This datasheet describes the electrical characteristics, switching characteristics, configuration specifications, and I/O timing for Arria
®
10 devices.
Arria 10 devices are offered in extended and industrial grades. Extended devices are offered in –E1 (fastest), –E2, and –E3 speed grades. Industrial
grade devices are offered in the –I1, –I2, and –I3 speed grades.
The suffix after the speed grade denotes the power options offered in Arria 10 devices.
•
•
•
•
L—Low static power
S—Standard power
M—Enabled with the V
CC
PowerManager feature (you can power V
CC
and V
CCP
at nominal voltage of 0.90 V or lower voltage of 0.83 V)
V—Supported with the SmartVID feature (lowest static power)
Related Information
Arria 10 Device Overview
Provides more information about the densities and packages of devices in the Arria 10 family.
Electrical Characteristics
The following sections describe the operating conditions and power consumption of Arria 10 devices.
Operating Conditions
Arria 10 devices are rated according to a set of defined parameters. To maintain the highest possible performance and reliability of the Arria 10
devices, you must consider the operating requirements described in this section.
and Trademark Office and in other countries. All other words and logos identified as trademarks or service marks are the property of their respective holders as described at
www.altera.com/common/legal.html.
Altera
warrants performance of its semiconductor products to current specifications in accordance with Altera's standard warranty, but reserves the right to make changes to any products and services at any time without
notice. Altera assumes no responsibility or liability arising out of the application or use of any information, product, or service described herein except as expressly agreed to in writing by Altera. Altera customers are
advised to obtain the latest version of device specifications before relying on any published information and before placing orders for products or services.
2015 Altera Corporation. All rights reserved. ALTERA, ARRIA, CYCLONE, ENPIRION, MAX, MEGACORE, NIOS, QUARTUS and STRATIX words and logos are trademarks of Altera Corporation and registered in the U.S. Patent
ISO
9001:2008
Registered
www.altera.com
101 Innovation Drive, San Jose, CA 95134
2
Absolute Maximum Ratings
A10-DATASHEET
2015.12.31
Absolute Maximum Ratings
This section defines the maximum operating conditions for Arria 10 devices. The values are based on experiments conducted with the devices and
theoretical modeling of breakdown and damage mechanisms. The functional operation of the device is not implied for these conditions.
Caution:
Conditions outside the range listed in the following table may cause permanent damage to the device. Additionally, device operation at
the absolute maximum ratings for extended periods of time may have adverse effects on the device.
Table 1: Absolute Maximum Ratings for Arria 10 Devices—Preliminary
Symbol
Description
Condition
Minimum
Maximum
Unit
V
CC
V
CCP
V
CCERAM
V
CCPT
V
CCBAT
V
CCPGM
V
CCIO
V
CCA_PLL
V
CCT_GXB
V
CCR_GXB
V
CCH_GXB
V
CCL_HPS
V
CCIO_HPS
(1)
Core voltage power supply
Periphery circuitry and transceiver fabric interface power
supply
Embedded memory power supply
Power supply for programmable power technology and I/O
pre-driver
Battery back-up power supply for design security volatile key
register
Configuration pins power supply
I/O buffers power supply
Phase-locked loop (PLL) analog power supply
Transmitter power
Receiver power
Transmitter output buffer power
HPS core voltage and periphery circuitry power supply
HPS I/O buffers power supply
—
—
—
—
—
(1)
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
–0.50
1.21
1.21
1.36
2.46
2.46
2.46
4.10
2.46
2.46
1.34
1.34
2.46
1.27
4.10
2.46
V
V
V
V
V
V
V
V
V
V
V
V
V
V
V
3 V I/O
LVDS I/O
—
—
—
—
—
3 V I/O
LVDS I/O
The LVDS I/O values are applicable to all dedicated and dual-function configuration I/Os.
Arria 10 Device Datasheet
Send Feedback
Altera Corporation
A10-DATASHEET
2015.12.31
Maximum Allowed Overshoot and Undershoot Voltage
3
Symbol
Description
Condition
Minimum
Maximum
Unit
V
CCIOREF_HPS
V
CCPLL_HPS
I
OUT
T
J
T
STG
HPS I/O pre-driver power supply
HPS PLL power supply
DC output current per pin
Operating junction temperature
Storage temperature (no bias)
—
—
—
—
—
–0.50
–0.50
–25
–55
–65
2.46
2.46
25
125
150
V
V
mA
°C
°C
Maximum Allowed Overshoot and Undershoot Voltage
During transitions, input signals may overshoot to the voltage listed in the following table and undershoot to –2.0 V for input currents less than
100 mA and periods shorter than 20 ns.
The maximum allowed overshoot duration is specified as a percentage of high time over the lifetime of the device. A DC signal is equivalent to
100% duty cycle.
For example, a signal that overshoots to 2.70 V for LVDS I/O can only be at 2.70 V for ~4% over the lifetime of the device.
Table 2: Maximum Allowed Overshoot During Transitions for Arria 10 Devices—Preliminary
This table lists the maximum allowed input overshoot voltage and the duration of the overshoot voltage as a percentage of device lifetime. The LVDS I/O
values are applicable to the
VREFP_ADC
and
VREFN_ADC
I/O pins.
Symbol
Description
Condition (V)
LVDS I/O
(2)
3 V I/O
Overshoot Duration as % at T
J
= 100°C
Unit
2.50
2.55
Vi (AC)
AC input voltage
2.60
2.65
2.70
> 2.70
3.80
3.85
3.90
3.95
4.00
> 4.00
100
42
18
9
4
No overshoot allowed
%
%
%
%
%
%
(2)
The LVDS I/O values are applicable to all dedicated and dual-function configuration I/Os.
Altera Corporation
Arria 10 Device Datasheet
Send Feedback
4
Recommended Operating Conditions
A10-DATASHEET
2015.12.31
Recommended Operating Conditions
This section lists the functional operation limits for the AC and DC parameters for Arria 10 devices.
Recommended Operating Conditions
Table 3: Recommended Operating Conditions for Arria 10 Devices—Preliminary
This table lists the steady-state voltage values expected from Arria 10 devices. Power supply ramps must all be strictly monotonic, without plateaus.
Symbol
Description
Condition
Minimum
(3)
Typical
Maximum
(3)
Unit
Standard and low power
V
CC
Core voltage power supply
V
CC
PowerManager
(5)
SmartVID
(6)
V
CCP
Periphery circuitry and transceiver
fabric interface power supply
Standard and low power
V
CC
PowerManager
(5)
SmartVID
(6)
1.8 V
V
CCPGM
V
CCERAM
Configuration pins power supply
Embedded memory power supply
1.5 V
1.2 V
0.9 V
0.87
0.8, 0.87
0.8
0.87
0.8, 0.87
0.8
1.71
1.425
1.14
0.87
0.9
(4)
0.83, 0.9
—
0.9
(4)
0.83, 0.9
—
1.8
1.5
1.2
0.9
(4)
0.93
0.86, 0.93
0.93
0.93
0.86, 0.93
0.93
1.89
1.575
1.26
0.93
V
V
V
V
V
V
V
V
V
V
(3)
(4)
(5)
(6)
This value describes the budget for the DC (static) power supply tolerance and does not include the dynamic tolerance requirements. Refer to the
PDN tool for the additional budget for the dynamic tolerance requirements.
You can operate –1 and –2 speed grade devices at 0.9 V or 0.95 V typical value. You can operate -3 speed grade device at only 0.9 V typical value.
Core performance shown in this datasheet is applicable for the operation at 0.9 V. Operating at 0.95 V results in higher core performance and higher
power consumption. For more information about the performance and power consumption of 0.95 V operation, refer to the Quartus
®
Prime
software timing reports, PowerPlay Power Analyzer report, and Early Power Estimator (EPE).
You can operate V
CC
PowerManager devices at either 0.83 V or 0.9 V. Power V
CC
and V
CCP
at 0.9 V to achieve –1 speed grade performance. Power
V
CC
and V
CCP
at 0.83 V to achieve lower performance using the lowest power.
SmartVID is supported in devices with –2V and –3V speed grades only.
Arria 10 Device Datasheet
Send Feedback
Altera Corporation
A10-DATASHEET
2015.12.31
Recommended Operating Conditions
5
Symbol
Description
Condition
Minimum
(3)
Typical
Maximum
(3)
Unit
V
CCBAT
V
CCPT
(7)
Battery back-up power supply
(For design security volatile key
register)
Power supply for programmable
power technology and I/O pre-driver
1.8 V
1.2 V
1.8 V
3.0 V (for 3 V I/O only)
2.5 V (for 3 V I/O only)
1.8 V
1.71
1.14
1.71
2.85
2.375
1.71
1.425
(8)
1.8
1.2
1.8
3.0
2.5
1.8
1.5
1.35
1.25
1.2
1.8
1.25
—
—
—
—
—
1.89
1.26
1.89
3.15
2.625
1.89
1.575
(8)
V
V
V
V
V
V
V
V
V
V
V
V
V
V
V
°C
°C
V
CCIO
I/O buffers power supply
1.5 V
1.35 V
1.25 V
1.2 V
1.19
(8)
1.31
(8)
V
CCA_PLL
V
REFP_ADC
V
I
(9)
PLL analog voltage regulator power
supply
Precision voltage reference for
voltage sensor
DC input voltage
Output voltage
Operating junction temperature
—
—
3 V I/O
LVDS I/O
—
Extended
Industrial
1.71
1.2475
–0.3
–0.3
0
0
–40
1.89
1.2525
3.3
2.19
V
CCIO
100
100
V
O
T
J
(3)
(7)
(8)
(9)
This value describes the budget for the DC (static) power supply tolerance and does not include the dynamic tolerance requirements. Refer to the
PDN tool for the additional budget for the dynamic tolerance requirements.
If you do not use the design security feature in Arria 10 devices, connect V
CCBAT
to a 1.5-V or 1.8-V power supply. Arria 10 power-on reset (POR)
circuitry monitors V
CCBAT
. Arria 10 devices do not exit POR if V
CCBAT
is not powered up.
For minimum and maximum voltage values, refer to the I/O Standard Specifications section.
The LVDS I/O values are applicable to all dedicated and dual-function configuration I/Os.
Abstract: This paper introduces a DSP-based USB port vibration and noise signal acquisition and analysis system construction scheme, and analyzes its modules. This scheme fully realizes in-system prog...
[font=微软雅黑][size=4] The current situation is this. I use the R7F0C809 hardware SPI to read the data of AFE4490, and I can get the sampling values of red light and infrared light normally. The next ste...
The total time for each sampling and conversion of ADC10 is: sampling time + conversion time[/size][/font][/backcolor][/color][/p][p=26, null, left][color=#333333][backcolor=rgb(255, 255, 255)][font=A...
This is the Flyte levitating light bulb. In its elm wood base, there are hidden magnets and inductors, which can both levitate and charge wirelessly. This wireless charging base can also charge mobile...
I read the first few pages of Hello Amplifier, a very good book. I made the following notes.
【Input offset voltage】
For any amplifier, whether open-loop or feedback connected, when both input terminal...
This program is written to simulate the serial port hardware mechanism. When used, a timed interrupt can be set with a time interval of 1/4 baud rate. The receiving function is called once for ea...[Details]
introduction
1 The significance of using RTOS on MSP430
It is understandable that it is meaningless to use RTOS on MSP430. Because the hardware resources of MSP430 are limited (for exampl...[Details]
1. Introduction
RFID (radio frequency identification) is a non-contact automatic identification technology that emerged in the 1990s. It uses the characteristics of radio frequency signal prop...[Details]
When the WDP500-2A plane grating monochromator is used to test the emission wavelength of a high-power laser diode at different currents, the matching of the laser diode has the disadvantages of lo...[Details]
Google's driverless technology is not only an eye-catching technology, but also a subversion of the car usage model.
Those who have watched anti-terrorism films and TV dramas must have been im...[Details]
DSP (digital signal processor) is used more and more frequently in today's engineering applications. There are three main reasons for this: first, it has powerful computing power and is capable of ...[Details]
Electronic systems are located at different points on the automotive power bus and therefore often need to operate under very stringent power requirements. These include load dump, cold crank, very lo...[Details]
1. With the development of modern industry and the continuous improvement of automation, some medium and large control systems have been greatly facilitated, which not only makes control easier, bu...[Details]
Overview
As a remote network communication control method with advanced technology, high reliability, complete functions and reasonable cost, CAN-bus has been widely used in various automa...[Details]
1. Introduction
Testing the temperature of steel billets before rolling is an important measure to ensure the quality of steel. Traditional manual testing is difficult to ensure product qu...[Details]
0 Introduction
With the rise and continuous improvement of the solid-state lighting industry, light-emitting diodes (LEDs) have become an alternative lighting technology and are gr...[Details]
The potentiometer is an adjustable electronic component. The main functions of the potentiometer in the circuit are as follows:
1. Used as a voltage divider
A potentiometer is a continuou...[Details]
a. Keep the battery clean, wipe off the spilled electrolyte, contaminated dirt and dust in time; keep the poles and terminal clamps clean and in good contact, and apply vaseline or butter to preven...[Details]
The production process of lithium batteries does not mention the previous processes such as material preparation, winding, liquid injection, and packaging, but only talks about the final formation ...[Details]
Multimedia processors are often the most power-hungry devices in portable electronic devices. Common ways to reduce CPU power requirements are to reduce clock frequency or operating voltage, but th...[Details]