Linear - Analog Multipliers, Dividers

Image Part Number Description / PDF Quantity Rfq
AD42656

AD42656

Analog Devices, Inc.

ANALOG MULTIPLIER

50

ADSP-3211JG

ADSP-3211JG

Analog Devices, Inc.

64-BIT HIGH SPEED MULTIPLIER

2

SC64029FNG

SC64029FNG

BBG ECL RATE MULTIPLIER

8288

ADSP-1010AKD

ADSP-1010AKD

Analog Devices, Inc.

16 X 16 MULTIPLIER/ACCUMULATOR

0

ADSP-1010AKG/+

ADSP-1010AKG/+

Analog Devices, Inc.

16 X 16 MULTIPLIER/ACCUMULATOR

15

ADSP-3221KG

ADSP-3221KG

Analog Devices, Inc.

64-BIT HIGH SPEED MULTIPLIER

433

ADSP-1009ATG/883B

ADSP-1009ATG/883B

Analog Devices, Inc.

12 X 12 MULTIPLIER/ACCUMULATOR

283

TMC2250AH5C

TMC2250AH5C

MULTIPLIER, 12-BIT PPGA120

585

ADSP-3211KG

ADSP-3211KG

Analog Devices, Inc.

64-BIT HIGH SPEED MULTIPLIER

230

HMU16JC-35R4634

HMU16JC-35R4634

16 X 16 BIT CMOS PARALLEL MULTIP

591

ADSP-1012AJN

ADSP-1012AJN

Analog Devices, Inc.

12 X 12 CMOS MULTIPLIER

1809

ADSP-3210KG/+

ADSP-3210KG/+

Analog Devices, Inc.

64-BIT HIGH SPEED MULTIPLIER

20

ADSP-1012AKG

ADSP-1012AKG

Analog Devices, Inc.

12 X 12 CMOS MULTIPLIER

489

ADSP-1010BSG

ADSP-1010BSG

Analog Devices, Inc.

16 X 16 MULTIPLIER/ACCUMULATOR

0

ADSP-1009AKN

ADSP-1009AKN

Analog Devices, Inc.

12 X 12 MULTIPLIER/ACCUMULATOR

3844

AD41660

AD41660

Analog Devices, Inc.

AD632TD/883B MULTIPLIER

20209

ADSP-3210TG/883B

ADSP-3210TG/883B

Analog Devices, Inc.

64-BIT HIGH SPEED MULTIPLIER

177

ADSP-1012ATD/883B

ADSP-1012ATD/883B

Analog Devices, Inc.

12 X 12 CMOS MULTIPLIER

0

ADSP-1010AJD

ADSP-1010AJD

Analog Devices, Inc.

16 X 16 MULTIPLIER/ACCUMULATOR

4

ADSP-1012AJP

ADSP-1012AJP

Analog Devices, Inc.

12 X 12 CMOS MULTIPLIER

9

Linear - Analog Multipliers, Dividers

1. Overview

Analog Multipliers and Dividers are linear integrated circuits (ICs) designed to perform mathematical operations on continuous analog signals. These devices multiply or divide two analog input signals to produce an output proportional to their product or quotient. Their ability to handle real-time signal processing tasks makes them critical in applications such as modulation/demodulation, power measurement, and sensor signal conditioning. With advancements in semiconductor technology, these ICs have become essential components in modern communication systems, industrial automation, and precision instrumentation.

2. Major Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Four-Quadrant MultipliersSupport both positive/negative inputs and outputs; high linearityCommunication signal modulation, phase-locked loops
Two-Quadrant MultipliersAccept one bipolar and one unipolar inputPower measurement, amplitude control
DividersPerform analog voltage/current division with stable quotient outputFrequency synthesis, feedback control systems
Programmable Gain Amplifiers (PGA)Digitally adjustable gain control via multipliersData acquisition systems, sensor calibration

3. Structure and Composition

Typical analog multipliers/dividers consist of: - Input differential amplifiers for signal conditioning - Core multiplier cells based on Gilbert cell architecture (using bipolar/CMOS transistors) - Temperature compensation circuits for stability - Output buffers for impedance matching - Packaging options: DIP, SOP, or QFN for PCB integration Advanced devices integrate laser-trimmed resistors for precision and on-chip references for calibration.

4. Key Technical Specifications

ParameterSignificance
Input Voltage RangeDetermines signal amplitude compatibility ( 1V to 10V typical)
BandwidthDefines operational frequency limits (DC to 100MHz range)
Accuracy (Error %)Critical for measurement systems (0.1%-1% error tolerance)
Power ConsumptionImpacts thermal performance and efficiency (5mA to 50mA typical)
Temperature StabilitySpecifies drift over industrial (-40 C to +85 C) or extended ranges

5. Application Areas

Key industries and equipment: - Telecommunications: Modems, spectrum analyzers, RF transceivers - Industrial Control: Programmable logic controllers (PLCs), sensor signal conditioners - Medical Devices: Ultrasound imaging systems, patient monitoring equipment - Consumer Electronics: Audio processors, smart meters - Case Example: Wireless base stations use AD835 multipliers for real-time signal modulation with 250MHz bandwidth.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
Analog DevicesAD835250MHz bandwidth, 10V input, 0.25% nonlinearity
Texas InstrumentsMPY63410MHz bandwidth, laser-trimmed accuracy, programmable gain
STMicroelectronicsLTC125612-bit resolution, low power consumption (5mA)
NXP SemiconductorsSA571Four-quadrant operation, automotive temperature rating

7. Selection Guidelines

Key considerations: - Match input/output ranges with system signal levels - Prioritize bandwidth for high-frequency applications - For precision tasks, select devices with laser-trimmed calibration - Evaluate temperature ratings for industrial environments - Consider package size for space-constrained designs - Balance cost vs. performance for volume production

8. Industry Trends

Emerging trends include: - Integration with digital interfaces (I2C, SPI) for programmable control - Development of radiation-hardened ICs for aerospace applications - Miniaturization through advanced CMOS processes (sub-10nm nodes) - Increased focus on low-power designs for IoT edge devices - Adoption in emerging fields like LiDAR signal processing and neural network analog accelerators

RFQ BOM Call Skype Email
Top