M5LV-128/104-5VC
M5LV-128/104-5VC
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Lattice Semiconductor Corporation

M5LV-128/104-5VC


M5LV-128/104-5VC
F11-M5LV-128/104-5VC
Active
IC CPLD 128MC 5.5NS 144TQFP
144-TQFP (20x20)

M5LV-128/104-5VC ECAD Model


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M5LV-128/104-5VC Attributes


Type Description Select
Mfr Lattice Semiconductor Corporation
Series MACH® 5
Package Tray
Programmable Type In System Programmable
Delay Time tpd(1) Max 5.5 ns
Voltage Supply - Internal 3V ~ 3.6V
Number of Macrocells 128
Number of I/O 104
Operating Temperature 0°C ~ 70°C (TA)
Mounting Type Surface Mount
Package / Case 144-LQFP
Supplier Device Package 144-TQFP (20x20)
Base Product Number M5LV-128

M5LV-128/104-5VC Datasheet Download


M5LV-128/104-5VC Overview



The M5LV-128/104-5VC is a low-power, high-performance, low-voltage integrated circuit (IC) manufactured by Altera Corporation. It is a field programmable gate array (FPGA) based on the Stratix architecture. This chip is designed for applications requiring high levels of performance, such as communications, signal processing, and embedded control.


The M5LV-128/104-5VC is a 128-bit wide FPGA that has a total of 104 logic elements and is capable of operating at a maximum frequency of up to 250 MHz. It has a maximum of 5.5 million logic elements and can support up to 16 megabits of embedded memory. It also includes a variety of digital signal processing (DSP) blocks, such as multipliers, adders, and accumulators.


The chip supports a variety of I/O protocols, including LVDS, LVCMOS, and SSTL. It also has a variety of power management features, such as power-down and power-up sequencing, and a low-power design that reduces power consumption.


This chip is suitable for a variety of applications, such as consumer electronics, automotive, industrial, and medical. It is also suitable for applications that require high levels of performance, such as communications, signal processing, and embedded control. It is also suitable for applications that require low power consumption or require the integration of multiple functions into a single chip.



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