown in Figure 2, should provide adequate
time for the ADS7815 to drive the digital outputs to a valid
logic state before BUSY rises. As shown in Figure 1 and 2,
the rising edge of BUSY can be used to latch the digital
result into an external component.
DIGITAL OUTPUT
The ADS7815’s digital output is in Binary Two’s Comple-
ment (BTC) format. Table III shows the relationship be-
tween the digital output word and analog input voltage under
ideal conditions.
ANALOG
DESCRIPTION
INPUT
BINARY CODE
HEX CODE
Full Scale Range
±2.5V
Least Significant
76
V
Bit (LSB)
+Full Scale
2.499924V
0111 1111 1111 1111
7FFF
(2.5V – 1LSB)
Midscale
0V
0000 0000 0000 0000
0000
One LSB below
Midscale
–76
V
1111 1111 1111 1111
FFFF
–Full Scale
–2.5V
1000 0000 0000 0000
8000
DIGITAL OUTPUT
BINARY TWO’S COMPLEMENT
Table III. Ideal Input Voltages and Output Codes.
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