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ADM1030ARQ-REEL PDF预览

ADM1030ARQ-REEL

更新时间: 2024-02-26 17:36:42
品牌 Logo 应用领域
罗彻斯特 - ROCHESTER 输出元件传感器换能器
页数 文件大小 规格书
29页 1204K
描述
DIGITAL TEMP SENSOR-SERIAL, 8BIT(s), 1Cel, RECTANGULAR, SURFACE MOUNT, MO-137AB, QSOP-16

ADM1030ARQ-REEL 技术参数

是否无铅:含铅是否Rohs认证:不符合
生命周期:Active包装说明:MO-137AB, QSOP-16
Reach Compliance Code:unknown风险等级:5.29
Is Samacsys:N最大精度(摄氏度):1 Cel
主体宽度:3.91 mm主体高度:1.44 mm
主体长度或直径:4.9 mm外壳:PLASTIC
JESD-609代码:e0安装特点:SURFACE MOUNT
位数:8最大工作电流:3 mA
最高工作温度:100 °C最低工作温度:
输出接口类型:2-WIRE INTERFACE封装形状/形式:RECTANGULAR
传感器/换能器类型:TEMPERATURE SENSOR,SWITCH/DIGITAL OUTPUT,SERIAL最大供电电压:5.5 V
最小供电电压:3 V表面贴装:YES
端子面层:TIN LEAD端接类型:SOLDER
Base Number Matches:1

ADM1030ARQ-REEL 数据手册

 浏览型号ADM1030ARQ-REEL的Datasheet PDF文件第7页浏览型号ADM1030ARQ-REEL的Datasheet PDF文件第8页浏览型号ADM1030ARQ-REEL的Datasheet PDF文件第9页浏览型号ADM1030ARQ-REEL的Datasheet PDF文件第11页浏览型号ADM1030ARQ-REEL的Datasheet PDF文件第12页浏览型号ADM1030ARQ-REEL的Datasheet PDF文件第13页 
ADM1030  
ALERT RESPONSE ADDRESS  
Figure 3 shows the input signal conditioning used to measure  
the output of an external temperature sensor. This figure shows  
the external sensor as a substrate transistor, provided for tempera-  
ture monitoring on some microprocessors, but it could equally  
well be a discrete transistor.  
Alert Response Address (ARA) is a feature of SMBus devices  
that allows an interrupting device to identify itself to the host  
when multiple devices exist on the same bus.  
The INT output can be used as an interrupt output or can be used  
as an SMBALERT. One or more INT outputs can be connected  
to a common SMBALERT line connected to the master. If a  
device’s INT line goes low, the following procedure occurs:  
V
DD  
I
N 
؋
 I  
I
BIAS  
1. SMBALERT pulled low.  
2. Master initiates a read operation and sends the Alert  
Response Address (ARA = 0001 100). This is a general call  
address that must not be used as a specific device address.  
V
V
D+  
D–  
OUT+  
TO  
ADC  
REMOTE  
SENSING  
TRANSISTOR  
BIAS  
DIODE  
3. The device whose INT output is low responds to the Alert  
Response Address, and the master reads its device address.  
The address of the device is now known and can be interro-  
gated in the usual way.  
OUT–  
LOW-PASS  
FILTER  
C
f
= 65kHz  
4. If more than one device’s INT output is low, the one with  
the lowest device address will have priority, in accordance  
with normal SMBus arbitration.  
Figure 3. Signal Conditioning  
If a discrete transistor is used, the collector will not be grounded,  
and should be linked to the base. If a PNP transistor is used, the  
base is connected to the D– input and the emitter to the D+  
input. If an NPN transistor is used, the emitter is connected to  
the D– input and the base to the D+ input.  
5. Once the ADM1030 has responded to the Alert Response  
Address, it will reset its INT output; however, if the error  
condition that caused the interrupt persists, INT will be  
reasserted on the next monitoring cycle.  
One LSB of the ADC corresponds to 0.125C, so the ADM1030  
can theoretically measure temperatures from –127C to +127.75C,  
although –127C is outside the operating range for the device.  
The extended temperature resolution data format is shown in  
Tables III and IV.  
TEMPERATURE MEASUREMENT SYSTEM  
Internal Temperature Measurement  
The ADM1030 contains an on-chip bandgap temperature sen-  
sor. The on-chip ADC performs conversions on the output of  
this sensor and outputs the temperature data in 10-bit two’s  
complement format. The resolution of the local temperature  
sensor is 0.25C. The format of the temperature data is shown  
in Table II.  
Table II. Temperature Data Format (Local Temperature and  
Remote Temperature High Bytes)  
Temperature (؇C)  
Digital Output  
External Temperature Measurement  
–128C  
–125C  
–100C  
–75C  
–50C  
–25C  
–1C  
1000 0000  
1000 0011  
1001 1100  
1011 0101  
1100 1110  
1110 0111  
1111 1111  
0000 0000  
0000 0001  
0000 1010  
0001 1001  
0011 0010  
0100 1011  
0110 0100  
0111 1101  
0111 1111  
The ADM1030 can measure the temperature of an external  
diode sensor or diode-connected transistor, connected to Pins  
9 and 10.  
These pins are a dedicated temperature input channel. The  
function of Pin 7 is as a THERM input/output and is used to  
flag overtemperature conditions.  
The forward voltage of a diode or diode-connected transistor,  
operated at a constant current, exhibits a negative temperature  
coefficient of about –2 mV/C. Unfortunately, the absolute  
value of VBE, varies from device to device, and individual  
calibration is required to null this out, so the technique is  
unsuitable for mass production.  
0C  
+1C  
+10C  
+25C  
+50C  
+75C  
+100C  
+125C  
+127C  
The technique used in the ADM1030 is to measure the change  
in VBE when the device is operated at two different currents.  
This is given by:  
DVBE = KT/q ¥ ln (N)  
where:  
K is Boltzmann’s constant.  
q is charge on the carrier.  
T is absolute temperature in Kelvins.  
N is ratio of the two currents.  
REV. A  
–9–  

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