Overview


Refer to http://trenz.org/teb0912-info for the current online version of this manual and other available documentation.

Key Features

  • Vitis/Vivado 2024.2
  • PetaLinux
  • SD
  • 2x ETH
  • MAC from EEPROM
  • I2C
  • PCIe (M2 and wifi)
  • RTC (ISL12020)
  • CAN
  • FMeter
  • PCIe
  • LED
  • Modified FSBL for SI5395 programming (Vitis Classic and Petalinux patch)

Revision History

DateVivadoProject BuiltAuthorsDescription
2025-09-042024.2TEB0912-teb0912-rd_noprebuilt-vivado_2024.2-build_1_20250903102339.zip
TEB0912-teb0912-rd-vivado_2024.2-build_1_20250903102339.zip
John Hartfiel
  • Add Boot log example
  • update uboot config
  • update init.sh with CPLD Firmware read example
2025-08-292024.2TEB0912-teb0912-rd_noprebuilt-vivado_2024.2-build_1_20250828134000.zip
TEB0912-teb0912-rd-vivado_2024.2-build_1_20250828134000.zip
John Hartfiel
  • 2024.2 release
  • Rename project from test_board to teb0912-rd(TEB0912 reference design)
  • Vivado
    • Update Board File with PL DDR
    • Update Block Design (PL DDR Size fix) 
    • Replace amd xl ips with inline ips
  • Vitis
    • Replace "Hello TEB0912" App to general "Hello Trenz" App
    • Update FSBL Patch: 2024.2 FSBL
  • Petalinux
    • Update FSBL Patch
    • Update startup App
    • Update webfwu App
    • Change rootfs config: Libs
    • Change petalinux config: QSPI offsets, identifier
    • Change uboot config: boot option, eeprom device tree
    • Change Device Tree: QSPI, Fabric Clock, GTR CLK, ETH 
    • Add QSPI patch
    • Add generic boot.scr
2023-08-042022.2TEB0912-test_board_noprebuilt-vivado_2022.2-build_3_20230804122209.zip
TEB0912-test_board-vivado_2022.2-build_3_20230804122209.zip
Manuela Strücker
  • 2022.2 release
2021-12-212020.2TEB0912-test_board_noprebuilt-vivado_2020.2-build_9_20211220123954.zip
TEB0912-test_board-vivado_2020.2-build_9_20211220123937.zip
Mohsen Chamanbaz
  • Bugfix (disable SD card write protection )
2021-07-082020.2

TEB0912-test_board_noprebuilt-vivado_2020.2-build_5_20210708093945.zip
TEB0912-test_board-vivado_2020.2-build_5_20210708093928.zip

Mohsen Chamanbaz
  • FSBL files update
2021-06-282020.2

TEB0912-test_board_noprebuilt-vivado_2020.2-build_5_20210628141347.zip
TEB0912-test_board-vivado_2020.2-build_5_20210628141329.zip

Mohsen Chamanbaz
  • 2020.2 release
2020-06-102019.2TEB0912-test_board_noprebuilt-vivado_2019.2-build_12_20200610085718.zip
TEB0912-test_board-vivado_2019.2-build_12_20200610085620.zip
John Hartfiel
  • initial release
Design Revision History

Release Notes and Know Issues

IssuesDescriptionWorkaroundTo be fixed version
No known issues---------
Known Issues

Requirements

Software

SoftwareVersionNote
Vitis2024.2needed, Vivado is included into Vitis installation
PetaLinux2024.2needed
SI ClockBuilder Pro---optional
Software

Hardware

Basic description of TE Board Part Files is available on TE Board Part Files.

Complete List is available on "<project folder>\board_files\*_board_files.csv"

Design supports following modules:

Module ModelBoard Part Short NamePCB Revision SupportDDRQSPI FlashEMMCOthersNotes
TEB0912-02-ABI21-A02_11eg_1e_4gbREV024GB128MBNA4GB PL DDR
TEB0912-03-ABI21-A*11eg_1e_4gbREV034GB128MBNA4GB PL DDR

*used as reference

Hardware Modules


Design supports following carriers:

Carrier ModelNotes
---

*used as reference

Hardware Carrier

Additional HW Requirements:

Additional HardwareNotes
SD Cardwith FAT32 partition for booting
2x ETH cableoptional for ethernet connection
Micro USB cablefor JTAG/UART
Power cablewith Molex Mini-Fit Female Crimp Terminal 5556 (0039000074) and Molex housing (0039012045)
Power supply unit12V 2A recommended

*used as reference

Additional Hardware

Content

For general structure and usage of the reference design, see Project Delivery - Xilinx devices

Design Sources

TypeLocationNotes
Vivado<project folder>\block_design
<project folder>\constraints
<project folder>\ip_lib
<project folder>\board_files
Vivado Project will be generated by TE Scripts
Vitis<project folder>\sw_libAdditional Software Template for Vitis and apps_list.csv with settings automatically for Vitis app generation
PetaLinux<project folder>\os\petalinuxPetaLinux template with current configuration
Design sources

Additional Sources

TypeLocationNotes
SI5395<project folder>\misc\PLL\Si5395SI5395 Project with current PLL Configuration
init.sh<project folder>\misc\sd\Additional Initialization Script for Linux to read temperature of six temperature sensors on the board. For more information refer to TEB0912 CPLD.
Additional design sources

Prebuilt


File

File-Extension

Description

BIF-File*.bifFile with description to generate Bin-File
BIN-File*.binFlash Configuration File with Boot-Image (Zynq-FPGAs)
BIT-File*.bitFPGA (PL Part) Configuration File
Boot Script-File*.scr

Distro Boot Script file

DebugProbes-File*.ltxDefinition File for Vivado/Vivado Labtools Debugging Interface
Diverse Reports---Report files in different formats
Device Tree*.dtsDevice tree (2 possible, one for u-boot and one for linux)
Hardware-Platform-Description-File*.xsaExported Vivado hardware description file for Vitis and PetaLinux
LabTools Project-File*.lprVivado Labtools Project File
OS-Image*.ubImage with Linux Kernel (On Petalinux optional with Devicetree and RAM-Disk)
Software-Application-File*.elfSoftware Application for Zynq or MicroBlaze Processor Systems
Prebuilt files (only on ZIP with prebult content)

Download

Reference Design is only usable with the specified Vivado/Vitis/PetaLinux version. Do never use different Versions of Xilinx Software for the same Project.

Reference Design is available on:

Design Flow


Reference Design is available with and without prebuilt files. It's recommended to use TE prebuilt files for first launch.

Trenz Electronic provides a tcl based built environment based on Xilinx Design Flow.

See also:

The Trenz Electronic FPGA Reference Designs are TCL-script based project. Command files for execution will be generated with "_create_win_setup.cmd" on Windows OS and "_create_linux_setup.sh" on Linux OS.

TE Scripts are only needed to generate the vivado project, all other additional steps are optional and can also executed by Xilinx Vivado/Vitis GUI. For currently Scripts limitations on Win and Linux OS see: Project Delivery Currently limitations of functionality

Caution! Win OS has a 260 character limit for path lengths which can affect the Vivado tools. To avoid this issue, use Virtual Drive or the shortest possible names and directory locations for the reference design (for example "x:\<project folder>")

  1. Run _create_win_setup.cmd/_create_linux_setup.sh and follow instructions on shell:

    _create_win_setup.cmd/_create_linux_setup.sh
    ------------------------Set design paths----------------------------
    -- Run Design with: _create_win_setup
    -- Use Design Path: <absolute project path>
    --------------------------------------------------------------------
    -------------------------TE Reference Design---------------------------
    --------------------------------------------------------------------
    -- (0)  Module selection guide, project creation...prebuilt export...
    -- (1)  Create minimum setup of CMD-Files and exit Batch
    -- (2)  Create maximum setup of CMD-Files and exit Batch
    -- (3)  (internal only) Dev
    -- (4)  (internal only) Prod
    -- (c)  Go to CMD-File Generation (Manual setup)
    -- (d)  Go to Documentation (Web Documentation)
    -- (g)  Install Board Files from Xilinx Board Store (beta)
    -- (a)  Start design with unsupported Vivado Version (beta)
    -- (x)  Exit Batch (nothing is done!)
    ----
    Select (ex.:'0' for module selection guide):
  2. Press 0 and enter to start "Module Selection Guide"
  3. Create project and follow instructions of the product selection guide, settings file will be configured automatically during this process.
    • optional for manual changes: Select correct device and Xilinx install path on "design_basic_settings.cmd" and create Vivado project with "vivado_create_project_guimode.cmd"

      Note: Select correct one, see also Vivado Board Part Flow

  4. Create hardware description file (.xsa file) for PetaLinux project and export to prebuilt folder

    run on Vivado TCL (Script generates design and export files into "<project folder>\prebuilt\hardware\<short name>")
    TE::hw_build_design -export_prebuilt

    Using Vivado GUI is the same, except file export to prebuilt folder.

  5. Create and configure your PetaLinux project with exported .xsa-file, see PetaLinux KICKstart
    • use TE Template from "<project folder>\os\petalinux"
    • use exported .xsa file from "<project folder>\prebuilt\hardware\<short name>" . Note: HW Export from Vivado GUI creates another path as default workspace.

    • The build images are located in the "<plnx-proj-root>/images/linux" directory

  6. (Optional) Configure the boot.scr file as needed, see Distro Boot with Boot.scr

  7. Generate Programming Files with Vitis (recommended)
    1. Copy PetaLinux build image files to prebuilt folder
      • copy u-boot.elf, system.dtb, bl31.elf, image.ub and boot.scr from "<plnx-proj-root>/images/linux" to prebuilt folder

        "<project folder>\prebuilt\os\petalinux\<ddr size>" or "<project folder>\prebuilt\os\petalinux\<short name>"

    2. Generate Programming Files with Vitis
      run on Vivado TCL (Script generates applications and bootable files, which are defined in "test_board\sw_lib\apps_list.csv")
      TE::sw_run_vitis -all
      TE::sw_run_vitis (optional; Start Vitis from Vivado GUI or start with TE Scripts on Vivado TCL)

      TCL scripts generate also platform project, this must be done manually in case GUI is used. See Vitis

  8. Generate Programming Files with Petalinux (alternative), see PetaLinux KICKstart

Launch


Programming

Check Module and Carrier TRMs for proper HW configuration before you try any design.

Reference Design is also available with prebuilt files. It's recommended to use TE prebuilt files for first launch.

Xilinx documentation for programming and debugging: Vivado/Vitis/SDSoC-Xilinx Software Programming and Debugging

Get prebuilt boot binaries

  1. Run _create_win_setup.cmd/_create_linux_setup.sh and follow instructions on shell
  2. Press 0 and enter to start "Module Selection Guide"
    1. Select assembly version
    2. Validate selection
    3. Select create and open delivery binary folder

      Note: Folder "<project folder>\_binaries_<Article Name>" with subfolder "boot_<app name>" for different applications will be generated

QSPI-Boot mode

Option for Boot.bin on QSPI Flash and image.ub and boot.scr on SD or USB.

  1. Connect JTAG and power on carrier with module
  2. Open Vivado Project with "vivado_open_existing_project_guimode.cmd" or if not created, create with "vivado_create_project_guimode.cmd"

    run on Vivado TCL (Script programs BOOT.bin on QSPI flash)
    TE::pr_program_flash -swapp u-boot
    TE::pr_program_flash -swapp hello_trenz (optional)
  3. Copy image.ub and boot.scr on SD or USB
    • use files from "<project folder>\_binaries_<Article Name>\boot_linux" from generated binary folder,see: Get prebuilt boot binaries
    • or use prebuilt file location, see "<project folder>\prebuilt\file_location.txt"
  4. Set Boot Mode to QSPI-Boot and insert SD or USB.
    • Depends on Carrier, see carrier TRM.

SD-Boot mode

  1. Copy image.ub, boot.src and Boot.bin on SD
    • use files from "<project folder>\_binaries_<Article Name>\boot_linux" from generated binary folder, see: Get prebuilt boot binaries
    • or use prebuilt file location, see "<project folder>\prebuilt\file_location.txt"
  2. Set Boot Mode to SD-Boot.
    • Depends on Carrier, see carrier TRM.
  3. Insert SD-Card in SD-Slot.

JTAG

Not used on this example.

Usage

  1. Prepare HW like described on section Programming
  2. Connect UART USB (most cases same as JTAG)
  3. Select SD Card as Boot Mode (or QSPI - depending on step 1)

    Note: See TRM of the Carrier, which is used.

    Starting with Petalinux version 2020.1, the industry standard "Distro-Boot" boot flow for U-Boot was introduced, which significantly expands the possibilities of the boot process and has the primary goal of making booting much more standardised and predictable.
    The boot options described above describe the common boot processes for this hardware; other boot options are possible.
    For more information see Distro Boot with Boot.scr

  4. (Optional) Insert PCIe Card (detection depends on Linux driver. Only some basic drivers are installed)
  5. (Optional) Connect Network Cable
  6. Power On PCB

    1. ZynqMP Boot ROM loads FSBL from SD/QSPI into OCM,

    2. FSBL init the PS, programs the PL using the bitstream and loads PMU, ATF and U-boot from SD/QSPI into DDR,

    3. U-boot loads Linux (image.ub) from SD/QSPI/... into DDR

Linux

  1. Open Serial Console (e.g. putty)
    • Speed: 115200
    • select COM Port

      Win OS, see device manager, Linux OS see dmesg |grep tty (UART is *USB1)

  2. Linux Console:

    # password disabled
    petalinux login: root
    Password: root

    Note: Wait until Linux boot finished

  3. You can use Linux shell now.

    i2cdetect -y -r 0	(check I2C 1 Bus)
    dmesg | grep rtc	(RTC check)
    udhcpc				(ETH0/1 check)
    lspci				(PCIe check)
  4. Option Features

    • Webserver to get access to ZynqMP
      • insert IP on web browser to start web interface
    • init.sh scripts
      • add init.sh script on SD, content will be load automatically on startup (template included in "<project folder>\misc\SD")
      • This Script file is responsible to read temperature of six temperature sensors on the board. For more information refer to TEB0912 CPLD.

Vivado HW Manager

Open Vivado HW-Manager and add VIO signal to dashboard (*.ltx located on prebuilt folder)

  • Control:
    • User LED Control (D16, D15)
  • Monitoring:
    • MGT CLK Measurement:
      • Open Vivado HW-Manager and add VIO signal to dashboard (*.ltx located on prebuilt folder). Set radix from VIO signals to unsigned integer.Note: Frequency Counter is inaccurate and displayed unit is Hz
      • Default
        • B128_CLK_P, B131_CLK_P: 125MHz
        • B129_CL_P, B130_CLK_P: 312,5MHz
        • B224_CLK1 - B231_CLK1: 125MHz
        • B65_HP_CLK_P: 200MHz

Vivado Hardware Manager

System Design - Vivado


Block Design

Block Design


PS Interfaces

Activated interfaces:

TypeNote
DDR
QSPIMIO
SD1MIO
I2C0MIO
I2C1MIO
UART0MIO
GPIO0..2MIO
SWDT0..1
TTC0..3
GEM2MIO
GEM3MIO
PCIeMIO/GTP
CAN0MIO
PS Interfaces

Constrains

Basic module constrains

_i_bitgen_common.xdc
set_property BITSTREAM.GENERAL.COMPRESS TRUE [current_design]
set_property BITSTREAM.CONFIG.UNUSEDPIN PULLUP [current_design]

Design specific constrain

_i_io.xdc
# AB34 MGT_128_CLK_P 
# AB35 MGT_128_CLK_N 
# W32 MGT_129_CLK_P 
# W33 MGT_129_CLK_N 
# R32 MGT_130_CLK_P 
# R33 MGT_130_CLK_N 
# L32 MGT_131_CLK_P 
# L33 MGT_131_CLK_N 
set_property PACKAGE_PIN AB34 [get_ports {CLK_IN_D_128_131_clk_p[0]}]
set_property PACKAGE_PIN W32 [get_ports {CLK_IN_D_128_131_clk_p[1]}]
set_property PACKAGE_PIN R32 [get_ports {CLK_IN_D_128_131_clk_p[2]}]
set_property PACKAGE_PIN L32 [get_ports {CLK_IN_D_128_131_clk_p[3]}]

# AB11 MGT_228_CLK_N 
# AB12 MGT_228_CLK_P 
# Y11 MGT_229_CLK_N 
# Y12 MGT_229_CLK_P 
# V11 MGT_230_CLK_N 
# V12 MGT_230_CLK_P 
# T11 MGT_231_CLK_N 
# T12 MGT_231_CLK_P 
set_property PACKAGE_PIN AB12 [get_ports {CLK_IN_D_228_231_clk_p[0]}]
set_property PACKAGE_PIN Y12 [get_ports {CLK_IN_D_228_231_clk_p[1]}]
set_property PACKAGE_PIN V12 [get_ports {CLK_IN_D_228_231_clk_p[2]}]
set_property PACKAGE_PIN T12 [get_ports {CLK_IN_D_228_231_clk_p[3]}]

# AK11 MGT_224_CLK_N 
# AK12 MGT_224_CLK_P 
# AH11 MGT_225_CLK_N 
# AH12 MGT_225_CLK_P 
# AF11 MGT_226_CLK_N 
# AF12 MGT_226_CLK_P 
# AD11 MGT_227_CLK_N 
# AD12 MGT_227_CLK_P 
set_property PACKAGE_PIN AK12 [get_ports {CLK_IN_D_224_227_clk_p[0]}]
set_property PACKAGE_PIN AH12 [get_ports {CLK_IN_D_224_227_clk_p[1]}]
set_property PACKAGE_PIN AF12 [get_ports {CLK_IN_D_224_227_clk_p[2]}]
set_property PACKAGE_PIN AD12 [get_ports {CLK_IN_D_224_227_clk_p[3]}]

# B65 CLK
set_property PACKAGE_PIN AR24 [get_ports {CLK_IN_D_B65_clk_p[0]}]
set_property IOSTANDARD LVDS [get_ports {CLK_IN_D_B65_clk_p[0]}]


#get_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN D3 } [get_ports {+3.3V_ETH_PHY_EN}] #removed on REV02 --> use unused pullup for rev01
#set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN C1 } [get_ports {+3.3V_M2_KeyE_EN}] #removed on REV02 --> use unused pullup for rev01
#set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN G10 } [get_ports {ssd1_perstn[0]}]
set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN B6 } [get_ports {LED[0]}]
set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN B5 } [get_ports {LED[1]}]
set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN A5 } [get_ports {LED[2]}]
set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN A4 } [get_ports {LED[3]}]
#set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN G13 } [get_ports {M2M_SLEEP[0]}] 
#set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN F13 PULLUP TRUE } [get_ports {ssd1_wake[0]}] #removed on REV02 --> use unused pullup for rev01
#
# B10 FF10_MPRS 
# C10 FF01_MPRS 
# C11 FF00_MPRS 
# D11 FF31_MPRS 
# D12 FF30_MPRS 
# E10 FF20_MPRS 
# E11 FF11_MPRS 
# E12 FF21_MPRS 
# J12 FFA_SDA 
# J14 FFA_SCL 
# K10 FFD_MPRS 
# K11 FFD_MSEL 
# K12 FFC_MPRS 
# K14 FFA_INTL 
# L10 FFD_INTL 
# L12 FFC_MSEL 
# L13 FFA_MPRS 
# L14 FFA_MSEL 
# M10 FFD_SDA 
# M11 FFB_SDA 
# M13 FFB_SCL 
# N10 FFD_SCL 
# N11 FF_AB_RSTL 
# N12 FF_CD_RSTL 
# N13 FFB_MSEL 
# N14 FFB_INTL 
# P12 FFC_INTL 
# P13 FFC_SCL 
# P14 FFB_MPRS 
# R14 FFC_SDA 
#
# E3 PEX_FATAL_ERRORn REV02 only 
# E4 PEX_GPIO3 REV02 only 
# E5 PEX_LANE_GOOD2n REV02 only 
# F4 PEX_LANE_GOOD1n REV02 only 
# F5 PEX_LANE_GOOD0n REV02 only 
#
# F6 DSPLL1_RST_N 
# F7 DSPLL0_RST_N 
#
# G11 W_DISABLE1n REV01 other name 
# G12 W_DISABLE2n REV01 other name 
# G13 M2M_SLEEP REV02 only
#
# F10 SSD1_CLKRQ REV01 only 
# F13 SSD1_WAKE REV01 only 
# G10 SSD1_PERSTn REV01 only 
# G13 M2M_SLEEP REV01 other nameSSD1_SLEEP 


set_property -dict { IOSTANDARD LVCMOS18 PACKAGE_PIN AK23 } [get_ports {BUTTON[0]}]
set_property -dict { IOSTANDARD LVCMOS18 PACKAGE_PIN AL23 } [get_ports {BUTTON[1]}]
set_property -dict { IOSTANDARD LVCMOS18 PACKAGE_PIN AJ24 } [get_ports {BUTTON[2]}]
set_property -dict { IOSTANDARD LVCMOS18 PACKAGE_PIN AK24 } [get_ports {BUTTON[3]}]

set_property -dict { IOSTANDARD DIFF_SSTL12_DCI PACKAGE_PIN G26 } [get_ports {diff_clock_rtl_clk_p}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN N24 } [get_ports {ddr4_act_n}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN J27 } [get_ports {ddr4_adr[0]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN J24 } [get_ports {ddr4_adr[1]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN F27 } [get_ports {ddr4_adr[2]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN E26 } [get_ports {ddr4_adr[3]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN M25 } [get_ports {ddr4_adr[4]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN D26 } [get_ports {ddr4_adr[5]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN K27 } [get_ports {ddr4_adr[6]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN E27 } [get_ports {ddr4_adr[7]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN K26 } [get_ports {ddr4_adr[8]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN H26 } [get_ports {ddr4_adr[9]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN L24 } [get_ports {ddr4_adr[10]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN F28 } [get_ports {ddr4_adr[11]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN J23 } [get_ports {ddr4_adr[12]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN J26 } [get_ports {ddr4_adr[13]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN L23 } [get_ports {ddr4_adr[14]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN K24 } [get_ports {ddr4_adr[15]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN H23 } [get_ports {ddr4_adr[16]}]

## /* dummy for ddr4-ram */
set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN G25 } [get_ports {ddr4_adr17[0]}] 


#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN N26 } [get_ports {ddr4_ba[0]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN G23 } [get_ports {ddr4_ba[1]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN M23 } [get_ports {ddr4_bg[0]}]
#set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN P23 } [get_ports {ddr4_bg[1]}] 

## /* dummy for ddr4-ram */
set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN P23 } [get_ports {ddr4_bg1[0]}] 

#moved to board files# set_property -dict { IOSTANDARD DIFF_SSTL12_DCI PACKAGE_PIN F25 } [get_ports {ddr4_ck_t[0]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_SSTL12_DCI PACKAGE_PIN E25 } [get_ports {ddr4_ck_c[0]}]

#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN L25 } [get_ports {ddr4_cke[0]}]
#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN N23 } [get_ports {ddr4_cs_n[0]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN P18 } [get_ports {ddr4_dm_n[0]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN K19 } [get_ports {ddr4_dm_n[1]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN D19 } [get_ports {ddr4_dm_n[2]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN G22 } [get_ports {ddr4_dm_n[3]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN K29 } [get_ports {ddr4_dm_n[4]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN E29 } [get_ports {ddr4_dm_n[5]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C36 } [get_ports {ddr4_dm_n[6]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN E32 } [get_ports {ddr4_dm_n[7]}]

#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN N19 } [get_ports {ddr4_dqs_c[0]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN J22 } [get_ports {ddr4_dqs_c[1]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN B21 } [get_ports {ddr4_dqs_c[2]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN E20 } [get_ports {ddr4_dqs_c[3]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN F30 } [get_ports {ddr4_dqs_c[4]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN A32 } [get_ports {ddr4_dqs_c[5]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN A40 } [get_ports {ddr4_dqs_c[6]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN C34 } [get_ports {ddr4_dqs_c[7]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN N20 } [get_ports {ddr4_dqs_t[0]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN K22 } [get_ports {ddr4_dqs_t[1]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN C21 } [get_ports {ddr4_dqs_t[2]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN F20 } [get_ports {ddr4_dqs_t[3]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN G30 } [get_ports {ddr4_dqs_t[4]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN B31 } [get_ports {ddr4_dqs_t[5]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN A39 } [get_ports {ddr4_dqs_t[6]}]
#moved to board files# set_property -dict { IOSTANDARD DIFF_POD12_DCI PACKAGE_PIN D34 } [get_ports {ddr4_dqs_t[7]}]

#moved to board files# set_property -dict { IOSTANDARD SSTL12_DCI PACKAGE_PIN H24 } [get_ports {ddr4_odt[0]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN N25 } [get_ports {ddr4_reset_n}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN N21 } [get_ports {ddr4_dq[0]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN M18 } [get_ports {ddr4_dq[1]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN M21 } [get_ports {ddr4_dq[2]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN M20 } [get_ports {ddr4_dq[3]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN P21 } [get_ports {ddr4_dq[4]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN L18 } [get_ports {ddr4_dq[5]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN M22 } [get_ports {ddr4_dq[6]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN L19 } [get_ports {ddr4_dq[7]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN H19 } [get_ports {ddr4_dq[8]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN L20 } [get_ports {ddr4_dq[9]}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN H20 } [get_ports {ddr4_dq[10]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN K21 } [get_ports {ddr4_dq[11]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN G20 } [get_ports {ddr4_dq[12]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN K20 } [get_ports {ddr4_dq[13]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN H21 } [get_ports {ddr4_dq[14]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN J21 } [get_ports {ddr4_dq[15]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B22 } [get_ports {ddr4_dq[16]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C20 } [get_ports {ddr4_dq[17]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A22 } [get_ports {ddr4_dq[18]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A19 } [get_ports {ddr4_dq[19]}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B23 } [get_ports {ddr4_dq[20]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B20 } [get_ports {ddr4_dq[21]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A23 } [get_ports {ddr4_dq[22]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A20 } [get_ports {ddr4_dq[23]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN F22 } [get_ports {ddr4_dq[24]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN E19 } [get_ports {ddr4_dq[25]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN E22 } [get_ports {ddr4_dq[26]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN D21 } [get_ports {ddr4_dq[27]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN F23 } [get_ports {ddr4_dq[28]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN F19 } [get_ports {ddr4_dq[29]}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN D22 } [get_ports {ddr4_dq[30]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN E21 } [get_ports {ddr4_dq[31]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN F31 } [get_ports {ddr4_dq[32]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN J28 } [get_ports {ddr4_dq[33]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN J30 } [get_ports {ddr4_dq[34]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN H28 } [get_ports {ddr4_dq[35]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN F32 } [get_ports {ddr4_dq[36]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN G28 } [get_ports {ddr4_dq[37]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN H30 } [get_ports {ddr4_dq[38]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN F29 } [get_ports {ddr4_dq[39]}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN E31 } [get_ports {ddr4_dq[40]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C30 } [get_ports {ddr4_dq[41]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C31 } [get_ports {ddr4_dq[42]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B30 } [get_ports {ddr4_dq[43]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN D31 } [get_ports {ddr4_dq[44]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C29 } [get_ports {ddr4_dq[45]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A30 } [get_ports {ddr4_dq[46]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A29 } [get_ports {ddr4_dq[47]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C42 } [get_ports {ddr4_dq[48]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B36 } [get_ports {ddr4_dq[49]}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B40 } [get_ports {ddr4_dq[50]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B37 } [get_ports {ddr4_dq[51]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B42 } [get_ports {ddr4_dq[52]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A37 } [get_ports {ddr4_dq[53]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B41 } [get_ports {ddr4_dq[54]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A38 } [get_ports {ddr4_dq[55]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B35 } [get_ports {ddr4_dq[56]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B32 } [get_ports {ddr4_dq[57]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A33 } [get_ports {ddr4_dq[58]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN D33 } [get_ports {ddr4_dq[59]}]

#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A35 } [get_ports {ddr4_dq[60]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN A34 } [get_ports {ddr4_dq[61]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN C33 } [get_ports {ddr4_dq[62]}]
#moved to board files# set_property -dict { IOSTANDARD POD12_DCI PACKAGE_PIN B33 } [get_ports {ddr4_dq[63]}]

set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN J9 } [get_ports {IIC_0_scl_io}]
set_property -dict { IOSTANDARD LVCMOS33 PACKAGE_PIN H9 } [get_ports {IIC_0_sda_io}]


#create_clock -name c0_sys_clk -period 4.998 [get_ports diff_clock_rtl_clk_p]
tig.xdc
# ignore timing for calibration done signal to vio core
set_property DONT_TOUCH true [get_cells -hier *vio_1]
set_false_path -through  [get_pins -hier *vio_1/probe_in13[0]]
set_false_path  -to [get_pins {*/axi_reg32_0/U0/axi_reg32_v1_0_S_AXI_inst/axi_rdata_reg[0]/D}]


Software Design - Vitis


For Vitis project creation, follow instructions from:

Vitis

Application

Template location: "<project folder>\sw_lib\sw_apps\"

zynqmp_fsbl

TE modified 2024.2 FSBL

General:

  • Modified Files: xfsbl_main.c, xfsbl_hooks.h/.c, xfsbl_board.h/.c (search for 'TE Mod' on source code)
  • Add Files: te_xfsbl_hooks.h/.c (for hooks and board)
  • General Changes: 
    • Display FSBL Banner and Device Name

Module Specific:

  • Add Files: all TE Files start with te_*
    • Si5395 DSPLL0 (U64) configuration
    • Si5395 DSPLL1 (U65) configuration
    • PCIe and eth reset

zynqmp_pmufw

Xilinx default PMU firmware.

----------------------------------------------------------

General Example:

hello_trenz

Hello Trenz is a Xilinx Hello World example as endless loop instead of one console output.

u-boot

U-Boot.elf is generated with PetaLinux. Vitis is used to generate Boot.bin.

Software Design -  PetaLinux


For PetaLinux installation and project creation, follow instructions from:

Config

Start with petalinux-config or petalinux-config --get-hw-description

Changes:

  • add new flash partition for bootscr and sizing
    •   CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART0_NAME="qspi-boot"
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART0_SIZE=0xA00000
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART1_NAME="qspi-image"
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART1_SIZE=0x4000000
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART2_NAME="qspi-bootenv"
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART2_SIZE=0x40000
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART3_NAME="qspi-bootscr"
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART3_SIZE=0x80000
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART4_NAME="qspi-spare"
    •     CONFIG_SUBSYSTEM_FLASH_PSU_QSPI_0_PART4_SIZE=0x3540000
    •     CONFIG_SUBSYSTEM_UBOOT_QSPI_FIT_IMAGE_OFFSET=0xA00000
    •     CONFIG_SUBSYSTEM_UBOOT_QSPI_FIT_IMAGE_SIZE=0x4000000
  • Identification
    • CONFIG_SUBSYSTEM_HOSTNAME="Trenz"
    • CONFIG_SUBSYSTEM_PRODUCT="TEB0912"

U-Boot

Start with petalinux-config -c u-boot

Changes:

  • MAC from eeprom together with uboot and device tree settings:
    • CONFIG_ENV_OVERWRITE=y
    • CONFIG_NVMEM=y
    • CONFIG_DM_RTC=y    (needed for nvmem driver because of bug in uboot)
  • Boot Modes:
    • CONFIG_QSPI_BOOT=y
    • CONFIG_SD_BOOT=y
    • CONFIG_ENV_IS_IN_FAT is not set
    • CONFIG_ENV_IS_IN_NAND is not set
    • CONFIG_ENV_IS_IN_SPI_FLASH is not set
    • CONFIG_BOOT_SCRIPT_OFFSET=0x4A40000
  • Add AXI I2C driver:
    • CONFIG_SYS_I2C_XILINX_XIIC=y
  • Identification
    • CONFIG_IDENT_STRING=" TEB0912"

Change platform-top.h:


Device Tree

/include/ "system-conf.dtsi"
/ {
/*------------------ PS-PL CLK --------------------*/
  fclk0: fclk0 {
    status = "okay";
    compatible = "xlnx,fclk";
    clocks = <&zynqmp_clk PL0_REF>;
    //clocks = <&zynqmp_clk 71>;
    clock-names = "pl_clk0";
  };
  
  fclk1: fclk1 {
    status = "okay";
    compatible = "xlnx,fclk";
    clocks = <&zynqmp_clk PL1_REF>;
    clock-names = "pl_clk1";
  };
  
  fclk2: fclk2 {
    status = "okay";
    compatible = "xlnx,fclk";
    clocks = <&zynqmp_clk PL2_REF>;
    clock-names = "pl_clk2";
  };
};


/*------------------ gtr --------------------*/
 
//https://xilinx-wiki.atlassian.net/wiki/spaces/A/pages/18841716/Zynq+Ultrascale+MPSOC+Linux+SIOU+driver
 
/ {
  refclk0:psgtr_pcie_clock {
          compatible = "fixed-clock";
          #clock-cells = <0x00>;
          clock-frequency = <100000000>;
  };
};
 
&psgtr {
  clocks = <&refclk0>;
  //clocks = <&refclk0 &refclk2 &refclk3>;
  /* ref clk instances used per lane */
  clock-names = "ref0";
};
 
/*------------------------- ETH PHY -----------------------*/
  
  
&gem2 {
    status = "okay";
    phy-handle = <ðernet_phy2>;
    
    nvmem-cells = <ð2_addr>;
    nvmem-cell-names = "mac-address";

    //required otherwise petalinux gives a static address here
    /delete-property/ local-mac-address;

    mdio {
    
      ethernet_phy1: ethernet-phy@0 {
      
          //compatible = "marvell,88e1510";
          reg = <0>;
          #address-cells = <0x1>;
          #size-cells = <0x1>;
      };
  
      ethernet_phy2: ethernet-phy@1 {
      
          //compatible = "marvell,88e1510";
          reg = <1>;
          #address-cells = <0x1>;
          #size-cells = <0x1>;
      };
    
    };
};
  
  
&gem3 {
    status = "okay";
    phy-mode = "rgmii-id";
    phy-handle = <ðernet_phy1>;

    nvmem-cells = <ð1_addr>;
    nvmem-cell-names = "mac-address";
    
    //required otherwise petalinux gives a static address here
    /delete-property/ local-mac-address;
    
};
  
 
/*-------------------- SD1 SD3.0 ----------------*/
 
&sdhci1 {
    pinctrl-names = "default";
    pinctrl-0 = <&pinctrl_sdhci1_default>;
    no-1-8-v;
    disable-wp;
};
  
&pinctrl0 {
    status = "okay";
    pinctrl_sdhci1_default: sdhci1-default {
        mux {
            groups = "sdio1_0_grp";
            function = "sdio1";
        };
  
        conf {
            groups = "sdio1_0_grp";
            slew-rate = <1>;
            io-standard = <1>;
            bias-disable;
        };
/*
        mux-cd {
            groups = "sdio1_cd_0_grp";
            function = "sdio1_cd";
        };
  
        conf-cd {
            groups = "sdio1_cd_0_grp";
            bias-high-impedance;
            bias-pull-up;
            slew-rate = <1>;
            io-standard = <1>;
        };
  
        mux-wp {
            groups = "sdio1_wp_0_grp";
            function = "sdio1_wp";
        };
  
        conf-wp {
            groups = "sdio1_wp_0_grp";
            bias-high-impedance;
            bias-pull-up;
            slew-rate = <1>;
            io-standard = <1>;
        };
*/
          
    };
};
/*-------------------- QSPI ---------------------*/
&qspi {
    num-cs = <2>;

    flash@0 {
        compatible = "jedec,spi-nor";
        reg = <0>, <1>;
        parallel-memories = /bits/ 64 <0x10000000 0x10000000>;  
        /* 0x10000000 =  256MB dual as maximum; 
           this is a proprietary property from u-boot/linux-xlnx. it is used in u-boot and does work if it is larger than the connected qspi, even though the displayed size if wrong
           we implemented a linux patch that uses the size which is read back from the qspi itself
        */
        spi-rx-bus-width = <4>;
        spi-tx-bus-width = <4>;
        spi-max-frequency = <108000000>; // max. frequency also depends on the QSPI chip
                                         // here 108MHz for N25Q512A (Fast Read Quad IO STR, 8 Dummy Cycles, quad SPI protocol)

        #address-cells = <1>;
        #size-cells = <1>;
    };
};

/*-------------------- RTC ----------------------*/
/* TEB0912 is without rty crystal, external RTC isl12022 is used */
&rtc {
    status = "disabled";
};


/*-------------------- I2C Bus on PL ----------------------*/
/* for CPLD I2C controller */
&axi_iic_0 {
        iexp@20 {// GPIO in CPLD
            #gpio-cells = <2>;
            //compatible = "ti,pcf8574";
            reg = <0x20>;
            gpio-controller;
                      
        };
};

/*----------------- I2C Bus on PS MIO 34,35 ---------------*/
/* on MIO */
&i2c0 {
    eeprom51: eeprom@51 {
        compatible = "microchip,24aa025", "atmel,24c02";
        reg = <0x51>;
      
        #address-cells = <1>;
        #size-cells = <1>;
        eth2_addr: eth-mac-addr@FA {
          reg = <0xFA 0x06>;
        };  
    };
    
    eeprom52: eeprom@52 {
        compatible = "microchip,24aa025", "atmel,24c02";
        reg = <0x52>;
        
        #address-cells = <1>;
        #size-cells = <1>;
        eth1_addr: eth-mac-addr@FA {
          reg = <0xFA 0x06>;
        
        };
    };
    
    eeprom53: eeprom@53 {
        compatible = "microchip,24aa025", "atmel,24c02";
        reg = <0x53>;     
    };
       
    eeprom56: eeprom@56 {
        compatible = "microchip,24lc128", "atmel,24c128";
        reg = <0x56>;     
    };
    
    rtc@6F {        // Real Time Clock
        compatible = "isl12022";
        reg = <0x6F>;
    };
    
};


/*----------------- I2C Bus on PS MIO 28,29 ---------------*/
&i2c1 {
    i2cswitch@75 { // u35
        compatible = "nxp,pca9544";
        #address-cells = <1>;
        #size-cells = <0>;
        reg = <0x70>;
        i2c-mux-idle-disconnect;
        i2c@0 { // DSPLL0
            reg = <0>;
        };
        i2c@1 { // DSPLL1
            reg = <1>;
        };
        i2c@2 { // J34
            reg = <2>;
        };
        i2c@3 { // J34
            reg = <3>;
        };
    };
};
   

Kernel

Start with petalinux-config -c kernel

Changes:

  • Only needed to fix JTAG Debug issue:
    • # CONFIG_CPU_FREQ is not set
  • Support PCIe memory card
    • CONFIG_NVME_CORE=y
    • CONFIG_BLK_DEV_NVME=y
    • # CONFIG_NVME_MULTIPATH is not set
    • # CONFIG_NVME_VERBOSE_ERRORS is not set
    • # CONFIG_NVME_HWMON is not set
    • # CONFIG_NVME_AUTH is not set
    • CONFIG_NVME_TARGET=y
    • # CONFIG_NVME_TARGET_PASSTHRU is not set
    • # CONFIG_NVME_TARGET_LOOP is not set
    • # CONFIG_NVME_TARGET_FC is not set
    • # CONFIG_NVME_TARGET_TCP is not set
    • # CONFIG_NVME_TARGET_AUTH is not set
    • CONFIG_SATA_AHCI=y
    • CONFIG_SATA_MOBILE_LPM_POLICY=0
  • Support external RTC:


    • CONFIG_RTC_DRV_ISL12022=y

Rootfs

Start with petalinux-config -c rootfs

Changes:

  • for web server app:
    • CONFIG_busybox-httpd=y
  • For additional test tools only:
    • CONFIG_i2c-tools=y
    • CONFIG_usbutils=y
    • CONFIG_pciutils=y
  • Use linux instead of busybox utiles
    • CONFIG_util-linux=y
  • For auto login:
    • CONFIG_imagefeature-serial-autologin-root=y

FSBL patch (alternative for vitis fsbl trenz patch)

See "<project folder>\os\petalinux\project-spec\meta-user\recipes-bsp\embeddedsw"

te_* files are identical to files in "<project folder>\sw_lib\sw_apps\zynqmp_fsbl\src" except for the PLL files (SI5395) which depend on PLL revision. The PLL files may have to be copied again manually into the appropriate petalinux folder "<project folder>\os\petalinux\project-spec\meta-user\recipes-bsp\embeddedsw\fsbl-firmware\git\lib\sw_apps\zynqmp_fsbl\src"

Boot.scr patch

Petalinux template with Trenz debug log prints, see "<project folder>\os\petalinux\project-spec\meta-user\recipes-bsp\u-boot"

QSPI  patch

Petalinux patch to read back QSPI size from flash instead device tree parameter, see "<project folder>\os\petalinux\project-spec\meta-user\recipes-kernel\linux\linux-xlnx"

Applications

See "<project folder>\os\petalinux\project-spec\meta-user\recipes-apps\"

startup

Script App to load init.sh from SD Card if available.

webfwu

Webserver application suitable for ZynqMP access. Need busybox-httpd

Additional Software


SI5395 of carrier board  DSPLL0 (U64)

File location "<project folder>\misc\PLL\Si5395-*_DSPLL0_*.slabtimeproj"

General documentation how you work with this project will be available on Si5395

SI5395 of carrier board DSPLL1 (U65)

File location "<project folder>\misc\PLL\Si5395-*_DSPLL1_*.slabtimeproj"

General documentation how you work with this project will be available on Si5395

App. A: Change History and Legal Notices


Document Change History

To get content of older revision go to "Change History" of this page and select older document revision number.

DateDocument Revision

Authors

Description

  • Minor Design update

2025-08-29

v.13

John Hartfiel 

  • 2024.2 release

2023-08-08

v.12

Manuela Strücker 

  • 2022.2 release
2021-12-21v.10Mohsen Chamanbaz
  • Bugfix (disable SD card write protection)
2021-07-08v.8Mohsen Chamanbaz
  • FSBL files update
2021-06-28v.7Mohsen Chamanbaz
  • 2020.2 release

2020-06-10

  • 2019.2 release
--all--
Document change history.

Legal Notices

Data Privacy

Please also note our data protection declaration at https://www.trenz-electronic.de/en/Data-protection-Privacy

Document Warranty

The material contained in this document is provided “as is” and is subject to being changed at any time without notice. Trenz Electronic does not warrant the accuracy and completeness of the materials in this document. Further, to the maximum extent permitted by applicable law, Trenz Electronic disclaims all warranties, either express or implied, with regard to this document and any information contained herein, including but not limited to the implied warranties of merchantability, fitness for a particular purpose or non infringement of intellectual property. Trenz Electronic shall not be liable for errors or for incidental or consequential damages in connection with the furnishing, use, or performance of this document or of any information contained herein.

Limitation of Liability

In no event will Trenz Electronic, its suppliers, or other third parties mentioned in this document be liable for any damages whatsoever (including, without limitation, those resulting from lost profits, lost data or business interruption) arising out of the use, inability to use, or the results of use of this document, any documents linked to this document, or the materials or information contained at any or all such documents. If your use of the materials or information from this document results in the need for servicing, repair or correction of equipment or data, you assume all costs thereof.

Product Disclaimer

Products (incl. Software and Firmware) are exclusively designed, manufactured, and distributed for industrial applications. They are not intended, authorized, or certified for use in critical safety applications, medical devices, aerospace, nuclear, life-support, traffic-control, military, or other environments where malfunction or failure could result in personal injury, death, or significant property or environmental damage.

Trenz Electronic GmbH (“Manufacturer”) excludes any liability for inappropriate use in such contexts. The Customer bears all responsibility for verifying suitability and compliance with applicable regulations when deploying in any critical-use scenario. The Customer also agrees to indemnify and hold harmless the Manufacturer from any third-party claims or liabilities arising from such use.

Copyright Notice

No part of this manual may be reproduced in any form or by any means (including electronic storage and retrieval or translation into a foreign language) without prior agreement and written consent from Trenz Electronic.

Technology Licenses

The hardware / firmware / software described in this document are furnished under a license and may be used /modified / copied only in accordance with the terms of such license.

Environmental Protection

To confront directly with the responsibility toward the environment, the global community and eventually also oneself. Such a resolution should be integral part not only of everybody's life. Also enterprises shall be conscious of their social responsibility and contribute to the preservation of our common living space. That is why Trenz Electronic invests in the protection of our Environment.

REACH, RoHS and WEEE

REACH

Trenz Electronic is a manufacturer and a distributor of electronic products. It is therefore a so called downstream user in the sense of REACH. The products we supply to you are solely non-chemical products (goods). Moreover and under normal and reasonably foreseeable circumstances of application, the goods supplied to you shall not release any substance. For that, Trenz Electronic is obliged to neither register nor to provide safety data sheet. According to present knowledge and to best of our knowledge, no SVHC (Substances of Very High Concern) on the Candidate List are contained in our products. Furthermore, we will immediately and unsolicited inform our customers in compliance with REACH - Article 33 if any substance present in our goods (above a concentration of 0,1 % weight by weight) will be classified as SVHC by the European Chemicals Agency (ECHA).

RoHS

Trenz Electronic GmbH herewith declares that all its products are developed, manufactured and distributed RoHS compliant.

WEEE

Information for users within the European Union in accordance with Directive 2002/96/EC of the European Parliament and of the Council of 27 January 2003 on waste electrical and electronic equipment (WEEE).

Users of electrical and electronic equipment in private households are required not to dispose of waste electrical and electronic equipment as unsorted municipal waste and to collect such waste electrical and electronic equipment separately. By the 13 August 2005, Member States shall have ensured that systems are set up allowing final holders and distributors to return waste electrical and electronic equipment at least free of charge. Member States shall ensure the availability and accessibility of the necessary collection facilities. Separate collection is the precondition to ensure specific treatment and recycling of waste electrical and electronic equipment and is necessary to achieve the chosen level of protection of human health and the environment in the European Union. Consumers have to actively contribute to the success of such collection and the return of waste electrical and electronic equipment. Presence of hazardous substances in electrical and electronic equipment results in potential effects on the environment and human health. The symbol consisting of the crossed-out wheeled bin indicates separate collection for waste electrical and electronic equipment.

Trenz Electronic is registered under WEEE-Reg.-Nr. DE97922676.




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