MMA2300D MOTOROLA | Alldatasheet
Document overview
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Technical content
Features
- Integral Signal Conditioning
- Linear Output
- Ratiometric Performance
- 4th Order Bessel Filter Preserves Pulse Shape Integrity
- Calibrated Self-test
- Low Voltage Detect, Clock Monitor, and EPROM Parity Check Status
- Transducer Hermetically Sealed at Wafer Level for Superior Reliability
- Robust Design, High Shocks Survivability Typical Applications
- Vibration Monitoring and Recording
- Impact Monitoring
ORDERING INFORMATION
Figure 1. Simplified Accelerometer Functional Block Diagram
16 LEAD SOIC
Freescale Semiconductor, Inc.
MMA2300D Motorola Sensor Device Data Maximum Ratings (Maximum ratings are the limits to which the device can be exposed without causing permanent damage.) NOTES: 1. Dropped onto concrete surface from any axis. ELECTRO STATIC DISCHARGE (ESD) WARNING: This device is sensitive to electrostatic discharge. Although the Motorola 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. Rating Symbol Value Unit Powered Acceleration (all axes) Gpd 1500 g Unpowered Acceleration (all axes) Gupd 2000 g Supply Voltage VDD –0.3 to +7.0 V Drop Test (1) Ddrop 1.2 m Storage Temperature Range Tstg –40 to +125 °C Freescale Sem iconductor, I Freescale Semiconductor, Inc. For More Information On This Product, Go to: www.freescale.com nc...
Motorola Sensor Device Data MMA2300D Operating Characteristics (Unless otherwise noted: –40°C ≤ TA ≤ +105°C, 4.75 ≤ VDD ≤ 5.25, Acceleration = 0g, Loaded output (1)) NOTES: 1. For a loaded output the measurements are observed after an RC filter consisting of a 1 k Ω resistor and a 0.01 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 V DD/2 and for negative acceleration the output will decrease below V DD/2. 5. The device is calibrated at 35g. 6. At clock frequency ≅70 kHz. 7. The digital input pin has an internal pull-down current source to prevent inadvertent self test initiation due to external bo ard level leakages. 8. Time for the output to reach 90% of its final value after a self-test is initiated. 9. Time for amplifiers to recover after an acceleration signal causing them to saturate. 10. Preserves phase margin (60°) to guarantee output amplifier stability. 11. A measure of the device's ability to reject an accele ration applied 90° from the true axis of sensitivity. 12. 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, as a means to check the connectivity of the self-test and Status pins in the application. 13. The Status pin output latches high if a Low Voltage Detection or Clock Frequency failure occurs, or the EPROM parity changes to odd. The Status pin can be reset low if the self-test pin is pulsed with a high input for at least 100 µs, unless a fault condition continues to exist. Characteristic Symbol Min Typ Max Unit Operating Range (2) Supply Voltage (3) Supply Current Operating Temperature Range Acceleration Range VDD IDD TA gFS 4.75 3.0 −40 5.00 281 5.25 6.0 +125 V mA C g Output Signal Zero g (TA = 25°C, VDD = 5.0 V)(4) Zero g Sensitivity (TA = 25°C, VDD = 5.0 V)(5) Sensitivity Bandwidth Response Nonlinearity VOFF VOFF,V S SV f–3dB NLOUT 2.4
0.47 VDD
7.6 1.488 360 −1.0 2.5
0.50 VDD
8.0 1.6 400 2.6
0.53 VDD
8.4 1.712 440 1.0 V V mV/g mV/g/V Hz % FSO Noise RMS (10 Hz – 1 kHz) Power Spectral Density Clock Noise (without RC load on output) (6) nRMS nPSD nCLK 110 2.0 2.8 mVrms µV/(Hz1/2) mVpk Self-Test Output Response Input Low Input High Input Loading (7) Response Time(8) gST VIL VIH IIN tST VSS 0.7 x VDD −30 −100 2.0 0.3 x VDD VDD −260 g V V µA ms Status(12)(13) Output Low (Iload = 100 µA) Output High (Iload = 100 µA) VOL VOH VDD –0.8 0.4 V V Minimum Supply Voltage (LVD Trip) VLVD 2.7 3.25 4.0 V Clock Monitor Fail Detection Frequency fmin 50 — 260 kHz Output Stage Performance Electrical Saturation Recovery Time (9) Full Scale Output Range (IOUT = 200 µA) Capacitive Load Drive(10) Output Impedence tDELAY VFSO CL ZO 0.25 0.2 300 VDD–0.25 100 ms V pF W Mechanical Characteristics Transverse Sensitivity(11) Package Resonance VXZ,YZ fPKG 5.0 % FSO kHz Freescale Sem iconductor, I Freescale Semiconductor, Inc. For More Information On This Product, Go to: www.freescale.com nc...
integrated-circuit accelerometer. distance between the beams, and N is the number of beams. proportional to acceleration. Figure 2. Simplified Transducer Physical Model capacitors) to set the cut-off frequency. sections of the accelerometer are functioning. and sensitivity will scale linearly with applied supply voltage. the analog to digital conversion process.
- Supply voltage falls below the Low Voltage Detect (LVD) voltage threshold
- Clock oscillator falls below the clock monitor minimum frequency
- Parity of the EPROM bits becomes odd in number. The fault latch can be reset by a falling edge on the self-test input pin, unless one (or more) of the fault conditions continues to exist. Acceleration Freescale Sem iconductor, I Freescale Semiconductor, Inc. For More Information On This Product, Go to: www.freescale.com nc...
Figure 3. SOIC Accelerometer with Recommended Figure 4. Recommended PCB Layout for Interfacing
- Use a 0.1 µF capacitor on VDD to decouple the power source.
- Physical coupling distance of the accelerometer to the microcontroller should be minimal.
- 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 4.
- Use an RC filter of 1 k Ω and 0.01 µF on the output of the accelerometer to minimize clock noise (from the switched capacitor filter circuit).
- PCB layout of power and ground should not couple power supply noise.
- Accelerometer and microcontroller should not be a high current path.
- 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. Pin No. Pin Name Description 1 thru 3 — Leave unconnected.
4 ST Logic input pin used to initiate
6 STATUS Logic output pin to indicate
7V SS The power supply ground. 8V DD The power supply input.
8 VDD
Freescale Semiconductor, Inc.
MMA2300D Motorola Sensor Device Data Direction of Earth’s gravity field.* * When positioned as shown, the Earth’s gravity will result in a positive 1g output. 876543 21 9 1 01 11 21 31 41 51 6 16-Pin SOIC Package N/C pins are recommended to be left FLOATING Front View Side View Top View Static Acceleration Sensing Direction Dynamic Acceleration Sensing Direction Acceleration of the package in the +X direction (center plate moves in the −X direction) will result in an increase in the output. Activation of Self Test moves the center plate in the −X direction, resulting in an increase in the output. Freescale Sem iconductor, I Freescale Semiconductor, Inc. For More Information On This Product, Go to: www.freescale.com nc...
Figure 5. Footprint SOIC-16 (Case 475-01)
2 PLACES, 16 TIPS
1.27 BSC
ALL DIMENSIONS ARE IN MILLIMETERS. CAUSE THE LEAD WIDTH TO EXCEED 0.75. Freescale Semiconductor, Inc.
HOW TO REACH US: USA/EUROPE/LOCATIONS NOT LISTED : JAPAN: Motorola Japan Ltd.; SPS, Technical Information Center Motorola Literature Distribution 3-20-1 Minami-Azabu. Minato-ku, Tokyo 106-8573, Japan P.O. Box 5405, Denver, Colorado 80217 81-3-3440-3569 1-800-521-6274 or 480-768-2130 ASIA/PACIFIC: Motorola Semiconductors H.K. Ltd.; Silicon Harbour Centre 2 Dai King Street, Tai Po Industrial Estate, Tai Po, N.T., Hong Kong 852-26668334 HOME PAGE: http://motorola.com/semiconductors MMA2300D Information in this document is provided solely to enable system and software implementers to use Motorola products. There are no express or implied copyright licenses granted hereunder to design or fabricate any integrated circuits or integrated circuits based on the informa tion in this document. Motorola reserves the right to make changes without further notice to any products herein. Motorola makes no warranty, represen tation or guarantee regarding the suitability of its products for any particular purpose, nor does Motorola assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation consequential or incidental damages. “Typical” parameters which may be provided in Motorola data sheets and/or specifications can and do vary in different applications and actual performance may var y over time. All operating parameters, including “Typicals” must be validated for each customer application by customer’s technical experts. Motorola does not convey any license under its patent rights nor the rights of others. Motorola products are not designed, intended, or authorized for use as compon ents in systems intended for surgical implant into the body, or other applications intended to support or sustain life, or for any other application in which the failure of the Motorola product could create a situation where personal injury or death may occur. Should Buyer purchase or use Motorola products for any such unintended or unauthorized application, Buyer shall indemnify and hold Motorola and its officers, employees, subsidiaries, affiliates, and di stributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of persona l injury or death associated with such unintended or unauthorized use, even if such claim alleges that Motorola was negligent regarding the design or manufa cture of the part. MOTOROLA and the Stylized M Logo are registered in the US Patent and Trademark Office. All other product or service names are t he property of their respective owners. © Motorola, Inc. 2004 Freescale Sem iconductor, I Freescale Semiconductor, Inc. For More Information On This Product, Go to: www.freescale.com nc...