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SHT20 数据表(PDF) 7 Page - List of Unclassifed Manufacturers

部件名 SHT20
功能描述  DFN type package ??reflow solderable
PDF  14 Pages
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SHT20 数据表(HTML) 7 Page - List of Unclassifed Manufacturers

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Datasheet SHT20
www.sensirion.com
Version 4 – May 2014
7/14
Figure 12
Timing Diagram for Digital Input/Output Pads,
abbreviations are explained in Table 5. SDA directions are seen
from the sensor. Bold SDA line is controlled by the sensor, plain
SDA line is controlled by the micro-controller. Note that SDA
valid read time is triggered by falling edge of anterior toggle.
Parameter
min
typ
max Units
SCL frequency, fSCL
0
-
0.4
MHz
SCL High Time, tSCLH
0.6
-
-
µs
SCL Low Time, tSCLL
1.3
-
-
µs
SDA Set-Up Time, tSU
100
-
-
ns
SDA Hold Time, tHD
0
-
900
ns
SDA Valid Time, tVD
0
-
400
ns
SCL/SDA Fall Time, tF
0
-
100
ns
SCL/SDA Rise Time, tR
0
-
300
ns
Capacitive Load on Bus Line, CB
0
-
400
pF
Table 5 Timing specifications of digital input/output pads for I2C
fast mode. Entities are displayed in Figure 12. VDD = 2.1V to
3.6V, T = -40°C to 125°C, unless otherwise noted. For further
information
regarding
timing,
please
refer
to
http://www.standardics.nxp.com/support/i2c/.
5 Communication with Sensor
SHT20 communicates with I2C protocol. For information on
I2C beyond the information in the following Sections
please refer to the following website:
http://www.standardics.nxp.com/support/i2c/.
Please note that all sensors are set to the same I2C
address, as defined in Section 5.3.
Furthermore, please note, that Sensirion provides an
exemplary sample code on its home page – compare
www.sensirion.com/SHT20.
Please note that in case VDD is set to 0 V (GND), e.g. in
case of a power off of the SHT2x, the SCL and SDA pads
are also pulled to GND. Consequently, the I2C bus is
blocked while VDD of the SHT2x is set to 0 V.
5.1
Start Up Sensor
As a first step, the sensor is powered up to the chosen
supply voltage VDD (between 2.1V and 3.6V). After
power-up, the sensor needs at most 15ms, while SCL is
high, for reaching idle state, i.e. to be ready accepting
commands from the master (MCU). Current consumption
during start up is 350µA maximum. Whenever the sensor
is powered up, but not performing a measurement or
communicating, it is automatically in idle state (sleep
mode).
5.2
Start / Stop Sequence
Each transmission sequence begins with Start condition
(S) and ends with Stop condition (P) as displayed in Figure
13 and Figure 14.
Figure 13 Transmission Start condition (S) - a high to low
transition on the SDA line while SCL is high. The Start condition
is a unique state on the bus created by the master, indicating to
the slaves the beginning of a transmission sequence (bus is
considered busy after a Start).
Figure 14 Transmission Stop condition (P) - a low to high
transition on the SDA line while SCL is high. The Stop condition
is a unique state on the bus created by the master, indicating to
the slaves the end of a transmission sequence (bus is
considered free after a Stop).
5.3
Sending a Command
After sending the Start condition, the subsequent I2C
header consists of the 7-bit I2C device address ‘1000’000’
and an SDA direction bit (Read R: ‘1’, Write W: ‘0’). The
sensor indicates the proper reception of a byte by pulling
the SDA pin low (ACK bit) after the falling edge of the 8th
SCL clock. After the issue of a measurement command
(‘1110’0011’ for temperature, ‘1110’0101’ for relative
humidity’), the MCU must wait for the measurement to
complete. The basic commands are summarized in Table
6.
SCL
70%
30%
tSCLL
1/fSCL
tSCLH
tR
tF
SDA
70%
30%
tSU
tHD
SDA valid read
DATA IN
tR
SDA
70%
30%
DATA OUT
tVD
tF
SDA valid write
SDA
SCL
70%
30%
70%
30%
SDA
SCL
70%
30%
70%
30%



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