XCR22LV10-15VO24C
XCR22LV10-15VO24C
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rohs

AMD Xilinx

XCR22LV10-15VO24C


XCR22LV10-15VO24C
F20-XCR22LV10-15VO24C
Active
EE PLD, 15 ns, CMOS, TSSOP, TSSOP24,.25
TSSOP, TSSOP24,.25

XCR22LV10-15VO24C ECAD Model


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XCR22LV10-15VO24C Attributes


Type Description Select
Rohs Code No
Part Life Cycle Code Obsolete
Supply Voltage-Nom 3.3 V
Propagation Delay 15 ns
Number of Inputs 22
Number of Outputs 10
Number of Dedicated Inputs 11
Number of I/O Lines 10
Programmable Logic Type EE PLD
Temperature Grade COMMERCIAL
Package Shape RECTANGULAR
Technology CMOS
Organization 11 DEDICATED INPUTS, 10 I/O
Architecture PAL-TYPE
Clock Frequency-Max 95 MHz
Number of Product Terms 132
Output Function MACROCELL
Power Supplies 3.3 V
Supply Voltage-Max 3.6 V
Supply Voltage-Min 3 V
JESD-30 Code R-PDSO-G24
Qualification Status Not Qualified
JESD-609 Code e0
Moisture Sensitivity Level 1
Operating Temperature-Max 70 °C
Number of Terminals 24
Package Body Material PLASTIC/EPOXY
Package Code TSSOP
Package Equivalence Code TSSOP24,.25
Package Shape RECTANGULAR
Package Style SMALL OUTLINE, THIN PROFILE, SHRINK PITCH
Surface Mount YES
Terminal Finish TIN LEAD
Terminal Form GULL WING
Terminal Pitch 650 µm
Terminal Position DUAL
Width 4.4 mm
Length 7.8 mm
Seated Height-Max 1.2 mm
Ihs Manufacturer XILINX INC
Part Package Code SOIC
Package Description TSSOP, TSSOP24,.25
Pin Count 24
Reach Compliance Code unknown
HTS Code 8542.39.00.01

XCR22LV10-15VO24C Datasheet Download


XCR22LV10-15VO24C Overview



The XCR22LV10-15VO24C chip model is a high-performance digital signal processing and embedded processing chip, making it suitable for a wide range of applications. It is able to process digital signals, images, and other data quickly and accurately, and is able to be programmed using the HDL language. This makes it suitable for a variety of scenarios, from network applications to image processing and embedded systems.


The XCR22LV10-15VO24C chip model is capable of being used in the era of fully intelligent systems. It is capable of recognizing patterns and making decisions based on data, making it a powerful tool for artificial intelligence. It is also capable of performing complex calculations quickly, making it suitable for applications such as autonomous vehicles and robotics.


The product description of the XCR22LV10-15VO24C chip model includes a wide range of features and specifications. It has a low power consumption and a wide operating temperature range, making it suitable for a variety of environments. It also has a high level of integration, allowing for complex tasks to be performed with minimal hardware. Additionally, it is designed to be compatible with a wide range of development boards, making it easy to integrate into existing systems.


When designing systems with the XCR22LV10-15VO24C chip model, there are a few important considerations to keep in mind. It is important to ensure that the system will be able to handle the power requirements of the chip, as well as ensuring that the board and other hardware are compatible. Additionally, it is important to ensure that the code written for the chip is optimized for the hardware, as this can significantly improve the performance of the system.


Case studies of the XCR22LV10-15VO24C chip model have been done in a variety of applications. One example is its use in autonomous vehicles, where it is used to process sensor data and make decisions based on the data. Another example is its use in robotics, where it is used to control the movement of the robot and to process data from sensors. In both cases, the chip is able to perform complex calculations quickly and accurately, making it a powerful tool for these applications.


In conclusion, the XCR22LV10-15VO24C chip model is a powerful and versatile digital signal processing and embedded processing chip. It is capable of being used in a variety of scenarios, from networks to image processing and embedded systems. It is also capable of being used in the era of fully intelligent systems, making it a powerful tool for artificial intelligence. When designing systems with the chip, it is important to ensure that the system will be able to handle the power requirements of the chip, as well as ensuring that the board and other hardware are compatible. Additionally, it is important to ensure that the code written for the chip is optimized for the hardware, as this can significantly improve the performance of the system.



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