Datasheets
TMS320C6A8168ACYG2 by: Texas Instruments

32-BIT, 1000MHz, RISC PROCESSOR, PBGA1031, 25 X 25 MM, 0.65 MM PITCH, GREEN, PLASTIC, FCBGA-1031

Part Details for TMS320C6A8168ACYG2 by Texas Instruments

Results Overview of TMS320C6A8168ACYG2 by Texas Instruments

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TMS320C6A8168ACYG2 Information

TMS320C6A8168ACYG2 by Texas Instruments is a Microprocessor.
Microprocessors are under the broader part category of Microcontrollers and Processors.

Microcontrollers (MCUs) are small, low-power integrated circuits used to control embedded systems. Microcontrollers are primarily used to automate and control devices. Read more about Microcontrollers and Processors on our Microcontrollers and Processors part category page.

Price & Stock for TMS320C6A8168ACYG2

Part # Distributor Description Stock Price Buy
DISTI # 86034373
Verical DSP Fixed-Point 16bit 1.2GHz 9600MIPS 1031-Pin FCBGA RoHS: Compliant Min Qty: 25 Package Multiple: 1 Date Code: 1101 Americas - 37
  • 25 $80.3875
$80.3875 Buy Now
Bristol Electronics   6
RFQ
Rochester Electronics Digital Signal Processor, 32-Bit, 1000MHz, PBGA1031 RoHS: Compliant Status: Obsolete Min Qty: 1 37
  • 25 $64.3100
  • 100 $61.0900
  • 500 $57.8800
  • 1,000 $54.6600
  • 10,000 $51.4500
$51.4500 / $64.3100 Buy Now

Part Details for TMS320C6A8168ACYG2

TMS320C6A8168ACYG2 CAD Models

TMS320C6A8168ACYG2 Part Data Attributes

TMS320C6A8168ACYG2 Texas Instruments
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TMS320C6A8168ACYG2 Texas Instruments 32-BIT, 1000MHz, RISC PROCESSOR, PBGA1031, 25 X 25 MM, 0.65 MM PITCH, GREEN, PLASTIC, FCBGA-1031
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Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Obsolete
Ihs Manufacturer TEXAS INSTRUMENTS INC
Part Package Code BGA
Package Description FCBGA-1031
Pin Count 1031
Reach Compliance Code compliant
ECCN Code 3A991.A.2
HTS Code 8542.31.00.01
Samacsys Manufacturer Texas Instruments
Address Bus Width 28
Barrel Shifter NO
Bit Size 32
Boundary Scan YES
Clock Frequency-Max 27 MHz
External Data Bus Width 64
Format FLOATING POINT
Integrated Cache YES
Internal Bus Architecture MULTIPLE
JESD-30 Code S-PBGA-B1031
JESD-609 Code e1
Length 25 mm
Low Power Mode YES
Moisture Sensitivity Level 4
Number of DMA Channels 64
Number of Serial I/Os 3
Number of Terminals 1031
Number of Timers 7
On Chip Data RAM Width 8
On Chip Program ROM Width 8
Operating Temperature-Max 95 °C
Operating Temperature-Min
Package Body Material PLASTIC/EPOXY
Package Code FBGA
Package Equivalence Code BGA1031,37X37,25
Package Shape SQUARE
Package Style GRID ARRAY, FINE PITCH
Peak Reflow Temperature (Cel) 245
Qualification Status Not Qualified
RAM (words) 589824
ROM Programmability FLASH
Seated Height-Max 3.31 mm
Supply Voltage-Max 1.05 V
Supply Voltage-Min 0.95 V
Supply Voltage-Nom 1 V
Surface Mount YES
Technology CMOS
Temperature Grade OTHER
Terminal Finish TIN SILVER COPPER
Terminal Form BALL
Terminal Pitch 0.65 mm
Terminal Position BOTTOM
Time@Peak Reflow Temperature-Max (s) 30
Width 25 mm
uPs/uCs/Peripheral ICs Type DIGITAL SIGNAL PROCESSOR, OTHER

TMS320C6A8168ACYG2 Related Parts

TMS320C6A8168ACYG2 Frequently Asked Questions (FAQ)

  • The recommended power-up sequence is to apply power to the core voltage (VDD) first, followed by the input/output voltage (VDDIO), and then the clock signal. This ensures proper initialization of the device.

  • Optimizing performance requires understanding the application's requirements and configuring the device accordingly. This includes selecting the appropriate clock frequency, cache settings, and optimizing code for the device's architecture. TI provides various tools and documentation to help with this process.

  • The maximum operating temperature range for the TMS320C6A8168ACYG2 is -40°C to 100°C. However, it's essential to ensure that the device is properly cooled to prevent overheating, especially in high-performance applications.

  • To ensure EMC, follow proper PCB design guidelines, use shielding, and implement filtering and decoupling techniques. TI provides guidelines and recommendations for EMC compliance in their documentation and application notes.

  • The FPU in the TMS320C6A8168ACYG2 is a single-precision FPU, which means it may not provide the same level of precision as a double-precision FPU. Additionally, the FPU may have limitations in terms of throughput and latency, depending on the specific application and usage.