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Evaluation Board User Guide 

UG-197 

 

Rev. 0 | Page 7 of 16 

DOUBLE SUPPLY

The second power supply implemented with the ADuM3471 on 
this evaluation board is a double supply. This circuit, which is 
shown in Figure 10, is located on the top half of the board. The 
ADuM347x data sheet also discusses the ADuM347x in this 
configuration. Figure 17 shows the schematic. 

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010

 

Figure 10. Double Supply  

In its default configuration, the double supply provides a 
regulated 15 V output and an unregulated 7.5 V output, which 
are isolated from the 5 V primary input supply. The double 
supply is capable of delivering up to 140 mA to external loads. 
The isolated data channels on Side 2 load the secondary isolated 
supply and reduce the total available current. See the ADuM347x 
data sheet electrical characteristics for specifications on output 
supply current to determine how much current the Side 2 I/O 
lines require at a given data rate. It can be reconfigured as 12 V 
(regulated) and 6 V (unregulated) secondary isolated supplies 
or as positive and negative supplies. See the Other Secondary 
Isolated Supply Configurations s
ection for more details. 

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011

SIDE 1 TERMINAL

SIDE 2 TERMINAL

 

Figure 11. Double Supply Terminals 

TERMINALS 

The double supply has terminal blocks on Side 1 (the primary/ 
power supply input side) and Side 2 (the secondary/power 
supply output side). A 4.3 mm isolation barrier separates Side 1 
and Side 2. Figure 11 shows these terminals. Although the board 
is populated with the ADuM3471, it is designed to accommo-
date the entire ADuM347x family. Therefore, the silkscreen 
shows I/Ox to denote the four 

i

Coupler data channels. J4 is a 0.1 

inch (2.54 mm) 6x1 header, and J6 is a 0.1 inch 7x1 header. J5 
has pads for an optional SMA connector (not populated) 
terminated into 50 Ω. Table 3 summarizes the functions of the 
terminal connections. They are described in detail in the Input 

Power Connections, Output Power Connections, and Data I/O 
Connection se
ctions. 

Input Power Connections 

C5 V to Pin 1 of J4, l5V IN. Connect the 
supply negative to Pin 6, labeled GND (GND3 in the schematic). 
These are the only off-board connections required for the 
double supply to function. 
+5V IN supplies V

DD1

 and V

DDA

 to U2, the double supply 

ADuM3471. V

DD1

 is the ADuM3471 transformer driver supply, 

and V

DDA

 is its primary supply voltage (see the ADuM347x data 

sheet for additional information about these pin functions). 
V

DD1

/V

DDA

 is bypassed by a 47 µF ceramic capacitor, labeled 

C13, and a 0.1 µF local bypass capacitor located close to the 
ADuM3471 (C18). R17, R18, C30, and C31 are provided for an 
optional and unpopulated snubber, which can be used to reduce 
radiated emissions. 

Output Power Connections 

An output load can be connected to Pin 1 of J6, labeled VISO2 
in the schematic and +15/12V in the silkscreen, which is the 
isolated, regulated 15 V output supply. Connect the return of 
the load to Pin 7 of J6. It is labeled GND ISO on the silkscreen 
and GND4 in the schematic. 
Side 2 is powered by the secondary isolated 15 V supply. The 
ADuM3471 internal low-dropout regulator converts this 
voltage to 5 V. The regulated 5 V supply powers the ADuM3471 
secondary side. Therefore, the ADuM3471 V

REG 

pin is 15 V, and 

the V

DD2

 pin is 5 V. The 15 V supply connects to Pin 1 of J6. The 

7.5 V supply connects to Pin 2 of J6, which is l7.5V/6V 
on the silkscreen and VISO1 on the schematic. The Side 2 
ground reference is tied to Pin 7 of J6. Note that the single and 
double supplies do not share grounds, though they have the 
same names on the silkscreen. The two supplies are isolated 
from each other with an over 15 mm gap. See the ADuM347x 
data sheet for an explanation of the double supply theory of 
operation. Figure 12 through Figure 15 shows efficiency curves 
for the double supply with the +15/+12 V isolated output supply 
connected to V

REG

Powering V

REG

 from the Unregulated 7.5 V  

V

REG

 can be powered by the unregulated 7.5 V supply, which 

results in higher efficiency. However, when the 15 V supply is 
unloaded, the unregulated 7.5 V supply is approximately 3 V, 
which is not high enough to power the ADuM3471 secondary 
side. This causes the double supply to run open loop, leaving 
the 15 V supply unregulated. Because the secondary side of the 
ADuM3471 is not sufficiently powered, its data channels are 
inoperable. Using 15 V for V

REG

 ensures that the secondary side 

of the ADuM3471 powers up under light load conditions. Move 
the 0 Ω 0805 from R19 to R20 to power Side 2 from the 7.5 V 
supply. 

Summary of Contents for UG-197

Page 1: ...igurable to 5 V in to 12 V out regulated and 6 V out unregulated 4 isolated 25 Mbps data channels per ADuM347x circuit Footprints for Coilcraft and Halo transformer options Multiple switching frequenc...

Page 2: ...minals 3 Transformer Selection 4 Switching Frequency Options 4 Other Input and Isolated Output Supply Options 4 Schematic 6 Double Supply 7 Terminals 7 Transformer Selection 8 Switching Frequency Opti...

Page 3: ...local bypass capacitor located close to the ADuM3471 C2 R15 R16 C28 and C29 are provided for an optional and unpopulated snubber which can be used to reduce radiated emissions Power is transferred to...

Page 4: ...resistance and the converter switching frequency The EVAL ADuM347x can be configured with 0 0805s to four different preset switching frequencies Short circuiting R30 sets R1 300 k and R2 150 k in par...

Page 5: ...17 006 Figure 6 5 V In to 5 V Out Efficiency with the Coilcraft Transformer at 500 kHz over Temperature 0 10 20 30 40 50 60 70 80 0 50 100 150 200 250 300 350 400 500 450 EFFICIENCY LOAD CURRENT mA 1M...

Page 6: ...UG 197 Evaluation Board User Guide Rev 0 Page 6 of 16 SCHEMATIC 09417 009 Figure 9 Single Supply Schematic...

Page 7: ...uired for the double supply to function 5V IN supplies VDD1 and VDDA to U2 the double supply ADuM3471 VDD1 is the ADuM3471 transformer driver supply and VDDA is its primary supply voltage see the ADuM...

Page 8: ...upply 2 I O1 VIA Logic Input A 3 I O2 VIB Logic Input B 4 I O3 VIC Logic Input C 5 I O4 VOD Logic Output D 6 GND Side 1 ground reference J5 N A N A SMA connector to J4 I O1 VIA J6 1 15V 12V Side 2 15...

Page 9: ...5 C 09417 013 Figure 13 5 V In to 15 V Out Efficiency with the Coilcraft Transformer at 500 kHz and Various Temperatures 0 10 20 30 40 50 70 90 110 140 130 60 80 100 120 0 10 20 30 40 50 60 70 80 EFFI...

Page 10: ...turns ratio CT1 CT5 transformer see the ADuM347x data sheet for more information on these transformers Other changes begin with removing the 0 resistors from R24 and R22 to R23 and R21 Short circuitin...

Page 11: ...uide UG 197 Rev 0 Page 11 of 16 EVALUATION BOARD LAYOUT 09417 018 Figure 18 Top Layer Power Fill 09417 019 Figure 19 Layer 2 Ground Plane 09417 020 Figure 20 Layer 3 Power Plane 09417 021 Figure 21 Bo...

Page 12: ...4 C19 C20 C26 C27 CAP CER X7R SMD 1210 22 F 20 16 V Murata GRM32ER71C226KE18L 4 C28 to C31 CAP CER SMD 0603 not populated N A 3 L1 to L3 Inductor SMD 1212 47 H 20 1 25 Murata LQH3NPN470MM0 4 R7 R8 R28...

Page 13: ...Evaluation Board User Guide UG 197 Rev 0 Page 13 of 16 NOTES...

Page 14: ...UG 197 Evaluation Board User Guide Rev 0 Page 14 of 16 NOTES...

Page 15: ...Evaluation Board User Guide UG 197 Rev 0 Page 15 of 16 NOTES...

Page 16: ...ny other party for any reason Upon discontinuation of use of the Evaluation Board or termination of this Agreement Customer agrees to promptly return the Evaluation Board to ADI ADDITIONAL RESTRICTION...

Page 17: ...Mouser Electronics Authorized Distributor Click to View Pricing Inventory Delivery Lifecycle Information Analog Devices Inc EVAL ADUM3471EBZ...

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