Datasheet Texas Instruments MSP430F2002 — Ficha de datos
Fabricante | Texas Instruments |
Serie | MSP430F2002 |
Microcontrolador de ultra baja potencia de 16 bits, flash de 1kB, RAM de 128B, SAR A / D de 10 bits, USI para SPI / I2C
Hojas de datos
MSP430F20x1, MSP430F20x2, MSP430F20x3 Mixed Signal Microcontroller datasheet
PDF, 2.1 Mb, Revisión: I, Archivo publicado: dic 6, 2012
Extracto del documento
Precios
Estado
MSP430F2002IN | MSP430F2002IPW | MSP430F2002IPWR | MSP430F2002IRSAR | MSP430F2002IRSAT | MSP430F2002TN | MSP430F2002TPW | MSP430F2002TPWR | MSP430F2002TRSAR | MSP430F2002TRSAT | |
---|---|---|---|---|---|---|---|---|---|---|
Estado del ciclo de vida | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) | Activo (Recomendado para nuevos diseños) |
Disponibilidad de muestra del fabricante | Sí | No | Sí | Sí | No | Sí | No | No | Sí | Sí |
Embalaje
MSP430F2002IN | MSP430F2002IPW | MSP430F2002IPWR | MSP430F2002IRSAR | MSP430F2002IRSAT | MSP430F2002TN | MSP430F2002TPW | MSP430F2002TPWR | MSP430F2002TRSAR | MSP430F2002TRSAT | |
---|---|---|---|---|---|---|---|---|---|---|
N | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 |
Pin | 14 | 14 | 14 | 16 | 16 | 14 | 14 | 14 | 16 | 16 |
Package Type | N | PW | PW | RSA | RSA | N | PW | PW | RSA | RSA |
Industry STD Term | PDIP | TSSOP | TSSOP | VQFN | VQFN | PDIP | TSSOP | TSSOP | VQFN | VQFN |
JEDEC Code | R-PDIP-T | R-PDSO-G | R-PDSO-G | S-PQFP-N | S-PQFP-N | R-PDIP-T | R-PDSO-G | R-PDSO-G | S-PQFP-N | S-PQFP-N |
Package QTY | 25 | 90 | 2000 | 3000 | 250 | 25 | 90 | 2000 | 3000 | 250 |
Carrier | TUBE | TUBE | LARGE T&R | LARGE T&R | SMALL T&R | TUBE | TUBE | LARGE T&R | LARGE T&R | SMALL T&R |
Device Marking | MSP430F2002 | F2002 | F2002 | 2002 | M430F | MSP430F2002T | F2002T | F2002T | 2002T | 2002T |
Width (mm) | 6.35 | 4.4 | 4.4 | 4 | 4 | 6.35 | 4.4 | 4.4 | 4 | 4 |
Length (mm) | 19.3 | 5 | 5 | 4 | 4 | 19.3 | 5 | 5 | 4 | 4 |
Thickness (mm) | 3.9 | 1 | 1 | .9 | .9 | 3.9 | 1 | 1 | .9 | .9 |
Pitch (mm) | 2.54 | .65 | .65 | .65 | .65 | 2.54 | .65 | .65 | .65 | .65 |
Max Height (mm) | 5.08 | 1.2 | 1.2 | 1 | 1 | 5.08 | 1.2 | 1.2 | 1 | 1 |
Mechanical Data | Descargar | Descargar | Descargar | Descargar | Descargar | Descargar | Descargar | Descargar | Descargar | Descargar |
Paramétricos
Parameters / Models | MSP430F2002IN | MSP430F2002IPW | MSP430F2002IPWR | MSP430F2002IRSAR | MSP430F2002IRSAT | MSP430F2002TN | MSP430F2002TPW | MSP430F2002TPWR | MSP430F2002TRSAR | MSP430F2002TRSAT |
---|---|---|---|---|---|---|---|---|---|---|
ADC | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch | ADC10 - 8ch |
AES | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A |
Active Power, uA/MHz | 220 | 220 | 220 | 220 | 220 | 220 | 220 | 220 | 220 | 220 |
Additional Features | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset | Watchdog,Temp Sensor,Brown Out Reset |
BSL | UART | UART | UART | UART | UART | UART | UART | UART | UART | UART |
CPU | MSP430 | MSP430 | MSP430 | MSP430 | MSP430 | MSP430 | MSP430 | MSP430 | MSP430 | MSP430 |
Frequency, MHz | 16 | 16 | 16 | 16 | 16 | 16 | 16 | 16 | 16 | 16 |
GPIO Pins | 10 | 10 | 10 | 10 | 10 | 10 | 10 | 10 | 10 | 10 |
I2C | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Max VCC | 3.6 | 3.6 | 3.6 | 3.6 | 3.6 | 3.6 | 3.6 | 3.6 | 3.6 | 3.6 |
Min VCC | 1.8 | 1.8 | 1.8 | 1.8 | 1.8 | 1.8 | 1.8 | 1.8 | 1.8 | 1.8 |
Multiplier | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A |
Non-volatile Memory, KB | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Operating Temperature Range, C | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 | -40 to 85,-40 to 105 |
Package Group | PDIP | TSSOP | TSSOP | QFN | QFN | PDIP | TSSOP | TSSOP | QFN | QFN |
Package Size: mm2:W x L, PKG | See datasheet (PDIP) | 14TSSOP: 32 mm2: 6.4 x 5(TSSOP) | 14TSSOP: 32 mm2: 6.4 x 5(TSSOP) | 16QFN: 16 mm2: 4 x 4(QFN) | 16QFN: 16 mm2: 4 x 4(QFN) | See datasheet (PDIP) | 14TSSOP: 32 mm2: 6.4 x 5(TSSOP) | 14TSSOP: 32 mm2: 6.4 x 5(TSSOP) | 16QFN: 16 mm2: 4 x 4(QFN) | 16QFN: 16 mm2: 4 x 4(QFN) |
RAM, KB | 0.125 | 0.125 | 0.125 | 0.125 | 0.125 | 0.125 | 0.125 | 0.125 | 0.125 | 0.125 |
Rating | Catalog | Catalog | Catalog | Catalog | Catalog | Catalog | Catalog | Catalog | Catalog | Catalog |
SPI | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Special I/O | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A | N/A |
Standby Power, LPM3-uA | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 |
Timers - 16-bit | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Wakeup Time, us | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Plan ecológico
MSP430F2002IN | MSP430F2002IPW | MSP430F2002IPWR | MSP430F2002IRSAR | MSP430F2002IRSAT | MSP430F2002TN | MSP430F2002TPW | MSP430F2002TPWR | MSP430F2002TRSAR | MSP430F2002TRSAT | |
---|---|---|---|---|---|---|---|---|---|---|
RoHS | Obediente | Obediente | Obediente | Obediente | Obediente | Obediente | Obediente | Obediente | Obediente | Obediente |
Pb gratis | Sí | Sí |
Notas de aplicación
- Low-Cost Speech With MSP430 (Rev. A)PDF, 386 Kb, Revisión: A, Archivo publicado: sept 14, 2009
This application report describes the implementation of a low-cost solution to store and play audio or polyphone ringtones with an MSP430. The best solution for flexible and low-cost audio playback is chosen using a demonstration board that is based on the MSP430 USB Stick Development Tool and the MSP430FG4618 Experimenter Board. - MSP430 Microcontroller SW for Handheld Fuel Gauges and Battery Authentication (Rev. A)PDF, 350 Kb, Revisión: A, Archivo publicado: mayo 26, 2010
MSP430, bq26100, bq26100EVM, bq26150, bq26150EVM, bq26500, bq27000, bq27000EVM, bq27200, b MSP430 Microcontroller Software for Handheld Fuel Gauge & Battery Authentication - Migrating from the MSP430F2xx Family to the MSP430FR57xx Family (Rev. A)PDF, 154 Kb, Revisión: A, Archivo publicado: feb 16, 2012
This application report enables easy migration from MSP430F2xx Flash-based MCUs to the MSP430FR57xx family FRAM-based MCU. It covers programming, system, and peripheral considerations when migrating firmware. The purpose is to highlight differences between the two families. For more information on the usage of the MSP430FR57xx features, see the MSP430FR57xx Family User's Guide (Migrating from the USCI Module to the eUSCI Module (Rev. A)PDF, 41 Kb, Revisión: A, Archivo publicado: sept 13, 2012
The purpose of this application report is to enable easy migration for designs based on the USCI_A and USCI_B modules to the eUSCI_A and the eUSCI_B modules. The document highlights the new features in the eUSCI module and the main differences between the USCI and the eUSCI modules.Migrating From MSP430 F2xx and G2xx Families to MSP430 FR4xx and FR2xx Family (Rev. E)PDF, 237 Kb, Revisión: E, Archivo publicado: mayo 4, 2018
This application report helps to ease the migration from MSP430F2xx flash-based MCUs to the MSP430FR4xx and MSP430FR2xx family of FRAM-based MCUs. It discusses programming system hardware core architecture and peripheral considerations. The intent is to highlight key differences between the two families. For more information on the use of the MSP430FR4xx and MSP430FR2xx devices see the MSP430Migrating from the MSP430F2xx,G2xx Family to the MSP430FR58xx/FR59xx/68xx/69xx (Rev. E)PDF, 179 Kb, Revisión: E, Archivo publicado: nov 3, 2016
This application report enables easy migration from MSP430F2xx flash-based MCUs to the MSP430FR58xx/FR59xx/68xx/69xx family of FRAM-based MCUs. For the migration guide to MSP430FR57xx, see Migrating From the MSP430F2xx Family to the MSP430FR57xx Family. It covers programming, system, and peripheral considerations when migrating firmware. The intent is to highlight key differences between the two fQFN and SON PCB Attachment (Rev. B)PDF, 821 Kb, Revisión: B, Archivo publicado: agosto 24, 2018HDQ Protocol Implementation with MSP430PDF, 124 Kb, Archivo publicado: feb 19, 2004MSP430 Isolated FET InterfacePDF, 1.2 Mb, Archivo publicado: oct 10, 2003
This application report describes how to build an isolated FET interface for the MSP430 Flash Emulation Tool (FET). When developing and debugging line-powered MSP430applications such as motor control, electricity energy meters, power monitoring systems etc. it is important to have electrical isolation for the development tool such that the personnel involved and the connected electronic equipmenCurrent Transformer Phase Shift Compensation and CalibrationPDF, 63 Kb, Archivo publicado: enero 30, 2001
This application report demonstrates a digital technique to compensate and calibrate the phase shift of a current (or voltage) transformer used in electric power of energy measurement. Traditional analog compensation is replaced by a digital finite impulse response (FIR) filter. A technique emulating a non-unity power factor (non-UPF) load makes the calibration fully automatic. The calibration timSpread-Spectrum Clock Source Using an MSP430PDF, 228 Kb, Archivo publicado: mayo 31, 2006
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The first part of the Application Report describes the generation of DTMF signals using the Microcontroller MSP430. Following an explanation of the most important specifications which are involved, the theoretical and mathematical processes will be discussed with which sinusoidal waveforms can be derived from square-wave signals, by making use of appropriate analog filters. Tested examples of softMSP430 LFXT1 Oscillator AccuracyPDF, 184 Kb, Archivo publicado: nov 15, 2004
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MSP430 Metering Application ReportChoosing an Ultra Low-Power MCUPDF, 306 Kb, Archivo publicado: jun 30, 2004
This application report describes how to compare ultralow-power MCUs. It discusses the key differences between popular low-power MCUs and how to interpret features and specifications and apply them to application requirements.Simple 1.5 V Boost Converter for MSP430PDF, 49 Kb, Archivo publicado: oct 18, 2000
A simple, efficient, low-cost, boost converter to take 1.5 V from a single type-AA alkaline battery to the operating voltage required by the MSP430 family of ultralow-power microcontrollers is described. Expected battery life is up to 1000 hours.Wave Digital Filtering Using the MSP430PDF, 220 Kb, Archivo publicado: sept 13, 2006
Digital filtering is an integral part of many digital signal processing algorithms. Digital filters are characterized as either recursive [infinite impulse response (IIR)] or non-recursive [finite impulse response (FIR)] filters. IIR filters require a smaller order for the same set of specifications compared to FIR filters, while FIR filters provide a linear phase property. However, IIR filters, iFSK Modulation and Demodulation With the Microcontroller MSP430PDF, 110 Kb, Archivo publicado: dic 14, 1998
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This application note describes how C and assembler code can be used together within an MSP430 application. The combination of C and assembler benefits the designer by providing the power of a high-level language as well as the speed, efficiency, and low-level control of assembler.CRC Implementation with MSP430PDF, 125 Kb, Archivo publicado: nov 4, 2004
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