DS1620_V01 [MAXIM]

Digital Thermometer and Thermostat;
DS1620_V01
型号: DS1620_V01
厂家: MAXIM INTEGRATED PRODUCTS    MAXIM INTEGRATED PRODUCTS
描述:

Digital Thermometer and Thermostat

文件: 总12页 (文件大小:451K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
DS1620  
Digital Thermometer and  
Thermostat  
BENEFITS AND FEATURES  
. Simply Adds Temperature Monitoring and  
Control to Any System  
PIN ASSIGNMENT  
8
7
6
5
1
2
3
4
DQ  
CLK/CONV  
RST  
VDD  
o Measures Temperatures From -55°C to  
+125°C in 0.5°C Increments; Fahrenheit  
Equivalent is -67°F to +257°F in 0.9°F  
Increments  
THIGH  
TLOW  
TCOM  
GND  
o Temperature is Read as a 9-Bit Value  
o Converts Temperature to Digital Word in  
750ms (max)  
DS1620S 8-Pin SOIC (208-mil)  
o Thermostatic Settings are User-Definable  
and Nonvolatile  
. Can Be Used in a Wide Variety of  
Applications  
8
7
6
5
1
2
DQ  
CLK/CONV  
RST  
VDD  
THIGH  
TLOW  
TCOM  
3
4
o Supply Voltage Range Covers From 2.7V  
to 5.5V  
GND  
o Data is Read From/Written Via a 3-Wire  
DS1620 8-Pin DIP (300-mil)  
Serial Interface (CLK, DQ, RST  
. Saves Space  
)
o Requires No External Components  
o 8-Pin DIP or SOIC (208-mil) Packages  
PIN DESCRIPTION  
DQ  
- 3-Wire Input/Output  
CLK/ CONV - 3-Wire Clock Input and  
Stand-alone Convert Input  
APPLICATIONS  
RST  
- 3-Wire Reset Input  
Thermostatic Controls  
Industrial Systems  
Consumer Products  
GND  
THIGH  
TLOW  
TCOM  
VDD  
- Ground  
- High Temperature Trigger  
- Low Temperature Trigger  
- High/Low Combination Trigger  
- Power Supply Voltage (3V - 5V)  
Thermometers  
DESCRIPTION  
The DS1620 Digital Thermometer and Thermostat provides 9–bit temperature readings which indicate  
the temperature of the device. With three thermal alarm outputs, the DS1620 can also act as a thermostat.  
THIGH is driven high if the DS1620’s temperature is greater than or equal to a user–defined temperature  
TH. TLOW is driven high if the DS1620’s temperature is less than or equal to a user–defined temperature  
TL. TCOM is driven high when the temperature exceeds TH and stays high until the temperature falls  
below that of TL.  
1 of 12  
19-7539; Rev 3; 3/15  
DS1620  
User–defined temperature settings are stored in nonvolatile memory, so parts can be programmed prior to  
insertion in a system, as well as used in standalone applications without a CPU. Temperature settings and  
temperature readings are all communicated to/from the DS1620 over a simple 3–wire interface.  
ORDERING INFORMATION  
PART  
DS1620  
PACKAGE MARKING  
DS1620  
DESCRIPTION  
8-Pin DIP (300 mil)  
DS1620+  
DS1620S  
DS1620 (See Note)  
DS1620  
Lead-Free 8-Pin DIP (300 mil)  
8-Pin SOIC (208 mil)  
DS1620S+  
DS1620S/T&R  
DS1620S+T&R  
DS1620 (See Note)  
DS1620  
DS1620 (See Note)  
Lead-Free 8-Pin SOIC (208 mil)  
8-Pin SOIC (208 mil), 2000-Piece Tape-and-Reel  
Lead-Free 8-Pin SOIC (208 mil), 2000-Piece  
Tape-and-Reel  
Note: A “+” symbol will also be marked on the package near the Pin 1 indicator  
DETAILED PIN DESCRIPTION Table 1  
PIN  
1
SYMBOL  
DESCRIPTION  
DQ  
Data Input/Output pin for 3-wire communication port.  
2
Clock input pin for 3-wire communication port. When the DS1620 is used in a  
stand-alone application with no 3–wire port, this pin can be used as a convert  
CLK/ CONV  
pin. Temperature conversion will begin on the falling edge of CONV  
.
3
Reset input pin for 3-wire communication port.  
RST  
4
5
GND  
TCOM  
Ground pin.  
High/Low Combination Trigger. Goes high when temperature exceeds TH;  
will reset to low when temperature falls below TL.  
6
7
8
TLOW  
THIGH  
VDD  
Low Temperature Trigger. Goes high when temperature falls below TL.  
High Temperature Trigger. Goes high when temperature exceeds TH.  
Supply Voltage. 2.7V – 5.5V input power pin.  
Table 2. DS1620 REGISTER SUMMARY  
REGISTER NAME  
(USER ACCESS)  
Temperature  
MEMORY  
TYPE  
REGISTER CONTENTS  
AND POWER-UP/POR STATE  
SIZE  
Measured Temperature (Two’s Complement)  
Power-Up/POR State: -60ºC (1 1000 1000)  
Upper Alarm Trip Point (Two’s Complement)  
9 Bits  
SRAM  
(Read Only)  
TH  
9 Bits  
9 Bits  
EEPROM Power-Up/POR State: User-Defined.  
Initial State from Factory: +15°C (0 0001 1110)  
Lower Alarm Trip Point (Two’s Complement)  
EEPROM Power-Up/POR State: User-Defined.  
Initial State from Factory: +10°C (0 0001 0100)  
(Read/Write)  
TL  
(Read/Write)  
OPERATION-MEASURING TEMPERATURE  
A block diagram of the DS1620 is shown in Figure 1.  
. .  
2 of 12  
DS1620  
DS1620 FUNCTIONAL BLOCK DIAGRAM Figure 1  
The DS1620 measures temperature using a bandgap-based temperature sensor. The temperature reading  
is provided in a 9–bit, two’s complement reading by issuing a READ TEMPERATURE command. The  
data is transmitted serially through the 3–wire serial interface, LSB first. The DS1620 can measure  
temperature over the range of -55°C to +125°C in 0.5°C increments. For Fahrenheit usage, a lookup table  
or conversion factor must be used.  
Since data is transmitted over the 3–wire bus LSB first, temperature data can be written to/read from the  
DS1620 as either a 9–bit word (taking RST low after the 9th (MSB) bit), or as two transfers of 8–bit  
words, with the most significant 7 bits being ignored or set to 0, as illustrated in Table 3. After the MSB,  
the DS1620 will output 0s.  
Note that temperature is represented in the DS1620 in terms of a ½°C LSB, yielding the 9–bit format  
shown in Figure 2.  
TEMPERATURE, TH, and TL REGISTER FORMAT Figure 2  
MSB  
X
LSB  
1
X
X
X
X
X
X
1
1
0
0
1
1
1
0
T = -25°C  
3 of 12  
DS1620  
Table 3 describes the exact relationship of output data to measured temperature.  
.
TEMPERATURE/DATA RELATIONSHIPS Table 3  
TEMP  
DIGITAL OUTPUT  
(Binary)  
DIGITAL OUTPUT  
(Hex)  
+125˚C  
+25˚C  
+½˚C  
+0˚C  
-½˚C  
-25˚C  
-55˚C  
0 11111010  
0 00110010  
0 00000001  
0 00000000  
1 11111111  
1 11001110  
1 10010010  
00FA  
0032h  
0001h  
0000h  
01FFh  
01CEh  
0192h  
Higher resolutions may be obtained by reading the temperature, and truncating the 0.5°C bit (the LSB)  
from the read value. This value is TEMP_READ. The value left in the counter may then be read by  
issuing a READ COUNTER command. This value is the count remaining (COUNT_REMAIN) after the  
gate period has ceased. By loading the value of the slope accumulator into the count register (using the  
READ SLOPE command), this value may then be read, yielding the number of counts per degree C  
(COUNT_PER_C) at that temperature. The actual temperature may be then be calculated by the user  
using the following:  
(COUNT_PER_C - COUNT_REMAIN)  
TEMPERATURE=TEMP_READ-0.25 +  
COUNT_PER_C  
OPERATION–THERMOSTAT CONTROLS  
Three thermally triggered outputs, THIGH, TLOW, and TCOM, are provided to allow the DS1620 to be used  
as a thermostat, as shown in Figure 3. When the DS1620’s temperature meets or exceeds the value stored  
in the high temperature trip register, the output THIGH becomes active (high) and remains active until the  
DS1620’s measured temperature becomes less than the stored value in the high temperature register, TH.  
The THIGH output can be used to indicate that a high temperature tolerance boundary has been met or  
exceeded, or it can be used as part of a closed loop system to activate a cooling system and deactivate it  
when the system temperature returns to tolerance.  
The TLOW output functions similarly to the THIGH output. When the DS1620’s measured temperature  
equals or falls below the value stored in the low temperature register, the TLOW output becomes active.  
TLOW remains active until the DS1620’s temperature becomes greater than the value stored in the low  
temperature register, TL. The TLOW output can be used to indicate that a low temperature tolerance  
boundary has been met or exceeded, or as part of a closed loop system it can be used to activate a heating  
system and deactivate it when the system temperature returns to tolerance.  
The TCOM output goes high when the measured temperature meets or exceeds TH, and will stay high until  
the temperature equals or falls below TL. In this way, any amount of hysteresis can be obtained.  
4 of 12  
DS1620  
THERMOSTAT OUTPUT OPERATION Figure 3  
THIGH  
TLOW  
TCOM  
TH  
TL  
T(°C)  
OPERATION AND CONTROL  
The DS1620 must have temperature settings resident in the TH and TL registers for thermostatic  
operation. A configuration/status register also determines the method of operation that the DS1620 will  
use in a particular application and indicates the status of the temperature conversion operation. The  
configuration register is defined as follows:  
CONFIGURATION/STATUS REGISTER  
DONE  
THF  
TLF  
NVB  
1
0
CPU  
1SHOT  
where  
DONE = Conversion Done Bit. 1=conversion complete, 0=conversion in progress. The power-up/POR  
state is a 1.  
THF  
= Temperature High Flag. This bit will be set to 1 when the temperature is greater than or equal  
to the value of TH. It will remain 1 until reset by writing 0 into this location or by removing power from  
the device. This feature provides a method of determining if the DS1620 has ever been subjected to  
temperatures above TH while power has been applied. The power-up/POR state is a 0.  
TLF  
= Temperature Low Flag. This bit will be set to 1 when the temperature is less than or equal to  
the value of TL. It will remain 1 until reset by writing 0 into this location or by removing power from the  
device. This feature provides a method of determining if the DS1620 has ever been subjected to  
temperatures below TL while power has been applied. The power-up/POR state is a 0.  
NVB = Nonvolatile Memory Busy Flag. 1=write to an E2 memory cell in progress. 0=nonvolatile  
memory is not busy. A copy to E2 may take up to 10 ms. The power-up/POR state is a 0.  
CPU  
= CPU Use Bit. If CPU=0, the CLK/ CONV pin acts as a conversion start control, when RST is  
low. If CPU is 1, the DS1620 will be used with a CPU communicating to it over the 3–wire port, and the  
operation of the CLK/CONV pin is as a normal clock in concert with DQ and RST . This bit is stored in  
nonvolatile E2 memory, capable of at least 50,000 writes. The DS1620 is shipped with CPU=0.  
5 of 12  
DS1620  
1SHOT = One–Shot Mode. If 1SHOT is 1, the DS1620 will perform one temperature conversion upon  
reception of the Start Convert T protocol. If 1SHOT is 0, the DS1620 will continuously perform  
temperature conversion. This bit is stored in nonvolatile E2 memory, capable of at least 50,000 writes. The  
DS1620 is shipped with 1SHOT=0.  
For typical thermostat operation, the DS1620 will operate in continuous mode. However, for applications  
where only one reading is needed at certain times or to conserve power, the one–shot mode may be used.  
Note that the thermostat outputs (THIGH, TLOW, TCOM) will remain in the state they were in after the last  
valid temperature conversion cycle when operating in one–shot mode.  
OPERATION IN STAND-ALONE MODE  
In applications where the DS1620 is used as a simple thermostat, no CPU is required. Since the  
temperature limits are nonvolatile, the DS1620 can be programmed prior to insertion in the system. In  
order to facilitate operation without a CPU, the CLK/ CONV pin (pin 2) can be used to initiate  
conversions. Note that the CPU bit must be set to 0 in the configuration register to use this mode of  
operation. Whether CPU=0 or 1, the 3–wire port is active. Setting CPU=1 disables the stand–alone mode.  
To use the CLK/ CONV pin to initiate conversions, RST must be low and CLK/ CONV must be high. If  
CLK/ CONV is driven low and then brought high in less than 10 ms, one temperature conversion will be  
performed and then the DS1620 will return to an idle state. If CLK/ CONV is driven low and remains low,  
continuous conversions will take place until CLK/CONV is brought high again. With the CPU bit set to 0,  
the CLK/ CONV will override the 1SHOT bit if it is equal to 1. This means that even if the part is set for  
one–shot mode, driving CLK/ CONV low will initiate conversions.  
3-WIRE COMMUNICATIONS  
The 3–wire bus is comprised of three signals. These are the RST (reset) signal, the CLK (clock) signal,  
and the DQ (data) signal. All data transfers are initiated by driving the RST input high. Driving the RST  
input low terminates communication. (See Figures 4 and 5.) A clock cycle is a sequence of a falling edge  
followed by a rising edge. For data inputs, the data must be valid during the rising edge of a clock cycle.  
Data bits are output on the falling edge of the clock and remain valid through the rising edge.  
When reading data from the DS1620, the DQ pin goes to a high-impedance state while the clock is high.  
Taking RST low will terminate any communication and cause the DQ pin to go to a high-impedance  
state.  
Data over the 3–wire interface is communicated LSB first. The command set for the 3–wire interface as  
shown in Table 4 is as follows.  
Read Temperature [AAh]  
This command reads the contents of the register which contains the last temperature conversion result.  
The next nine clock cycles will output the contents of this register.  
Write TH [01h]  
This command writes to the TH (HIGH TEMPERATURE) register. After issuing this command the next  
nine clock cycles clock in the 9–bit temperature limit which will set the threshold for operation of the  
THIGH output.  
6 of 12  
DS1620  
Write TL [02h]  
This command writes to the TL (LOW TEMPERATURE) register. After issuing this command the next  
nine clock cycles clock in the 9–bit temperature limit which will set the threshold for operation of the  
TLOW output.  
Read TH [A1h]  
This command reads the value of the TH (HIGH TEMPERATURE) register. After issuing this command  
the next nine clock cycles clock out the 9–bit temperature limit which sets the threshold for operation of  
the THIGH output.  
Read TL [A2h]  
This command reads the value of the TL (LOW TEMPERATURE) register. After issuing this command  
the next nine clock cycles clock out the 9–bit temperature limit which sets the threshold for operation of  
the TLOW output.  
Read Counter [A0h]  
This command reads the value of the counter byte. The next nine clock cycles will output the contents of  
this register.  
Read Slope [A9h]  
This command reads the value of the slope counter byte from the DS1620. The next nine clock cycles  
will output the contents of this register.  
Start Convert T [EEh]  
This command begins a temperature conversion. No further data is required. In one–shot mode the  
temperature conversion will be performed and then the DS1620 will remain idle. In continuous mode this  
command will initiate continuous conversions.  
Stop Convert T [22h]  
This command stops temperature conversion. No further data is required. This command may be used to  
halt a DS1620 in continuous conversion mode. After issuing this command the current temperature  
measurement will be completed and then the DS1620 will remain idle until a Start Convert T is issued to  
resume continuous operation.  
Write Config [0Ch]  
This command writes to the configuration register. After issuing this command the next eight clock cycles  
clock in the value of the configuration register.  
Read Config [ACh]  
This command reads the value in the configuration register. After issuing this command the next eight  
clock cycles output the value of the configuration register.  
7 of 12  
DS1620  
DS1620 COMMAND SET Table 4  
3-WIRE BUS  
DATA AFTER  
ISSUING  
INSTRUCTION DESCRIPTION  
PROTOCOL PROTOCOL  
NOTES  
TEMPERATURE CONVERSION COMMANDS  
Read Temperature Reads last converted temperature  
value from temperature register.  
AAh  
A0h  
A9h  
<read data>  
<read data>  
<read data>  
Read Counter  
Reads value of count remaining  
from counter.  
Read Slope  
Reads value of the slope  
accumulator.  
Start Convert T  
Stop Convert T  
Initiates temperature conversion.  
Halts temperature conversion.  
EEh  
22h  
Idle  
Idle  
1
1
THERMOSTAT COMMANDS  
Write TH  
Write TL  
Writes high temperature limit value  
into TH register.  
Writes low temperature limit value  
into TL register.  
Reads stored value of high  
temperature limit from TH register.  
Reads stored value of low  
temperature limit from TL register.  
Writes configuration data to  
configuration register.  
01h  
<write data>  
<write data>  
<read data>  
<read data>  
<write data>  
<read data>  
2
2
2
2
2
2
02h  
Read TH  
A1h  
A2h  
0Ch  
ACh  
Read TL  
Write Config  
Read Config  
Reads configuration data from  
configuration register.  
NOTES:  
1. In continuous conversion mode, a Stop Convert T command will halt continuous conversion. To  
restart, the Start Convert T command must be issued. In one–shot mode, a Start Convert T command  
must be issued for every temperature reading desired.  
2. Writing to the E2 requires up to 10 ms at room temperature. After issuing a write command no further  
writes should be requested for at least 10 ms.  
8 of 12  
DS1620  
FUNCTION EXAMPLE  
Example: CPU sets up DS1620 for continuous conversion and thermostatic function.  
DS1620 MODE  
CPU MODE  
(3-WIRE)  
RX  
DATA (LSB FIRST)  
COMMENTS  
CPU issues Write Config command  
CPU sets DS1620 up for continuous  
conversion  
TX  
TX  
0Ch  
00h  
RX  
TX  
RX  
CPU issues Reset to DS1620  
Toggle RST  
01h  
TX  
TX  
TX  
RX  
RX  
RX  
CPU issues Write TH command  
CPU sends data for TH limit of +40˚C  
CPU issues Reset to DS1620  
0050h  
Toggle RST  
02h  
TX  
TX  
TX  
RX  
RX  
RX  
CPU issues Write TL command  
CPU sends data for TL limit of +10˚C  
CPU issues Reset to DS1620  
0014h  
Toggle RST  
A1h  
TX  
RX  
RX  
TX  
CPU issues Read TH command  
DS1620 sends back stored value of TH for  
CPU to verify  
0050h  
TX  
RX  
CPU issues Reset to DS1620  
Toggle RST  
A2h  
TX  
RX  
RX  
TX  
CPU issues Read TL command  
DS1620 sends back stored value of TL for  
CPU to verify  
0014h  
TX  
RX  
CPU issues Reset to DS1620  
Toggle RST  
EEh  
TX  
TX  
RX  
RX  
CPU issues Start Convert T command  
CPU issues Reset to DS1620  
Drop RST  
READ DATA TRANSFER Figure 4  
9 of 12  
DS1620  
WRITE DATA TRANSFER Figure 5  
NOTE: tCL, tCH, tR, and tF apply to both read and write data transfer.  
ABSOLUTE MAXIMUM RATINGS*  
Voltage on Any Pin Relative to Ground  
Operating Temperature  
–0.5V to +6.0V  
–55°C to +125°C  
–55°C to +125°C  
260°C for 10 seconds  
Storage Temperature  
Soldering Temperature  
* This is a stress rating only and functional operation of the device at these or any other conditions above  
those indicated in the operation sections of this specification is not implied. Exposure to absolute  
maximum rating conditions for extended periods of time may affect reliability.  
RECOMMENDED DC OPERATING CONDITIONS  
PARAMETER SYMBOL  
MIN  
2.7  
TYP  
MAX  
5.5  
VCC + 0.3  
0.3 x VDD  
UNITS  
NOTES  
Supply  
Logic 1  
Logic 0  
VDD  
VIH  
VIL  
V
V
V
1,2  
1
1
0.7 x VDD  
-0.3  
10 of 12  
DS1620  
DC ELECTRICAL CHARACTERISTICS  
(-55°C to +125°C; VDD=2.7V to 5.5V)  
PARAMETER  
SYMBOL  
CONDITION  
0°C to +70°C  
MIN  
MAX UNITS NOTES  
Thermometer Error  
TERR  
±0.5  
±1.25  
±2.0  
2
°C  
3.0V ≤ VDD ≤ 5.5V  
0°C to +70°C  
2.7V ≤ VDD < 3.0V  
-55°C to +125°C  
Thermometer Resolution  
Logic 0 Output  
Logic 1 Output  
12  
0.4  
Bits  
V
V
MΩ  
MΩ  
mA  
µA  
µA  
VOL  
VOH  
RI  
4
5
2.4  
1
1
Input Resistance  
RST to GND  
DQ, CLK to VDD  
0°C to +70°C  
Active Supply Current  
Standby Supply Current  
Input Current on Each  
Pin  
ICC  
ISTBY  
1
1.5  
+10  
6
6
0°C to +70°C  
0.4 < VI/O < 0.9 x VDD  
-10  
Thermal Drift  
±0.2  
°C  
7
SINGLE CONVERT TIMING DIAGRAM (STAND-ALONE MODE)  
CONV  
tCNV  
AC ELECTRICAL CHARACTERISTICS  
(-55°C to +125°C; VDD=2.7V to 5.5V)  
PARAMETERS  
SYMBOL  
TTC  
MIN  
TYP  
MAX  
UNITS NOTES  
Temperature Conversion Time  
Data to CLK Setup  
CLK to Data Hold  
CLK to Data Delay  
CLK Low Time  
750  
ms  
tDC  
35  
40  
ns  
ns  
8
8
tCDH  
tCDD  
tCL  
150  
ns  
8, 9, 10  
285  
285  
DC  
ns  
ns  
MHz  
ns  
8
8
8
CLK High Time  
tCH  
CLK Frequency  
CLK Rise and Fall  
fCLK  
tR, tF  
tCC  
1.75  
500  
100  
40  
ns  
8
8
RST to CLK Setup  
CLK to RST Hold  
tCCH  
ns  
ns  
tCWH  
125  
8, 11  
RST Inactive Time  
CLK High to I/O High-Z  
tCDZ  
tRDZ  
50  
50  
ns  
ns  
8
8
RST Low to I/O High-Z  
Convert Pulse Width  
tCNV  
250 ns  
500 ms  
12  
11 of 12  
DS1620  
AC ELECTRICAL CHARACTERISTICS  
(-55°C to +125°C; VDD=2.7V to 5.5V)  
PARAMETER  
Input Capacitance  
I/O Capacitance  
SYMBOL  
MIN  
TYP  
5
MAX  
UNITS NOTES  
CI  
CI/O  
pF  
pF  
10  
EEPROM AC ELECTRICAL CHARACTERISTICS  
(-55°C to +125°C; VDD=2.7V to 5.5V)  
PARAMETER  
EEPROM Write Cycle Time  
EEPROM Writes  
CONDITIONS  
MIN  
TYP  
MAX  
UNITS  
Ms  
4
10  
50k  
10  
Writes  
Years  
-55°C to +55°C  
-55°C to +55°C  
EEPROM Data Retention  
NOTES:  
1. All voltages are referenced to ground.  
2. Valid for design revisions D1 and above. The supply range for Rev. C2 and below is 4.5V < 5.5V.  
3. Thermometer error reflects temperature accuracy as tested during calibration.  
4. Logic 0 voltages are specified at a sink current of 4mA  
5. Logic 1 voltages are specified at a source current of 1mA.  
6. ISTBY ICC specified with DQ, CLK/ CONV = VDD, and RST = GND.  
,
7. Drift data is based on a 1000hr stress test at +125°C with VDD = 5.5V  
8. Measured at VIH = 0.7 x VDD or VIL = 0.3 x VDD.  
9. Measured at VOH = 2.4V or VOL = 0.4V.  
10. Load capacitance = 50pF.  
11. tCWH must be 10ms minimum following any write command that involves the E2 memory.  
12. 250ns is the guaranteed minimum pulse width for a conversion to start; however, a smaller pulse  
width may start a conversion.  
Maxim Integrated cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim Integrated product. No circuit patent licenses  
are implied. Maxim Integrated reserves the right to change the circuitry and specifications without notice at any time. The parametric values (min and max limits) shown  
in the Electrical Characteristics table are guaranteed. Other parametric values quoted in this data sheet are provided for guidance.  
Maxim Integrated 160 Rio Robles, San Jose, CA 95134 USA 1-408-601-1000  
©
2015 Maxim Integrated Products, Inc.  
Maxim Integrated and the Maxim Integrated logo are trademarks of Maxim Integrated Products, Inc.  
12 of 12  

相关型号:

DS1621

Digital Thermometer and Thermostat
DALLAS

DS1621

Digital Thermometer and
MAXIM

DS1621+

Digital Thermometer and Thermostat
MAXIM

DS1621S

Digital Thermometer and Thermostat
MAXIM

DS1621S+

Digital Thermometer and Thermostat
MAXIM

DS1621S+T&R

Serial Switch/Digital Sensor, 9 Bit(s), 2Cel, Rectangular, 8 Pin, Surface Mount, 0.150 INCH, LEAD FREE, SOIC-8
MAXIM

DS1621S+T&R

Digital Thermometer and Thermostat
MAXIM

DS1621S/T&R

Digital Thermometer and Thermostat
MAXIM

DS1621V

Digital Thermometer and Thermostat
MAXIM

DS1621V+

Digital Thermometer and Thermostat
MAXIM

DS1621V+T&R

Digital Thermometer and Thermostat
MAXIM

DS1621V/T&R

Digital Thermometer and Thermostat
MAXIM