IL41050TT
Basic Function Isolated CAN Transceiver
Functional Diagram
Features
•
5000 V
RMS
isolation (“V”-Version)
•
180 ns typical loop delay
•
70 mA maximum bus-side dynamic supply current
•
12 mA maximum quiescent recessive supply current
•
1 Mbps
•
Fully compliant with the ISO 11898-2 CAN standard
•
−55°C
to +100°C operating temperature
•
3 V to 5.5 V power supplies
•
>110-node fan-out
•
600 V
RMS
working voltage per VDE V 0884-10
•
44000 year barrier life
•
±500 V CDM ESD
•
50 kV/μs typ.; 30 kV/μs min. common mode transient immunity
•
No carrier or clock for low emissions and EMI susceptibility
•
Transmit data (TxD) dominant time-out function
•
Edge triggered, non-volatile input improves noise performance
•
Thermal shutdown protection
•
Bus power short-circuit protection
•
No “S” or Vref functions
•
0.3" True 8™ mm 16-pin packages
•
UL 1577 recognized; VDE V 0884-1- certified
•
Industry-standard pinout
TxD
RxD
CANH
CANL
IL41050TT
V
DD2
(V)
4.75 to 5.25
4.75 to 5.25
4.75 to 5.25
<2V (no pwr)
2<V
DD2
<4.75
TxD
(1)
↓
X
↑
X
>2V
S
Low
(2)
X
X
X
CANH
High
V
DD2
/2
CANL
Low
V
DD2
/2
V
DD2
/2
Bus State
Dominant
Recessive
Recessive
RxD
Low
High
High
High
High
High V
DD2
/2
0<V<2.5 0<V<2.5 Recessive
0<V<2.5 0<V<2.5 Recessive
Table 1.
Function table.
Notes:
1. TxD input is edge triggered:
↑
= Logic Lo to Hi,
↓
= Hi to Lo
2. Valid for logic state as described or open circuit
X = don’t care
Applications
•
•
•
•
Factory automation
Battery management systems
Noise-critical CAN
DeviceNet
Description
The IL41050TT is a galvanically isolated, CAN (Controller Area
Network) transceiver containing basic functions but without “S” or
Vref pins. It is a direct replacement for the Texas Instruments
ISO1050DW with much better reliability and longer barrier life,
less EMI emissions, and true 8 mm external creepage.
The IL41050 family provides isolated differential transmit
capability to the bus and isolated differential receive capability to
the CAN controller via NVE’s patented* IsoLoop spintronic Giant
Magnetoresistance (GMR) technology.
A unique ceramic/polymer composite barrier provides excellent
isolation and virtually unlimited barrier life.
Designed for harsh CAN and DeviceNet environments, IL41050
transceivers have transmit data dominant time-out, bus pin transient
protection, a rugged Charged Device Model ESD rating, thermal
shutdown protection, and short-circuit protection. Unique edge-
triggered inputs improve noise performance.
IsoLoop
®
is a registered trademark of NVE Corporation.
*U.S. Patent number 5,831,426; 6,300,617 and others.
REV. A
NVE Corporation
11409 Valley View Road, Eden Prairie, MN 55344-3617
Phone: (952) 829-9217
Fax: (952) 829-9189
www.IsoLoop.com
©NVE Corporation
IL41050TT
Absolute Maximum Ratings
(1)(2)
Parameter
Storage temperature
Junction temperature
Ambient operating temperature
DC voltage at CANH and CANL pins
Supply voltage
Digital input voltage
Digital output voltage
DC voltage at V
REF
Transient voltage at CANH or CANL
Electrostatic discharge at all pins
Electrostatic discharge at all pins
Symbol
T
S
T
J
T
A
V
CANH
, V
CANL
V
DD
1
, V
DD
2
V
TxD
, V
S
V
RxD
V
REF
V
trt(CAN)
V
esd
V
esd
Min.
−55
−55
−55
−45
−0.3
−0.3
−0.3
−0.3
−150
−4000
−500
Typ.
Max.
150
150
100
45
7
V
DD
+ 0.3
V
DD
+ 0.3
V
DD
+ 0.3
150
4000
500
Units
°C
°C
°C
V
V
V
V
V
V
V
V
Test Conditions
0 V< V
DD2
< 5.25 V;
indefinite duration
Human body model
Machine model
Recommended Operating Conditions
Parameter
Supply voltage
Junction temperature
Input voltage at any bus terminal
(separately or common mode)
High-level digital input voltage
(3)(4)
Symbol
V
DD
1
V
DD
2
T
J
V
CANH
V
CANL
V
IH
V
IL
I
OH
T
A
t
IR
, t
IF
Min.
3.0
4.75
−55
−12
2.0
2.4
2.0
0
−8
−55
Typ.
Max.
5.5
5.25
140
12
V
DD
1
V
DD
1
V
DD
2
0.8
8
100
1
Units
V
°C
V
V
V
mA
°C
μs
Test Conditions
Low-level digital input voltage
(3)(4)
Digital output current (RxD)
Ambient operating temperature
Digital input signal rise and fall times
V
DD
1
= 3.3 V
V
DD
1
= 5.0 V
V
DD
2
= 5.0 V
V
DD1
= 3.3V to 5V
Insulation Specifications
Parameter
Creepage distance (external)
Total barrier thickness (internal)
Barrier resistance
Barrier capacitance
Leakage current
Comparative Tracking Index
High voltage endurance
AC
(maximum barrier voltage
for indefinite life)
DC
Barrier life
Symbol
R
IO
C
IO
CTI
V
IO
≥175
1000
1500
44000
Min.
8.03
0.012
Typ.
8.3
0.013
>10
14
7
0.2
Max.
Units
mm
mm
Ω
pF
μA
RMS
V
V
RMS
V
DC
Years
Test Conditions
Per IEC 60601
500 V
f = 1 MHz
240 V
RMS
, 60 Hz
Per IEC 60112
At maximum
operating temperature
100°C, 1000 V
RMS
, 60%
CL activation energy
Thermal Characteristics
Parameter
Junction–Ambient
Thermal Resistance
Junction–Case (Top)
Thermal Resistance
Power Dissipation
QSOP
0.15" SOIC
0.3" SOIC
QSOP
0.15" SOIC
0.3" SOIC
QSOP
0.15" SOIC
0.3" SOIC
Symbol
θ
JA
Ψ
JT
P
D
Min.
Typ.
60
60
60
10
10
20
Max.
Units
°C/W
°C/W
675
700
800
mW
Test Conditions
Soldered to double-
sided board;
free air
2
NVE Corporation
11409 Valley View Road, Eden Prairie, MN 55344-3617
Phone: (952) 829-9217
Fax: (952) 829-9189
www.IsoLoop.com
©NVE Corporation
IL41050TT
Safety and Approvals
VDE V 0884-10
(File Number 5016933-4880-0001)
2.5 kV-rated version (IL41050TTE)
•
Working Voltage (V
IORM
) 600 V
RMS
(848 V
PK
); basic insulation; pollution degree 2
•
Isolation voltage (V
ISO
) 2500 V
RMS
•
Surge rating 4 kV
5 kV-rated version (IL41050TTVE)
•
Working Voltage (V
IORM
) 600 V
RMS
(848 V
PK
); basic insulation; pollution degree 2
•
Isolation voltage (V
ISO
) 5000 V
RMS
•
Surge rating 4 kV
Safety-Limiting Values
Safety rating ambient temperature
Safety rating power (180°C)
Supply current safety rating (total of supplies)
Symbol
T
S
P
S
I
S
Value
180
270
54
Units
°C
mW
mA
IEC 61010-1
(Edition 2; TUV Certificate Numbers N1502812; N1502812-101)
Reinforced Insulation; Pollution Degree II; Material Group III
Working Voltage 600 V
RMS
UL 1577
(Component Recognition Program File Number E207481)
2.5 kV-rated version (IL41050TTE)
Each part tested at 3 kV
RMS
(4.24 kV
PK
) for 1 second; each lot sample tested at 2.5 kV
RMS
(3.54 kV
PK
) for 1 minute
5 kV-rated version (IL41050TTVE)
Each part tested at 6 kV
RMS
(8.48 kV
PK
) for 1 second; each lot sample tested at 5 kV
RMS
(7.07 kV
PK
) for 1 minute
Soldering Profile
Per JEDEC J-STD-020C; MSL=1
Notes:
1. Absolute Maximum specifications mean the device will not be damaged if operated under these conditions. It does not guarantee performance.
2. All voltages are with respect to network ground except differential I/O bus voltages.
3. The TxD input is edge sensitive. Voltage magnitude of the input signal is specified, but edge rate specifications must also be met.
4. The maximum time allowed for a logic transition at the TxD input is 1
μs.
3
NVE Corporation
11409 Valley View Road, Eden Prairie, MN 55344-3617
Phone: (952) 829-9217
Fax: (952) 829-9189
www.IsoLoop.com
©NVE Corporation
IL41050TT
IL41050TT Pin Connections
1
2
3
4
5
6
7,8
9,10
11
12
13
14
15
16
V
DD1
GND
1
RxD
NC
NC
TxD
GND
1
GND
2
NC
CANL
CANH
NC
GND
2
V
DD2
V
DD1
power supply input
V
DD1
power supply ground return
(pin 2 is internally connected to pin 8)
Receive Data output
No internal connection
No internal connection
Transmit Data input
V
DD1
power supply ground return
(pin 8 is internally connected to pin 2)
V
DD2
power supply ground return
(pin 9 is internally connected to pin 15)
No internal connection
Low level CANbus line
High level CANbus line
No internal connection
V
DD2
power supply ground return
(pin 15 is internally connected to pin 9)
V
DD2
isolation power supply input
V
DD1
GND
1
RxD
NC
NC
TxD
GND
1
GND
1
1
2
3
4
5
6
7
8
16
15
14
13
12
11
10
9
V
DD2
GND
2
NC
CANH
CANL
NC
GND
2
GND
2
4
NVE Corporation
11409 Valley View Road, Eden Prairie, MN 55344-3617
Phone: (952) 829-9217
Fax: (952) 829-9189
www.IsoLoop.com
©NVE Corporation
IL41050TT
Operating Specifications
Electrical Specifications
(T
min
to T
max
and V
DD1
, V
DD2
= 4.75 V to 5.25 V unless otherwise stated)
Parameter
Symbol
Min.
Typ.
Max.
Units
Test Conditions
Power Supply Current
dr = 0 bps; V
DD
1
= 5 V
1
1.75
3.0
Quiescent supply current (recessive)
IQ
VDD1
mA
dr = 0 bps;
0.7
1.4
2.0
V
DD
1
= 3.3 V
dr = 1 Mbps, R
L
= 60Ω;
1.2
2.0
3.2
V
DD
1
= 5 V
Dynamic supply current (dominant)
I
VDD1
mA
dr = 1 Mbps, R
L
= 60Ω;
0.9
1.6
2.2
V
DD
1
= 3.3 V
0 bps
Quiescent supply current (recessive)
IQ
VDD2
3.5
7
12
mA
Dynamic supply current (dominant)
I
VDD2
26
52
70
1 Mbps, R
L
= 60Ω
Transmitter Data input (TxD)
(1)
High level input voltage
↑
V
IH
2.4
5.25
V
V
DD
1
= 5 V; recessive
High level input voltage
↑
V
IH
2.0
3.6
V
V
DD
1
= 3.3 V; recessive
Low level input voltage
↓
V
IL
−0.3
0.8
V
Output dominant
TxD input rise and fall time
(2)
t
r
1
μs
10% to 90%
tr
High level input current
I
IH
−10
10
μA
V
TxD
= V
DD
1
Low level input current
I
IL
10
10
μA
V
TxD
= 0 V
Receiver Data output (RxD)
High level output current
I
OH
−2
−8.5
−20
mA
V
RxD
= 0.8 V
DD1
Low level output current
I
OL
2
8.5
20
mA
V
RxD
= 0.45 V
Failsafe supply voltage
(4)
V
DD2
3.6
3.9
V
Bus lines (CANH and CANL)
Recessive voltage at CANH pin
V
O(reces)
CANH
2.0
2.5
3.0
V
V
TxD
= V
DD1
, no load
Recessive voltage at CANL pin
V
O(reces)
CANL
2.0
2.5
3.0
V
V
TxD
= V
DD1
, no load
−27V
< V
CANH
< +32V;
Recessive current at CANH pin
I
O(reces)
CANH
−2.5
+2.5
mA
0V < V
DD2
<5.25V
−27V
< V
CANL
< +32V;
Recessive current at CANL pin
I
O(reces)
CANL
−2.5
+2.5
mA
0 V <V
DD2
< 5.25V
Dominant voltage at CANH pin
V
O(dom)
CANH
3.0
3.6
4.25
V
V
TxD
= 0 V
Dominant voltage at CANL pin
V
O(dom)
CANL
0.5
1.4
1.75
V
V
TxD
= 0 V
V
TxD
= 0 V; dominant
1.5
2.25
3.0
V
Differential bus input voltage
42.5
Ω
< R
L
< 60
Ω
V
i(dif)(bus)
(V
CANH
−
V
CANL
)
V
TxD
= V
DD1
;
−120
0
+50
mV
recessive; no load
Short-circuit output current at CANH
I
O(sc)
CANH
−45
−70
−95
mA
V
CANH
= 0 V, V
TxD
= 0
Short-circuit output current at CANL
I
O(sc)
CANL
45
70
120
mA
V
CANL
= 36 V, V
TxD
= 0
−5
V <V
CANL
< +10 V;
Differential receiver threshold voltage
V
i(dif)(th)
0.5
0.7
0.9
V
−5
V <V
CANH
< +10 V
Differential receiver input voltage
−5
V <V
CANL
< +10 V;
50
70
100
mV
V
i(dif)(hys)
hysteresis
−5
V <V
CANH
< +10 V
Common Mode input resistance at
R
i(CM)(CANH)
15
25
37
kΩ
CANH
Common Mode input resistance at
R
i(CM)(CANL)
15
25
37
kΩ
CANL
Matching between Common Mode
−3
0
+3
%
V
CANL
= V
CANH
R
i(CM)(m)
input resistance at CANH, CANL
Differential input resistance
R
i(diff)
25
50
75
kΩ
Input capacitance, CANH
C
i(CANH)
7.5
20
pF
V
TxD
= V
DD1
Input capacitance, CANL
C
i(CANL)
7.5
20
pF
V
TxD
= V
DD1
Differential input capacitance
C
i(dif)
3.75
10
pF
V
TxD
= V
DD1
Input leakage current at CANH
I
LI(CANH)
100
170
250
μA
V
CANH
= 5 V, V
DD2
= 0
Input leakage current at CANL
I
LI(CANL)
100
170
250
μA
V
CANL
= 5 V, V
DD2
= 0
Thermal Shutdown
Shutdown junction temperature
T
j(SD)
155
165
180
°C
5
NVE Corporation
11409 Valley View Road, Eden Prairie, MN 55344-3617
Phone: (952) 829-9217
Fax: (952) 829-9189
www.IsoLoop.com
©NVE Corporation