MMA2260EGR2 [FREESCALE]

【1.5g X-Axis Micromachined Accelerometer; 【 1.5克X轴微机械加速度计
MMA2260EGR2
型号: MMA2260EGR2
厂家: Freescale    Freescale
描述:

【1.5g X-Axis Micromachined Accelerometer
【 1.5克X轴微机械加速度计

光电二极管 机械
文件: 总9页 (文件大小:268K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
Document Number: MMA2260D  
Rev 3, 03/2006  
Freescale Semiconductor  
Technical Data  
±1.5g X-Axis Micromachined  
Accelerometer  
MMA2260  
The MMA series of silicon capacitive, micromachined accelerometers feature  
signal conditioning, a 2-pole low pass filter and temperature compensation. Zero-  
g offset full scale span and filter cut-off are factory set and require no external  
devices. A full system self-test capability verifies system functionality.  
MMA2260D: X AXIS SENSITIVITY  
MICROMACHINED  
ACCELEROMETER  
±1.5g  
Features  
Integral Signal Conditioning  
High Sensitivity  
Linear Output  
2nd Order Bessel Filter  
Calibrated Self-test  
EPROM Parity Check Status  
Transducer Hermetically Sealed at Wafer Level for Superior Reliability  
Robust Design, High Shock Survivability  
Typical Applications  
Tilt Monitoring  
Inclinometers  
D SUFFIX  
EG SUFFIX (Pb-FREE)  
16-LEAD SOIC  
Appliance Control  
Mechanical Bearing Monitoring  
Vibration Monitoring and Recording  
Sports Diagnostic Devices and Systems  
Trailer Brake Controls  
CASE 475-01  
Automotive Aftermarket  
ORDERING INFORMATION  
Device  
Temperature Range  
–40 to +105°C  
–40 to +105°C  
–40 to +105°C  
–40 to +105°C  
Case No.  
475-01  
475-01  
475-01  
475-01  
Package  
SOIC-16  
MMA2260D  
MMA2260DR2  
MMA2260EG  
MMA2260EGR2  
SOIC-16, Tape & Reel  
SOIC-16  
SOIC-16, Tape & Reel  
VDD  
Temp Comp  
and Gain  
G-Cell  
Sensor  
VSS  
VSS  
N/C  
N/C  
N/C  
N/C  
N/C  
N/C  
N/C  
N/C  
16  
15  
14  
13  
12  
11  
10  
9
VOUT  
1
2
3
4
5
6
7
8
Integrator  
Gain  
Filter  
VSS  
VOUT  
STATUS  
VDD  
ST  
Control Logic &  
EPROM Trim Circuits  
Clock  
Generator  
Oscillator  
Self-test  
VSS  
ST  
STATUS  
Figure 1. Simplified Accelerometer Functional Block Diagram  
Figure 2. Pin Connections  
© Freescale Semiconductor, Inc., 2006. All rights reserved.  
Table 1. Maximum Ratings(1)  
(Maximum ratings are the limits to which the device can be exposed without causing permanent damage.)  
Rating  
Unpowered Acceleration (all axes)  
Symbol  
gupd  
Value  
2000  
Unit  
g
Supply Voltage  
VDD  
-0.3 to +7.0  
1.2  
V
Drop Test(1)  
Hdrop  
Tstg  
m
Storage Temperature Range  
1. Dropped onto concrete surface from any axis.  
-40 to +125  
°C  
ELECTRO STATIC DISCHARGE (ESD)  
WARNING: This device is sensitive to electrostatic  
discharge.  
Although the Freescale accelerometers contain internal  
2kV ESD protection circuitry, extra precaution must be taken  
by the user to protect the chip from ESD. A charge of over  
2000 volts can accumulate on the human body or associated  
test equipment. A charge of this magnitude can alter the  
performance or cause failure of the chip. When handling the  
accelerometer, proper ESD precautions should be followed  
to avoid exposing the device to discharges which may be  
detrimental to its performance.  
MMA2260D  
Sensors  
2
Freescale Semiconductor  
Table 2. Operating Characteristics  
(Unless otherwise noted: –40°C TA +105°C, 4.75 VDD 5.25, Acceleration = 0g, Loaded output(1)  
)
Characteristic  
Symbol  
Min  
Typ  
Max  
Unit  
Operating Range(2)  
Supply Voltage(3)  
Supply Current  
VDD  
IDD  
TA  
4.75  
1.1  
–40  
5.00  
2.2  
5.25  
3.2  
V
mA  
°C  
g
Operating Temperature Range  
Acceleration Range  
+105  
gFS  
1.5  
Output Signal  
Zero g (VDD = 5.0 V)(4)  
Sensitivity (TA = 25°C, VDD = 5.0 V)(5)  
Sensitivity (VDD = 5.0 V)(5)  
Bandwidth Response  
Nonlinearity  
VOFF  
S
2.3  
1140  
1110  
40  
2.5  
1200  
1200  
50  
2.7  
1260  
1290  
60  
V
mV/g  
mV/g  
Hz  
S
f–3dB  
NLOUT  
–1.0  
+1.0  
% FSO  
Noise  
RMS (0.1 Hz – 1.0 kHz)  
Spectral Density (RMS, 0.1 Hz – 1.0 kHz)(6)  
nRMS  
nSD  
3.5  
mVrms  
350  
µg/Hz  
Self-Test  
Output Response (VDD = 5.0 V)  
Input Low  
VST  
VIL  
VIH  
IIN  
0.3  
VSS  
0.7 VDD  
–50  
0.4  
0.5  
V
V
0.3 VDD  
VDD  
–300  
25  
Input High  
V
Input Loading(7)  
Response Time(8)  
–125  
20  
µA  
ms  
tST  
Status(9)(10)  
Output Low (Iload = 100 µA)  
Output High (Iload = –100 µA)  
VOL  
VOH  
0.4  
V
V
V
DD –0.8  
Output Stage Performance  
Electrical Saturation Recovery Time(11)  
Full Scale Output Range (IOUT = –200 µA)  
Capacitive Load Drive(12)  
tDELAY  
VFSO  
CL  
2.0  
VDD–0.25  
100  
ms  
V
V
SS+0.25  
pF  
Output Impedance  
ZO  
50  
Mechanical Characteristics  
Transverse Sensitivity(13)  
VYX,ZX  
5.0  
% FSO  
1. For a loaded output the measurements are observed after an RC filter consisting of a 1 kresistor and a 0.1 µF capacitor to ground.  
2. These limits define the range of operation for which the part will meet specification.  
3. Within the supply range of 4.75 and 5.25 volts, the device operates as a fully calibrated linear accelerometer. Beyond these supply limits  
the device may operate as a linear device but is not guaranteed to be in calibration.  
4. The device can measure both + and – acceleration. With no input acceleration the output is at midsupply. For positive acceleration the  
output will increase above VDD/2 and for negative acceleration the output will decrease below VDD/2.  
5. Sensitivity limits apply to 0 Hz acceleration.  
6. At clock frequency 34 kHz.  
7. The digital input pin has an internal pull-down current source to prevent inadvertent self test initiation due to external board level leakages.  
8. Time for the output to reach 90% of its final value after a self-test is initiated.  
9. The Status pin output is not valid following power-up until at least one rising edge has been applied to the self-test pin. The Status pin is  
high whenever the self-test input is high.  
10. The Status pin output latches high if the EPROM parity changes to odd. The Status pin can be reset by a rising edge on self-test, unless a  
fault condition continues to exist.  
11. Time for amplifiers to recover after an acceleration signal causes them to saturate.  
12. Preserves phase margin (60°) to guarantee output amplifier stability.  
13. A measure of the device's ability to reject an acceleration applied 90° from the true axis of sensitivity.  
MMA2260D  
Sensors  
Freescale Semiconductor  
3
PRINCIPLE OF OPERATION  
The Freescale accelerometer is a surface-micromachined  
SPECIAL FEATURES  
integrated-circuit accelerometer.  
The device consists of a surface micromachined  
capacitive sensing cell (g-cell) and a CMOS signal  
conditioning ASIC contained in a single integrated circuit  
package. The sensing element is sealed hermetically at the  
wafer level using a bulk micromachined “cap'' wafer.  
The g-cell is a mechanical structure formed from  
semiconductor materials (polysilicon) using semiconductor  
processes (masking and etching). It can be modeled as a set  
of beams attached to a movable central mass that moves  
between fixed beams. The movable beams can be deflected  
from their rest position by subjecting the system to an  
acceleration (Figure 3).  
As the beams attached to the central mass move, the  
distance from them to the fixed beams on one side will  
increase by the same amount that the distance to the fixed  
beams on the other side decreases. The change in distance  
is a measure of acceleration.  
The g-cell beams form two back-to-back capacitors (). As  
the central mass moves with acceleration, the distance  
between the beams change and each capacitor's value will  
change, (C = NAε/D). Where A is the area of the facing side  
of the beam, e is the dielectric constant, D is the distance  
between the beams, and N is the number of beams.  
The CMOS ASIC uses switched capacitor techniques to  
measure the g-cell capacitors and extract the acceleration  
data from the difference between the two capacitors. The  
ASIC also signal conditions and filters (switched capacitor)  
the signal, providing a high level output voltage that is  
ratiometric and proportional to acceleration.  
Filtering  
Freescale accelerometers contain an onboard 2-pole  
switched capacitor filter. Because the filter is realized using  
switched capacitor techniques, there is no requirement for  
external passive components (resistors and capacitors) to set  
the cut-off frequency.  
Self-Test  
The sensor provides a self-test feature that allows the  
verification of the mechanical and electrical integrity of the  
accelerometer at any time before or after installation. A fourth  
“plate'' is used in the g-cell as a self-test plate. When the user  
applies a logic high input to the self-test pin, a calibrated  
potential is applied across the self-test plate and the  
moveable plate. The resulting electrostatic force  
(Fe = 1/2 AV2/d2) causes the center plate to deflect. The  
resultant deflection is measured by the accelerometer's  
control ASIC and a proportional output voltage results. This  
procedure assures that both the mechanical (g-cell) and  
electronic sections of the accelerometer are functioning.  
Status  
Freescale accelerometers include fault detection circuitry  
and a fault latch. The Status pin is an output from the fault  
latch, OR'd with self-test, and is set high whenever the  
following event occurs:  
Parity of the EPROM bits becomes odd in number.  
The fault latch can be reset by a rising edge on the self-test  
input pin, unless one (or more) of the fault conditions  
continues to exist.  
Acceleration  
Figure 3. Transducer  
Physical Model  
Figure 4. Equivalent  
Circuit Model  
MMA2260D  
Sensors  
Freescale Semiconductor  
4
BASIC CONNECTIONS  
PCB Layout  
Pinout Description  
VSS  
VSS  
STATUS  
ST  
P1  
N/C  
N/C  
N/C  
N/C  
N/C  
N/C  
N/C  
N/C  
16  
15  
14  
13  
12  
11  
10  
9
1
2
3
4
5
6
7
8
P0  
VSS  
VSS  
VOUT  
VOUT  
VSS  
A/D In  
R
C
0.1 µF  
STATUS  
VDD  
C
1 kΩ  
0.01 µF  
VDD  
C
0.1 µF  
VDD  
ST  
VRH  
C
0.1 µF  
.
Table 3. Pin Description  
Power Supply  
Pin No.  
Pin Name  
Description  
1 thru 3  
VSS  
Redundant connections to the  
internal VSS and may be left  
unconnected.  
Figure 6. Recommended PCB Layout for Interfacing  
Accelerometer to Microcontroller  
4
VOUT  
Output voltage of the  
accelerometer.  
NOTES:  
1. Use a 0.1 µF capacitor on VDD to decouple the power  
source.  
5
6
7
8
STATUS  
VDD  
Logic output pin to indicate fault.  
The power supply ground.  
The power supply input.  
2. Physical coupling distance of the accelerometer to the  
microcontroller should be minimal.  
VSS  
3. Place a ground plane beneath the accelerometer to  
reduce noise, the ground plane should be attached to  
all of the open ended terminals shown in Figure 6.  
ST  
Logic input pin used to initiate  
self-test.  
4. Use an RC filter of 1 kand 0.01 µF on the output of  
the accelerometer to minimize clock noise (from the  
switched capacitor filter circuit).  
9 thru 13  
Trim pins  
Used for factory trim. Leave  
unconnected.  
14 thru 16  
No internal connection. Leave  
unconnected.  
5. PCB layout of power and ground should not couple  
power supply noise.  
6. Accelerometer and microcontroller should not be a  
high current path.  
5
7. A/D sampling rate and any external power supply  
switching frequency should be selected such that they  
do not interfere with the internal accelerometer  
sampling frequency. This will prevent aliasing errors.  
MMA2260D  
VDD  
STATUS  
8
R1  
1 kΩ  
ST  
Logic  
Input  
6
VOUT  
VDD  
4
Output  
Signal  
C1  
0.1 µF  
C2  
0.01 µF  
7
VSS  
Figure 5. SOIC Accelerometer with Recommended  
Connection Diagram  
MMA2260D  
Sensors  
Freescale Semiconductor  
5
DYNAMIC ACCELERATION  
1
2
3
4
5
6
7
8
16  
15  
14  
13  
12  
11  
10  
9
+X  
-X  
16-Pin SOIC Package  
Top View  
STATIC ACCELERATION  
Direction of Earth's gravity field.(1)  
-1g  
V
OUT = 3.7V  
0g  
0g  
VOUT = 2.50V  
VOUT = 2.50V  
+1g  
V
OUT = 1.3V  
1. When positioned as shown, the Earth's gravity will result in a positive 1g output  
MMA2260D  
Sensors  
6
Freescale Semiconductor  
PACKAGE DIMENSIONS  
PAGE 1 OF 2  
CASE 475-01  
ISSUE C  
16-LEAD SOIC  
MMA2260D  
Sensors  
Freescale Semiconductor  
7
PACKAGE DIMENSIONS  
PAGE 2 OF 2  
CASE 475-01  
ISSUE C  
16-LEAD SOIC  
MMA2260D  
Sensors  
Freescale Semiconductor  
8
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MMA2260D  
Rev. 3  
03/2006  

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