ADA4571-2WHRZ-RL [ADI]

Integrated AMR Angle Sensor and Signal Conditioner;
ADA4571-2WHRZ-RL
型号: ADA4571-2WHRZ-RL
厂家: ADI    ADI
描述:

Integrated AMR Angle Sensor and Signal Conditioner

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Integrated AMR Angle Sensor and  
Signal Conditioner  
Data Sheet  
ADA4571-2  
FEATURES  
FUNCTIONAL BLOCK DIAGRAM  
GND1  
GND1  
VDD1  
High precision, 2-channel, isolated AMR angle sensor for  
redundant systems  
Angular range of 0° to 180°  
VTEMP1  
GC1  
TEMPERATURE SENSOR  
BRIDGE DRIVER  
ADA4571-2  
Typical angular error of 0.1°  
Analog sine and cosine outputs per channel  
Ratiometric output voltages  
Low thermal and lifetime drift  
+
Successive approximation register (SAR) analog-to-digital  
converter (ADC) or Σ-Δ ADC drive capable  
Magnetoresistive (MR) bridge temperature compensation mode  
Temperature range: −40°C to +150°C  
Supply voltage (VDD) from 3 V to 5.5 V  
Minimum phase delay  
EMI  
FILTER  
VSIN1  
DRIVER  
G = 40  
AMR BRIDGE  
SENSORS  
FAULT DETECTION  
BIAS  
OSCILLATOR  
Available in a 16-lead SOIC package  
Qualified for automotive applications  
+
EMI  
FILTER  
DRIVER  
VCOS1  
PD1  
G = 40  
APPLICATIONS  
Permanent magnet synchronous motor (PMSM) control and  
positioning  
Contactless angular measurement and detection  
Magnetic angular position sensing  
VTEMP2  
GC2  
TEMPERATURE SENSOR  
BRIDGE DRIVER  
+
EMI  
FILTER  
VSIN2  
DRIVER  
G = 40  
GENERAL DESCRIPTION  
AMR BRIDGE  
SENSORS  
BIAS  
OSCILLATOR  
FAULT DETECTION  
The ADA4571-2 is a 2-channel anisotropic magneto resistive  
(AMR) sensor with integrated signal conditioning amplifiers  
and ADC drivers. The device produces analog outputs that  
indicate the angular position of the surrounding magnetic field.  
+
EMI  
FILTER  
DRIVER  
VCOS2  
PD2  
G = 40  
Each channel consists of two die within one package: an  
AMR sensor and a variable gain instrumentation amplifier. The  
ADA4571-2 delivers clean and amplified cosine and sine output  
signals per channel related to the angle of a rotating magnetic  
field. The output voltage range is ratiometric to the supply voltage.  
GND2  
GND2  
VDD2  
Figure 1.  
Each sensing channel contains two separated wheatstone  
bridges at a relative angle of 45° to one another. A rotating  
magnetic field parallel to the plane of the IC package delivers  
two sinusoidal output signals, with the double frequency of the  
angle, α, between the sensor and the magnetic field direction.  
Within a homogeneous field parallel to the plane of the IC package,  
the output signals are independent of airgap between the sensor  
and the magnet.  
PRODUCT HIGHLIGHTS  
1. Contactless angular measurement.  
2. Measures magnetic field direction rather than field intensity.  
3. Minimum sensitivity to air gap variations.  
4. Large working distance.  
5. Excellent accuracy, even for weak saturation fields.  
6. Minimal thermal and lifetime drift.  
7. Negligible hysteresis.  
The ADA4571-2 is available in a 16-lead SOIC package.  
8. Single-chip solution.  
Rev. 0  
Document Feedback  
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responsibility is assumed by Analog Devices for its use, nor for any infringements of patents or other  
rights of third parties that may result from its use. Specifications subject to change without notice. No  
license is granted by implication or otherwise under any patent or patent rights of Analog Devices.  
Trademarks and registeredtrademarks arethe property of their respective owners.  
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.  
Tel: 781.329.4700  
Technical Support  
©2016 Analog Devices, Inc. All rights reserved.  
www.analog.com  
 
 
 
 
 
ADA4571-2  
Data Sheet  
TABLE OF CONTENTS  
Features .............................................................................................. 1  
Pin Configuration and Function Descriptions..............................6  
Typical Performance Characteristics ..............................................7  
Theory of Operation .........................................................................9  
Applications Information.............................................................. 11  
Angle Calculation....................................................................... 11  
Connection to ECU ................................................................... 11  
Diagnostics.................................................................................. 12  
Outline Dimensions....................................................................... 13  
Ordering Guide .......................................................................... 13  
Automotive Products................................................................. 13  
Applications....................................................................................... 1  
General Description......................................................................... 1  
Functional Block Diagram .............................................................. 1  
Product Highlights ........................................................................... 1  
Revision History ............................................................................... 2  
Specifications..................................................................................... 3  
Magnetic Characteristics............................................................. 3  
Electrical Characteristics............................................................. 3  
Absolute Maximum Ratings............................................................ 5  
Thermal Resistance ...................................................................... 5  
ESD Caution.................................................................................. 5  
REVISION HISTORY  
11/2016—Revision 0: Initial Version  
Rev. 0 | Page 2 of 13  
 
Data Sheet  
ADA4571-2  
SPECIFICATIONS  
MAGNETIC CHARACTERISTICS  
Table 1.  
Parameter  
Symbol Min Typ Max  
HEXT 25  
Unit  
Test Conditions/Comments  
MINIMUM MAGNETIC  
FIELD STRENGTH  
kA/m The stimulating magnetic field in the x-y sensor plane necessary to  
ensure the minimum error, as specified in this table and in Table 2  
MAXIMUM ROTATIONAL  
FREQUENCY  
30,000 rpm  
ELECTRICAL CHARACTERISTICS  
−40°C ≤ TA ≤ +150°C, VDD = 3 V to 5.5 V, CL = 10 nF to GNDx, RL = 5 kΩ to GNDx; angle inaccuracies referred to homogenous magnetic  
field of 25 kA/m; output signals and offset voltages are related to the common-mode level of VDD/2, unless otherwise noted.  
Table 2.  
Parameter  
Symbol  
Test Conditions/Comments  
Min  
Typ  
Max  
Unit  
ANGULAR PERFORMANCE  
Angle Measurement Range  
Uncorrected Angular Error1  
0
180  
±±  
±±  
Degrees  
Degrees  
Degrees  
Degrees  
Degrees  
αUNCORR  
TA = −40°C  
TA = 25°C  
TA = 150°C  
TA = −40°C to +150°C, GCx = GNDx  
±2  
±2  
±2  
±0.5  
±±  
Single-Point Calibration Angular αCAL  
Error2, 3  
TA = −40°C to +150°C, GCx = VDD  
VDD = 3 V, TA = −40°C to +150°C, rotation  
frequency = 2000 rpm  
VDD = 5 V, TA = −40°C to +150°C, rotation  
frequency = 2000 rpm  
±0.4  
±0.1  
Degrees  
Degrees  
Dynamic Angular Error4  
αDYNAMIC  
±0.5  
±0.4  
±0.1  
Degrees  
OUTPUT PARAMETERS  
Peak-to-Peak Voltage  
GCx = GNDx  
VPP  
TA = −40°C  
TA = 25°C  
TA = 125°C  
TA = 150°C  
TA = −40°C  
TA = 25°C  
TA = 125°C  
TA = 150°C  
VSIN1, VSIN2, VCOS1, and VCOS2; normal  
operation  
63  
41  
21  
18  
56  
52  
38  
35  
±
±5  
53  
33  
30  
±±  
±2  
5±  
55  
93  
% VDD  
% VDD  
% VDD  
% VDD  
% VDD  
% VDD  
% VDD  
% VDD  
% VDD  
GCx = VDDx  
Output Voltage Range  
Output Voltage Low  
VO_SWING  
VOL  
VSIN1, VSIN2, VCOS1, or VCOS2; broken  
bond wire detected  
5
% VDD  
Output Referred Offset Voltage  
VOFFSET  
GCx = VDDx  
GCx = GNDx  
3.±5  
3.±5  
+1  
% VDD  
% VDD  
Amplitude Synchronism Error5  
Delay Time  
Phase Error6  
Orthogonality Error3  
k
−1  
63  
±0.1  
2
0.8  
0.025  
500  
% peak  
μs  
Degrees  
Degrees  
μV rms  
tDEL  
ΦERR  
OE  
Rotation frequency = 30,000 rpm  
Rotation frequency = 30,000 rpm  
Output Noise  
VNOISE  
Bandwidth (BW) = 80 kHz, referred to  
output (RTO)  
Normal operation, PDx = GNDx  
PDx = VDD  
Output Series Resistance  
RO  
60  
Ω
kΩ  
kHz  
Output −3 dB Cutoff Frequency3 f−3 dB  
Amplifier BW, CL = 10 pF  
100  
Rev. 0 | Page 3 of 13  
 
 
 
 
ADA4571-2  
Data Sheet  
Parameter  
Power Supply Rejection Ratio3  
Symbol  
Test Conditions/Comments  
Min  
Typ  
Max  
Unit  
PSRR  
Measured as a dc output variation from  
VDD/2, VDD = 3 V to 5.5 V, RL = 200 kΩ to  
GNDx, GCx = GNDx or VDD  
80  
dB  
Output Short-Circuit Current  
Per Channel  
ISC  
Short to GNDx per pin (VSINx, VCOSx) per  
channel  
Short to VDDx per pin (VSINx, VCOSx) per  
channel  
15  
20  
mA  
mA  
−15  
−18  
POWER SUPPLY  
Supply Voltage  
Quiescent Supply Current Per  
Channel  
VDD  
ISY  
3
3.5  
5.5  
6.5  
V
mA  
PDx = GNDx, GCx = GNDx, no load, VDD1  
and VDD2  
4.5  
PDx = GNDx, GCx = VDD, no load, VDD1 and  
VDD2  
±
mA  
PDx = VDD, no load, VDD1 and VDD2  
To 98% of desired output level after VDD is  
reached  
15  
150  
μA  
μs  
Power-Up Time  
tPWRUP  
To 98% of desired output level after PDx  
cycling  
100  
μs  
DIGITAL INPUTS  
Input Bias Current  
GC1, GC2  
IB_GC  
IB_PD  
For GCx mode control pin, GCx = GNDx  
For GCx mode control pin, GCx = VDD  
For PDx pin, PDx = GNDx  
30  
30  
μA  
μA  
μA  
μA  
3
3
PD1, PD2  
For PDx pin, PDx = VDD  
Input Voltage (GC1, GC2, PD1  
and PD2)  
High  
Low  
VIH  
VIL  
1.4  
V
V
0.35  
82  
TEMPERATURE SENSOR (VTEMP1,  
VTEMP2)  
Error Over Temperature  
Temperature Voltage Range  
Temperature Coefficient  
VTEMPx  
TERR  
TRANGE  
Tempco  
5
°C  
% VDD  
mV/V/°C  
TA = −40°C to +150°C  
0
3.1±3  
Output Voltage  
Output Impedance  
Load Capacitance  
TA = 25°C  
Buffered output  
Optional load capacitance  
Short-circuit to VDDx or GNDx  
18  
40  
22  
% VDD  
Ω
nF  
50  
0
2
Short-Circuit Current  
LOAD CAPACITOR  
External Load Capacitance  
ISC_VTEMP  
CL  
mA  
Between VSINx to GNDx and VCOSx to  
GNDx; solder close to package  
10  
nF  
1 αUNCORR is the total mechanical angular error after arctan computation. This parameter is 100% production tested at 25°C and 150°C. This error includes all sources of  
error over temperature before calibration. Error components such as offset, amplitude synchronism, amplitude synchronism drift, thermal offset drift, phase error,  
hysteresis, orthogonality error, and noise are included.  
2 αCAL is the total mechanical angular error after arctan computation. This error includes all sources of error over temperature after an initial offset (nulling) is performed  
at TA = 25°C. Error components such as amplitude synchronism drift, amplifier gain matching, thermal offset drift, phase error, hysteresis, orthogonality error, and  
noise are included.  
3 Guaranteed through characterization.  
4 αDYNAMIC is the total mechanical angular error after arctan computation. This parameter is 100% production tested. This error includes all sources of error over  
temperature after a continuous background calibration is performed to correct offset and amplitude synchronism errors. Error components such as phase error,  
hysteresis, orthogonality error, noise, and lifetime drift are included.  
5 Peak-to-peak amplitude mismatch. k = 100 × VSINx/VCOSx.  
6 Rotation frequency dependent phase error, after offset correction, amplitude calibration, and arctan calculation.  
Rev. 0 | Page 4 of 13  
Data Sheet  
ADA4571-2  
ABSOLUTE MAXIMUM RATINGS  
Table 3.  
THERMAL RESISTANCE  
Thermal performance is directly linked to printed circuit board  
(PCB) design and operating environment. Careful attention to  
PCB thermal design is required.  
Parameter  
Rating  
Operating Temperature Range  
Storage Temperature Range  
Supply Voltage (VDD)1 Range  
−40°C to +150°C  
−65°C to +150°C  
−0.3 V to +6 V  
θJA is the natural convection junction to ambient thermal  
resistance measured in a one cubic foot sealed enclosure.  
Output Short-Circuit Duration to GNDx or VDDx Indefinite  
VTEMPx Short Circuit to GNDx or VDDx  
ESD  
Human Body Model (HBM)2  
Machine Model (MM)3  
Charge Device Model (CDM)4  
Indefinite  
Table 4. Thermal Resistance  
Package Type  
R-16-S1  
1 For more information on thermal test methods and environmental  
conditions, refer to JESD51-2.  
θJA  
Unit  
4000 V  
300 V  
1250 V  
105  
°C/W  
1 GCx or PDx at VDDx + 0.3 V.  
2 The applicable standard is ESDA/JEDEC JS-001-2011.  
3 The applicable standard is JESD22-A115.  
4 The applicable standard is JESD22-C101.  
ESD CAUTION  
Stresses at or above those listed under Absolute Maximum  
Ratings may cause permanent damage to the product. This is a  
stress rating only; functional operation of the product at these  
or any other conditions above those indicated in the operational  
section of this specification is not implied. Operation beyond  
the maximum operating conditions for extended periods may  
affect product reliability.  
Rev. 0 | Page 5 of 13  
 
 
 
ADA4571-2  
Data Sheet  
PIN CONFIGURATION AND FUNCTION DESCRIPTIONS  
VTEMP2  
GND2  
VDD2  
PD2  
1
2
3
4
5
6
7
8
16 VSIN2  
15 GND2  
14 VCOS2  
13 GC2  
ADA4571-2  
TOP VIEW  
GC1  
12 PD1  
(Not to Scale)  
VCOS1  
GND1  
VSIN1  
11 VDD1  
10 GND1  
9
VTEMP1  
Figure 2. Pin Configuration  
Table 5. Pin Function Descriptions  
Pin No.  
Mnemonic  
VTEMP2  
GND2  
VDD2  
PD2  
Description  
1
2
3
4
5
6
±
8
Temperature Output Channel 2. The VTEMP2 pin must be left open when not in use.  
Ground Channel 2.  
Supply, Channel 2.  
Power-Down, Active High, Channel 2.  
Gain Control Mode, Active High, Channel 1.  
Analog Cosine Output, Channel 1.  
Ground Channel 1.  
Analog Sine Output, Channel 1.  
Temperature Output Channel 1. The VTEMP1 pin must be left open when not in use.  
Ground Channel 1.  
GC1  
VCOS1  
GND1  
VSIN1  
VTEMP1  
GND1  
VDD1  
PD1  
9
10  
11  
12  
13  
14  
15  
16  
Supply, Channel 1.  
Power-Down, Active High, Channel 1.  
Gain Control Mode, Active High, Channel 2.  
Analog Cosine Output, Channel 2.  
Ground Channel 2.  
GC2  
VCOS2  
GND2  
VSIN2  
Analog Sine Output, Channel 2.  
Rev. 0 | Page 6 of 13  
 
Data Sheet  
ADA4571-2  
TYPICAL PERFORMANCE CHARACTERISTICS  
0.40  
0.35  
0.30  
0.25  
0.20  
0.15  
0.10  
0.05  
0
93% V  
DD  
V
COS  
V
OFFSET  
V
PP  
50% V  
DD  
V
SIN  
7% V  
DD  
0
90  
180  
270  
360  
–40  
0
40  
80  
120  
MAGNETIC ANGLE, α (Degrees)  
TEMPERATURE (°C)  
Figure 6. Single-Point Calibration Angular Error, Assuming Homogeneous  
Aligned Magnetic Field over One Channel  
Figure 3. Raw Output Waveforms  
7
6
5
4
3
0.5  
0.4  
0.3  
0.2  
0.1  
0
–0.1  
–0.2  
–0.3  
–0.4  
–0.5  
2.7  
3.1  
3.5  
3.9  
4.3  
(V)  
4.7  
5.1  
5.5  
0
45  
90  
135  
180  
225  
270  
315  
360  
V
MECHANICAL ANGLE (Degrees)  
DD  
Figure 4. Error Waveform After Offset and Amplitude Correction, Assuming  
Homogeneous Aligned Magnetic Field Over One Channel  
Figure 7. Supply Current (ISY) Per Channel vs. Supply Voltage (VDD), TA = 25°C  
40  
5.8  
+150°C  
+125°C  
GCx OFF (mA)  
GCx ON (mA)  
35  
30  
25  
20  
15  
10  
5
+25°C  
–40°C  
5.6  
5.4  
5.2  
5.0  
4.8  
4.6  
0
0
0.5  
1.0  
1.5  
2.0  
2.5  
3.0  
3.5  
4.0  
4.5  
5.0  
–40  
0
40  
80  
120  
UNCORRECTED ANGULAR ERROR (Degrees)  
TEMPERATURE (°C)  
Figure 5. Uncorrected Angular Error  
Figure 8. Supply Current (ISY) Per Channel vs. Temperature, VDD = 5 V  
Rev. 0 | Page ± of 13  
 
ADA4571-2  
Data Sheet  
4.6  
4.4  
4.2  
4.0  
3.8  
20  
18  
16  
14  
12  
10  
8
GCx OFF (mA)  
GCx ON (mA)  
6
4
2
3.6  
–40  
0
0
40  
80  
120  
–1.00 –0.75 –0.50 –0.25  
0
0.25  
0.50  
0.75  
1.00  
TEMPERATURE (°C)  
AMPLITUDE MISMATCH (%)  
Figure 9. Supply Current (ISY) Per Channel vs. Temperature, VDD = 3 V  
Figure 12. VSINx to VCOSx Amplitude Mismatch Per Channel  
100  
10  
5V  
3V  
GCx OFF  
GCx ON  
90  
80  
70  
60  
50  
40  
30  
20  
10  
0
8
6
4
2
0
–40  
0
40  
80  
120  
–40  
0
40  
80  
120  
TEMPERATURE (°C)  
TEMPERATURE (°C)  
Figure 13. Peak-to-Peak Output Voltage (VSIN and VCOS) vs. Temperature  
Figure 10. Power-Down Current (IPD) Per Channel vs. Temperature Per Channel  
100  
90  
80  
70  
60  
50  
40  
30  
20  
10  
0
–40  
0
40  
80  
120  
TEMPERATURE (°C)  
Figure 11. VTEMP1/VTEMP2 Output Voltage vs. Temperature  
Rev. 0 | Page 8 of 13  
Data Sheet  
ADA4571-2  
THEORY OF OPERATION  
The ADA4571-2 is an AMR sensor with integrated signal  
conditioning amplifiers and Σ-Δ ADC drivers. The ADA4571-2  
produces two analog outputs, sine and cosine, that indicate the  
angular position of the surrounding magnetic field.  
signals are carefully matched in both amplitude and phase. The  
amplifier bandwidth is sufficient to ensure low phase delay at  
the maximum specified rotation speed.  
Electromagnetic interference (EMI) filters at the sensor outputs  
and between the first and second stages reject unwanted noise  
and interference from appearing in the signal band.  
Sensitec GmbH developed the ADA4571-2 AMR technology.  
The architecture of the instrumentation amplifier consists of  
precision, low noise, zero drift amplifiers that feature a proprietary  
chopping technique. This chopping technique offers a low input  
offset voltage of 0.3 μV (typical) and an input offset voltage drift  
of 0.02 μV/°C (typical). The zero drift design also features chopping  
ripple suppression circuitry, which removes glitches and other  
artifacts caused by chopping.  
Figure 14 shows the sine channel, consisting of an AMR sensor  
element and the supporting functions for control, filtering,  
buffering, and signal amplification. A reference voltage that is  
proportional to the supply voltage is generated by the device  
and controls the supply voltage of the sensor bridges. For noise  
and electromagnetic compatibility (EMC) suppression purposes,  
the bridge supply is low-pass filtered. The bridge output voltages  
are amplified by a constant factor (G = 40, gain control mode  
disabled) and buffered. The single-ended outputs are biased  
around a common-mode voltage of VDD/2 and are capable of  
driving the inputs of an external ADC referenced to the supply  
voltage.  
Offset voltage errors caused by common-mode voltage swings  
and power supply variations are also corrected by the chopping  
technique, resulting in a dc common-mode rejection ratio that  
is greater than 150 dB. The amplifiers feature low broadband  
noise of 22 nV/√Hz and no 1/f noise component. ese features  
are ideal for amplification of the low level AMR bridge signals  
for high precision sensing applications.  
For optimum use of the ADC input range, the cosine and sine  
output voltages track the supply voltage, ensuring a ratiometric  
configuration. To achieve high signal performance, both output  
In addition, extensive diagnostics are integrated on chip to self  
check sensor and IC conditions.  
VDDx  
VDDx  
VDDx  
+
62.7pF  
20pF  
+
V
3.3k  
TEMP  
50Ω  
AMR  
BRIDGE  
VSINx  
+
3.3kΩ  
+
62.7pF  
VDDx/2  
Figure 14. Detailed Internal Diagram of the ADA4571-2, Single Sine Channel  
Rev. 0 | Page 9 of 13  
 
 
ADA4571-2  
Data Sheet  
DIAGNOSTIC  
BAND  
93% V  
DD  
V
COS  
V
OFFSET  
V
PP  
LINEAR  
REGION  
50% V  
DD  
V
SIN  
7% V  
DD  
DIAGNOSTIC  
BAND  
0
90  
180  
270  
360  
MAGNETIC ANGLE, α (Degrees)  
Figure 15. Typical Output Waveforms; Single-Channel Sine and Cosine vs. Magnetic Angle  
Rev. 0 | Page 10 of 13  
Data Sheet  
ADA4571-2  
APPLICATIONS INFORMATION  
The integrated AMR sensor is designed for applications with a  
separate processing IC or electronic control unit (ECU) containing  
a Σ-Δ ADC with references connected to the supply voltage.  
With the ADC input resolution related to VDD in the same way  
as the AMR sensor output, the system is inherently ratiometric and  
the signal dependency on supply voltage changes is minimized.  
To achieve maximum accuracy from the VTEMPx output  
voltage, perform an initial calibration at a known, controlled  
temperature. Then, use the following equation to extract  
temperature information:  
V
V
CAL  
TEMP  
T  
Tempco  
CAL  
V
V
DD  
DD  
TVTEMP  
TC VTEMP  
ANGLE CALCULATION  
where:  
VTEMP is the calculated temperature (°C) from the VTEMPx  
output voltage.  
To calculate angle from the output of the AMR device, use the  
trigonometric function, arctangent2. The arctangent2 function  
is a standard arctangent function with additional quadrant  
information to extend the output from the magnetic angle range  
of −90° to +90° to the magnetic angle range of −180° to +180°.  
Because of the sensing range of AMR technology, this calculated  
magnetic angle repeats over each pole of the magnet. For a  
simple dipole magnet, the following equation reports absolute  
angle over 180° mechanical:  
T
V
V
V
TEMP is the VTEMPx output voltage during device operation.  
DD is the supply voltage.  
CAL is the VTEMPx output voltage during calibration at a  
controlled temperature.  
CAL is the controlled temperature during calibration.  
T
Tempco is the temperature coefficient of the internal circuit; see  
the Specifications section for the exact value.  
2
VSIN  
VCOS  
arctan  
Gain Control Mode  
   
Activate gain control (GCx) enable mode by connecting the  
GCx pin to the VDDx pin. In this mode, the AMR bridge sensor  
amplitude outputs are compensated to reduce temperature  
variation. This compensation results in higher and controlled  
output voltage levels, boosts the system dynamic range, and  
eases the system design task. If the GCx pin is left floating, a weak  
pull-up resistor ensures that the GC mode is enabled as a default  
condition. The GC mode can also be used as a sensor self  
diagnostic by comparing the sine and cosine amplitude outputs  
when enabled and disabled, such as a radius check. Device failure  
is indicated by the radius remaining unchanged.  
CONNECTION TO ECU  
Because of the limited driving capability of the ADA4571-2  
output, minimize the length of printed circuit board (PCB)  
traces between the ADA4571-2 and other ICs. Shielding of the  
signal lines is recommended. Match the load capacitors and  
resistors for best angular accuracy. Add bandwidth limitation  
filters related to the sampling frequency of the system in front  
of the ADC inputs to reduce noise bandwidth.  
The load resistors on VCOSx and VSINx are the same as the  
input filter of the ADC. Use the processor for arctan and offset  
calculations, offset storage, and additional calibration.  
Power-Down Mode  
Activate power-down mode by connecting the PDx pin to the  
VDDx pin. In this mode, the device shuts down and the output  
pins are set to high impedance to avoid current consumption  
across the load resistors. The VTEMPx output is connected to  
GNDx through a pull-down resistor. Enter power-down mode  
with GCx = VDD or GCx = GNDx. An internal pull-down resistor  
ensures that the device remains active if the PDx pin is left floating.  
VTEMPx Output Pin  
A proportional to absolute temperature circuit provides a  
voltage output at the VTEMPx pin for temperature monitoring  
or temperature calibration purposes. The output voltage is  
ratiometric to the supply voltage, enabling the interface with an  
ADC that uses the supply voltage to generate the reference  
voltage. The VTEMPx pin must be left open when not in use.  
Rev. 0 | Page 11 of 13  
 
 
 
ADA4571-2  
Data Sheet  
Power Consumption  
the ASIC. The purpose of the window comparators is to detect  
when the signal from the AMR sensor is outside of the normal  
operating region. When the comparators detect that the signal  
nodes are outside of the normal operating region, the circuit  
pulls the VSINx and/or VCOSx node to ground to indicate the  
fault to the host controller.  
Worst case quiescent power occurs when the supply current runs at  
the specified maximum of 14 mA and when the ADA4571-2 is  
run at the maximum VDD of 5.5 V, resulting in a worst case  
quiescent power of 77 mW.  
The power consumption is dependent on VDD, temperature,  
load resistance (RL), load capacitance (CL), and frequency of the  
rotating magnetic field. It is recommended to connect RL and CL  
to ground. The output voltages are protected against short circuits  
to the VDDx pin or ground by current limitation within the given  
time duration. Placing the device 180° rotated into the socket  
may lead to damage if the supply current is not limited to 100 mA.  
In addition to the active circuitry, there are applications  
recommendations, such as the use of pull-up and pull-down  
resistors, which detect broken bond wires by pulling nodes  
outside of the defined operating regions. A broken bond wire at  
VTEMPx, VCOSx, or VSINx interrupts the corresponding  
outputs. To ensure that the output enters into a known state if  
there is a broken bond wire on these pins, connect a 200 kΩ  
pull-down resistor at these pins. Pulling these nodes outside of  
the normal operating region signals a fault to the host controller.  
Offset of Signal Outputs  
The single-ended output signals are referenced to VDD/2 and are  
generated internally on chip. Offsets originate from matching  
inaccuracies and other imperfections during the production  
process. For tight tolerances, it is required to match the external  
loads for VSINx and VCOSx to each other. For ESD and EMC  
protection, the outputs contain a series resistance of 60 Ω. A  
large output load resistance minimizes the influence of this  
series resistance.  
Short-Circuit Condition to GNDx or VDDx  
In the event of a short-circuit condition, the output voltages are  
pulled to the GNDx pin or the VDDx pin.  
Short Circuit Between Sine and Cosine Sensor Outputs  
In the event of a short circuit between sensor outputs, the  
device output voltages are tied to the output common-mode  
voltage. A gross angular error is detected in the microcontroller.  
Signal Dependence on Air Gap Distance  
The device measures the direction of the external magnetic  
field within the x-y plane. This measurement result is widely  
independent of the field strength, if it is greater than the specified  
minimum value of 25 kA/m. Within a homogeneous field in the  
x-y direction, the result is independent of the placement in the  
z direction (air gap). The nominal z distance of the internal x-y  
plane to the top surface of the plastic package is 0.400 mm.  
100%  
SHORT-CIRCUIT DIAGNOSTIC BAND (HIGH)  
93%  
LINEAR REGION  
DIAGNOSTICS  
Broken Bond Wire Detection  
The ADA4571-2 includes circuitry to detect broken bond wire  
conditions between the AMR sensor and the instrumentation  
amplifier. The detection circuitry consists of current sources and  
window comparators placed on the signal connections between  
the AMR sensor and the ASIC. The purpose of the current sources  
is to pull the signal node outside of the normal operating region  
in the event of an open bond wire between the AMR sensor and  
7%  
SHORT-CIRCUIT DIAGNOSTIC BAND (LOW)  
0%  
Figure 16. Output Span Classification During Short-Circuit Diagnostic  
Condition  
Table 6. Diagnostic Cases  
Fault Description  
Output Conditions  
Alert  
Broken Bond Wire Between the  
Internal MR Sensor and the ASIC  
Broken bond wire detection is activated; the broken Diagnostic region violation  
channel(s), VSINx or VCOSx, are pulled to GNDx  
Broken Bond Wire at the PDx Pin  
Broken Bond Wire at the GCx Pin  
Output Short Circuit to GNDx  
Output Short Circuit to VDDx  
Device remains functional  
Gain control is activated  
Shorted channel is pulled to GNDx  
Shorted channel is pulled to VDDx  
No alert  
Possible change in output amplitude  
Diagnostic region violation  
Diagnostic region violation  
Rev. 0 | Page 12 of 13  
 
Data Sheet  
ADA4571-2  
OUTLINE DIMENSIONS  
10.00  
9.90  
9.80  
1.03  
0.95  
0.87  
0.475  
4.475  
2.00  
1.95  
1.90  
4.475  
3.00  
DETAIL A  
(NOTE 1)  
16  
1
9
8
6.20  
6.00  
5.80  
4.00  
3.90  
3.80  
PIN 1  
± 2°  
INDICATOR  
TOP VIEW  
DETAIL A  
0.51  
0.41  
0.31  
1.27  
BSC  
(NOTE 2, 3, 4)  
0.50  
0.25  
× 45°  
1.50  
1.37  
1.25  
0.25  
0.17  
1.75  
1.55  
1.35  
0.2667  
SIDE VIEW  
0°~8°  
END VIEW  
0.25  
0.18  
0.10  
AMR sensing  
element  
SEATING  
PLANE  
1.04  
REF  
1.27  
0.40  
COPLANARITY  
0.10  
COMPLIANT TO JEDEC STANDARDS MS-012-AC  
NOTES:  
1. MAXIMUM SENSOR ROTATION IS SHOWN IN DETAIL A.  
2. THIS DIMENSION AND TRUE POSITION SPECIFY THE LOCATION  
OF THE CENTER OF THE SENSING ELEMENTS WITH RESPECT TO  
EACH OTHER AND CENTER OF THE PACKAGE.  
3. DOES NOT INCLUDE MOLD FLASH, DAMBAR PROTRUSIONS, OR BURRS.  
4. MOLD BODY WIDTH AND LENGTH DIMENSIONS DO NOT INCLUDE  
MOLD FLASH, OFFSETS, OR MOLD GATE PROTRUSIONS.  
Figure 17. 16-Lead Standard Small Outline Package [SOIC_N]  
Narrow Body  
(R-16-S)  
Dimensions shown in millimeters  
ORDERING GUIDE  
Model1, 2  
Temperature Range  
Package Description  
Package Option  
R-16-S  
ADA45±1-2WHRZ-RL  
EVAL-ADA45±1-2EBZ  
−40°C to +150°C  
16-Lead Standard Small Outline Package [SOIC_N]  
Evaluation Board  
1 Z = RoHS Compliant Part.  
2 W = Qualified for Automotive Applications.  
AUTOMOTIVE PRODUCTS  
The ADA4571-2W model is available with controlled manufacturing to support the quality and reliability requirements of automotive  
applications. Note that this automotive model may have specifications that differ from the commercial models; therefore, designers  
should review the Specifications section of this data sheet carefully. Only the automotive grade products shown are available for use in  
automotive applications. Contact your local Analog Devices account representative for specific product ordering information and to  
obtain the specific Automotive Reliability reports for this model.  
©2016 Analog Devices, Inc. All rights reserved. Trademarks and  
registered trademarks are the property of their respective owners.  
D15015-0-11/16(0)  
Rev. 0 | Page 13 of 13  
 
 
 

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