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ADUM1400CRWZ-RL 参数 Datasheet PDF下载

ADUM1400CRWZ-RL图片预览
型号: ADUM1400CRWZ-RL
PDF下载: 下载PDF文件 查看货源
内容描述: 四通道数字隔离器 [Quad-Channel Digital Isolators]
分类和应用:
文件页数/大小: 32 页 / 490 K
品牌: ADI [ ADI ]
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ADuM1400/ADuM1401/ADuM1402  
Data Sheet  
For example, at a magnetic field frequency of 1 MHz, the  
maximum allowable magnetic field of 0.2 kgauss induces a  
voltage of 0.25 V at the receiving coil. This is about 50% of the  
sensing threshold and does not cause a faulty output transition.  
Similarly, if such an event occurs during a transmitted pulse  
(and has the worst-case polarity), it reduces the received pulse  
from >1.0 V to 0.75 V—still well above the 0.5 V sensing  
threshold of the decoder.  
POWER CONSUMPTION  
The supply current at a given channel of the ADuM140x isolator  
is a function of the supply voltage, the data rate of the channel,  
and the output load of the channel.  
For each input channel, the supply current is given by  
I
I
DDI = IDDI (Q)  
f ≤ 0.5 fr  
f > 0.5 fr  
DDI = IDDI (D) × (2f fr) + IDDI (Q)  
The preceding magnetic flux density values correspond to  
specific current magnitudes at given distances from the  
ADuM140x transformers. Figure 20 expresses these allowable  
current magnitudes as a function of frequency for selected  
distances. As shown, the ADuM140x is extremely immune  
and can be affected only by extremely large currents operated  
at high frequency very close to the component. For the 1 MHz  
example noted, one would have to place a 0.5 kA current 5 mm  
away from the ADuM140x to affect the operation of the  
component.  
For each output channel, the supply current is given by  
I
I
DDO = IDDO (Q)  
f ≤ 0.5 fr  
DDO = (IDDO (D) + (0.5 × 10−3) × CL × VDDO) × (2f − fr) + IDDO (Q)  
f > 0.5 fr  
where:  
DDI (D), IDDO (D) are the input and output dynamic supply currents  
I
per channel (mA/Mbps).  
CL is the output load capacitance (pF).  
V
DDO is the output supply voltage (V).  
1000  
f is the input logic signal frequency (MHz); it is half of the input  
data rate expressed in units of Mbps.  
fr is the input stage refresh rate (Mbps).  
DISTANCE = 1m  
100  
I
DDI (Q), IDDO (Q) are the specified input and output quiescent  
supply currents (mA).  
10  
To calculate the total VDD1 and VDD2 supply current, the supply  
currents for each input and output channel corresponding to  
DISTANCE = 100mm  
1
VDD1 and VDD2 are calculated and totaled. Figure 8 and Figure 9  
DISTANCE = 5mm  
provide per-channel supply currents as a function of data rate  
for an unloaded output condition. Figure 10 provides per-  
channel supply current as a function of data rate for a 15 pF  
output condition. Figure 11 through Figure 15 provide total  
0.1  
0.01  
1k  
10k  
100k  
1M  
10M  
100M  
V
DD1 and VDD2 supply current as a function of data rate for  
ADuM1400/ADuM1401/ADuM1402 channel configurations.  
MAGNETIC FIELD FREQUENCY (Hz)  
Figure 20. Maximum Allowable Current  
for Various Current-to-ADuM140x Spacings  
Note that at combinations of strong magnetic field and high  
frequency, any loops formed by printed circuit board traces  
could induce error voltages sufficiently large enough to trigger  
the thresholds of succeeding circuitry. Care should be taken in  
the layout of such traces to avoid this possibility.  
Rev. H | Page 28 of 32