Refer to http://trenz.org/te0955-info for the current online version of this manual and other available documentation.
| Date | Vivado | Project Built | Authors | Description |
|---|---|---|---|---|
| 2026-08-31 | 2025.2 | TE0955-te0955-skrd_noprebuilt-vivado_2025.2-build_1_20260724094052.zip | Mohsen Chamanbaz / Markus Kirberg |
|
| 2025-06-27 | 2024.2 | TE0955-te0955-rd_noprebuilt-vivado_2024.2-build_1_20250707150046.zip TE0955-te0955-rd-vivado_2024.2-build_1_20250707150046.zip | Markus Kirberg / Mohsen Chamanbaz |
|
| Issues | Description | Workaround | To be fixed version |
|---|
| Software | Version | Note |
|---|---|---|
| Vivado | 2025.2 | needed |
| Vitis | 2025.2 | needed, Vitis is included in Vivado installation |
| PetaLinux | 2025.2 | needed |
| Vitis HLS | 2025.2 | needed (used for MIPI-Camera Pipeline) Vitis HLS is included optionally in Vivado installation |
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 Model | Board Part Short Name | PCB Revision Support | DDR | QSPI Flash | EMMC | Others | Notes |
|---|---|---|---|---|---|---|---|
| TE0955-01-P001 | 23_1lse_8gb | REV01 | 8GB | 256MB | 32GB | NA | NA |
| TE0955-01-EGBE32-A | 23_1lse_8gb | REV01 | 8GB | 256MB | 32GB | NA | NA |
TE0955-02-EGBE32-A* | 23_1lse_8gb | REV02 | 8GB | 256MB | 32GB | NA | NA |
| TE0955-02-EGBE42-A | 23_1lse_16gb | REV02 | 16GB | 256MB | 32GB | NA | NA |
*used as reference
Design supports following carriers:
| Carrier model | Notes |
|---|---|
| TEB0955* |
*used as reference
Additional HW Requirements:
| Additional Hardware | Notes |
|---|---|
| Micro USB Cable for JTAG/UART | Check Carrier Board and Programmer for correct type |
| Cooler | It is strongly recommended that the module should be used with heat sink. The reference design can drive a fan depending on the temprature of the Versal chip. |
| Ethernet cable | |
| SD card | 16GB |
| PC | |
| SSD Memory (optional) | SSD storage on the M.2 U5 connector on the back of the board |
For general structure and of the reference design, see Project Delivery - AMD devices
| Type | Location | Notes |
|---|---|---|
| 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_lib | Additional Software Template for Vitis and apps_list.csv with settings automatically for Vitis app generation |
| PetaLinux | <project folder>\os\petalinux | PetaLinux template with current configuration |
| Type | Location | Notes |
|---|---|---|
| init.sh | <project folder>\misc\sd\ | Additional Initialisation Script for Linux |
File | File-Extension | Description |
|---|---|---|
| BIF-File | *.bif | File with description to generate Bin-File |
| BIN-File | *.bin | Flash Configuration File with Boot-Image (Versal-FPGAs) |
| BIT-File | *.pdi | FPGA Configuration File |
| Boot Script-File | *.scr | Distro Boot Script file |
| Debug Probes-File | *.ltx | Definition File for Vivado/Vivado Labtools Debugging Interface |
| Diverse Reports | --- | Report files in different formats |
| Hardware-Platform-Description-File | *.xsa | Exported Vivado hardware description file for Vitis and PetaLinux |
| LabTools Project-File | *.lpr | Vivado Labtools Project File |
| OS-Image | *.ub | Image with Linux Kernel (On Petalinux optional with Devicetree and RAM-Disk) |
| Software-Application-File | *.elf | Software Application for Zynq or MicroBlaze Processor Systems |
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:
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>")
Run _create_win_setup.cmd/_create_linux_setup.sh and follow instructions on shell:
------------------------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):
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
Create hardware description file (.xsa file) for PetaLinux project and export to prebuilt folder
TE::hw_build_design -export_prebuilt
Using Vivado GUI is the same, except file export to prebuilt folder.
use exported .xsa file from "<project folder>\prebuilt\hardware\<short name>" . Note: HW Export from Vivado GUI creates another path as default workspace.
"<project folder>\prebuilt\os\petalinux\<ddr size>" or "<project folder>\prebuilt\os\petalinux\<short name>"
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
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
Note: Depending on Boot Mode settings, QSPI boot with Linux image on SD or complete SD Boot is possible.
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
Option for BOOT.bin on OSPI Flash and image.ub and boot.scr on SD or USB.
Open Vivado Project with "vivado_open_existing_project_guimode.cmd" or if not created, create with "vivado_create_project_guimode.cmd"
TE::pr_program_flash -swapp u-boot TE::pr_program_flash -swapp hello_te0955 (optional)
Not used on this example.
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
Power On PCB
1. Versal Boot ROM loads PLM from SD/QSPI into OCM,
2. PLM 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
select COM Port
Win OS, see device manager, Linux OS see dmesg |grep tty (UART is *USB1)
Linux Console:
Note: Wait until Linux boot finished
You can use Linux shell now.
i2cdetect -y -r 0 (check I2C 0 Bus) dmesg | grep rtc (RTC check) udhcpc (ETH0 check) lsusb (USB check) lspci (PCIe check) lsmem (DDR memory check)
Option Features

Activated interfaces:
| Type | Note |
|---|---|
| DDR | |
| QSPI | MIO |
| SD0 | MIO |
| SD1 | MIO |
| I2C0 | MIO |
| UART0 | MIO |
| GPIO0 | MIO |
| SWDT0..1 | |
| TTC0..3 | |
| GEM3 | MIO |
| USB0 | MIO |
| Type | Note |
|---|---|
| DDR | |
| OSPI | MIO |
| SD0/eMMC | MIO |
| SD1/(SD2.0 and SD3.0) | MIO |
| PMC_I2C | MIO |
| UART0 | MIO |
| GEM0 | MIO |
| USB0 | MIO, USB2.0 |
| TTC0 | MIO (PWM) |
####################################################################################
# IO Standard definition
####################################################################################
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS1_P[*]}]
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS2_P[*]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[7]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[6]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[5]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[4]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[3]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[2]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[1]}]
set_property IOSTANDARD LVCMOS33 [get_ports {C_LS_tri_io[0]}]
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS1_P[*]}]
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS2_P[*]}]
set_property IOSTANDARD LVCMOS33 [get_ports {USR_tri_io[0]}]
set_property IOSTANDARD LVSTL_11 [get_ports {PCIe_RESET[0]}]
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS1_P[*]}]
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS2_P[*]}]
####################################################################################
# Clock definition
####################################################################################
create_clock -period 10.000 [get_ports pcie_refclk_clk_p]
create_clock -period 10 [get_ports pcie_refclk_clk_p]; # pcie_refclk frequency 100MHz
create_clock -period 4 [get_pins -hierarchical -regexp vsys_i/gt_quad_base_0/ch0_rxoutclk]; # ch0_rxoutclk frequency 250MHz
create_clock -period 2 [get_pins -hierarchical -regexp vsys_i/gt_quad_base_0/ch0_txoutclk]; # ch0_txoutclk frequency 500MHz
####################################################################################
# Pins allocation
####################################################################################
# CRUVI low speed
set_property PACKAGE_PIN A13 [get_ports {C_LS_tri_io[0]}]; #C_LS_C_D0
set_property PACKAGE_PIN B13 [get_ports {C_LS_tri_io[1]}]; #C_LS_C_D1
set_property PACKAGE_PIN A14 [get_ports {C_LS_tri_io[2]}]; #C_LS_C_D2
set_property PACKAGE_PIN B12 [get_ports {C_LS_tri_io[3]}]; #C_LS_C_D3
set_property PACKAGE_PIN B11 [get_ports {C_LS_tri_io[4]}]; #C_LS_C_SDA
set_property PACKAGE_PIN A10 [get_ports {C_LS_tri_io[5]}]; #C_LS_C_SCL
set_property PACKAGE_PIN A11 [get_ports {C_LS_tri_io[6]}]; #C_LS_C_SCK
set_property PACKAGE_PIN B10 [get_ports {C_LS_tri_io[7]}]; #C_LS_C_SEL
# CRUVI high speed 1
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS1_P[*]}]
set_property PACKAGE_PIN J27 [get_ports {C_HS1_P[0]}]; # C_HC_X_B0 (J1-15)
set_property PACKAGE_PIN B26 [get_ports {C_HS1_P[1]}]; # C_HS_X_B1 (J1-21)
set_property PACKAGE_PIN E27 [get_ports {C_HS1_P[2]}]; # C_HS_X_B2 (J1-27)
set_property PACKAGE_PIN H27 [get_ports {C_HS1_P[3]}]; # C_HS_X_B3 (J1-33)
set_property PACKAGE_PIN G27 [get_ports {C_HS1_P[4]}]; # C_HS_X_B4 (J1-39)
set_property PACKAGE_PIN C27 [get_ports {C_HS1_P[5]}]; # C_HS_X_B5 (J1-45)
set_property PACKAGE_PIN H25 [get_ports {C_HS1_P[6]}]; # C_HS_X_A0 (J1-14)
set_property PACKAGE_PIN G25 [get_ports {C_HS1_P[7]}]; # C_HS_X_A1 (J1-20)
set_property PACKAGE_PIN F26 [get_ports {C_HS1_P[8]}]; # C_HS_X_A2 (J1-26)
set_property PACKAGE_PIN A25 [get_ports {C_HS1_P[9]}]; # C_HS_X_A3 (J1-32)
set_property PACKAGE_PIN D27 [get_ports {C_HS1_P[10]}]; # C_HS_X_A4 (J1-38)
set_property PACKAGE_PIN C25 [get_ports {C_HS1_P[11]}]; # C_HS_X_A5 (J1-44)
# CRUVI high speed 2
set_property IOSTANDARD DIFF_HSTL_I_12 [get_ports {C_HS2_P[*]}]
set_property PACKAGE_PIN G21 [get_ports {C_HS2_P[0]}]; # C_HC_Y_B0 (J2-15)
set_property PACKAGE_PIN A23 [get_ports {C_HS2_P[1]}]; # C_HS_Y_B1 (J2-21)
set_property PACKAGE_PIN B20 [get_ports {C_HS2_P[2]}]; # C_HS_Y_B2 (J2-27)
set_property PACKAGE_PIN E20 [get_ports {C_HS2_P[3]}]; # C_HS_Y_B3 (J2-33)
set_property PACKAGE_PIN D20 [get_ports {C_HS2_P[4]}]; # C_HS_Y_B4 (J2-39)
set_property PACKAGE_PIN C22 [get_ports {C_HS2_P[5]}]; # C_HS_Y_B5 (J2-45)
set_property PACKAGE_PIN H23 [get_ports {C_HS2_P[6]}]; # C_HS_Y_A0 (J2-14)
set_property PACKAGE_PIN F22 [get_ports {C_HS2_P[7]}]; # C_HS_Y_A1 (J2-20)
set_property PACKAGE_PIN E22 [get_ports {C_HS2_P[8]}]; # C_HS_Y_A2 (J2-26)
set_property PACKAGE_PIN C23 [get_ports {C_HS2_P[9]}]; # C_HS_Y_A3 (J2-32)
set_property PACKAGE_PIN A20 [get_ports {C_HS2_P[10]}]; # C_HS_Y_A4 (J2-38)
set_property PACKAGE_PIN D24 [get_ports {C_HS2_P[11]}]; # C_HS_Y_A5 (J2-44)
# USR GPIOs
set_property PACKAGE_PIN D14 [get_ports {USR_tri_io[0]}]
# PCIe Reset Signal
set_property PACKAGE_PIN M25 [get_ports {PCIe_RESET[0]}]
# M2 (PCIe) interface
set_property PACKAGE_PIN K7 [get_ports {qsfp_refclk_clk_p[0]}]
set_property PACKAGE_PIN K6 [get_ports {qsfp_refclk_clk_n[0]}]
set_property PACKAGE_PIN H7 [get_ports {pcie_refclk_clk_p[0]}]
set_property PACKAGE_PIN H6 [get_ports {pcie_refclk_clk_n[0]}]
set_property PACKAGE_PIN F2 [get_ports {pcie_mgt_grx_p[0]}]
set_property PACKAGE_PIN F1 [get_ports {pcie_mgt_grx_n[0]}]
set_property PACKAGE_PIN E5 [get_ports {pcie_mgt_gtx_p[0]}]
set_property PACKAGE_PIN E4 [get_ports {pcie_mgt_gtx_n[0]}]
set_property PACKAGE_PIN D2 [get_ports {pcie_mgt_grx_p[1]}]
set_property PACKAGE_PIN D1 [get_ports {pcie_mgt_grx_n[1]}]
set_property PACKAGE_PIN D8 [get_ports {pcie_mgt_gtx_p[1]}]
set_property PACKAGE_PIN D7 [get_ports {pcie_mgt_gtx_n[1]}]
set_property PACKAGE_PIN B2 [get_ports {pcie_mgt_grx_p[2]}]
set_property PACKAGE_PIN B1 [get_ports {pcie_mgt_grx_n[2]}]
set_property PACKAGE_PIN C5 [get_ports {pcie_mgt_gtx_p[2]}]
set_property PACKAGE_PIN C4 [get_ports {pcie_mgt_gtx_n[2]}]
set_property PACKAGE_PIN A5 [get_ports {pcie_mgt_grx_p[3]}]
set_property PACKAGE_PIN A4 [get_ports {pcie_mgt_grx_n[3]}]
set_property PACKAGE_PIN B8 [get_ports {pcie_mgt_gtx_p[3]}]
set_property PACKAGE_PIN B7 [get_ports {pcie_mgt_gtx_n[3]}]
For Vitis project creation, follow instructions from:
Xilinx default PLM firmware.
Xilinx default PSM firmware.
Hello TE0955 is a Xilinx Hello World example as endless loop instead of one console output.
U-Boot.elf is generated with PetaLinux. Vitis is used to generate BOOT.bin.
For PetaLinux installation and project creation, follow instructions from:
Start with petalinux-config or petalinux-config --get-hw-description
Changes:
Start with petalinux-config -c u-boot
Changes:
CONFIG_DM_RTC=y
CONFIG_NVMEM=y
/include/ "system-conf.dtsi"
/include/ "pl-custom.dtsi"
/{
};
#include <dt-bindings/gpio/gpio.h>
#include <dt-bindings/interrupt-controller/irq.h>
/*------------------ eMMC --------------------*/
&sdhci0 {
bus-width = <8>;
};
/*------------------ OSPI --------------------*/
&ospi {
bus-num = <2>;
num-cs = <1>;
flash@0 {
compatible = "mt35xu02g", "micron,m25p80", "jedec,spi-nor";
reg = <0>;
cdns,read-delay = <0x0>;
cdns,tshsl-ns = <0x0>;
cdns,tsd2d-ns = <0x0>;
cdns,tchsh-ns = <0x1>;
cdns,tslch-ns = <0x1>;
spi-rx-bus-width = <8>;
spi-tx-bus-width = <8>;
spi-max-frequency = <20000000>; // Set frequency according to the AMD reference design
reset-gpios = <&gpio1 12 GPIO_ACTIVE_LOW>;
#address-cells = <1>;
#size-cells = <1>;
};
};
/*------------------ ETH PHY --------------------*/
&gem0 {
phy-handle = <&phy0>;
nvmem-cells = <ð0_addr>;
nvmem-cell-names = "mac-address";
//required otherwise petalinux gives a static address here
/delete-property/ local-mac-address;
mdio {
phy0: phy0@3 {
device_type = "ethernet-phy";
reg = <3>;
//only needed because of reset-gpios present
//compatible = "ethernet-phy-id0022.1652"; //uboot: [mii read PHYAD 2].[mii read PHYAD 3]
//reset-names = "ETH_RESET";
//reset-gpios = <&gpio0 49 GPIO_ACTIVE_LOW>; //careful this is the #RST
//reset-assert-us = <10000>; //minimum duration according to datasheet 10ms
//reset-deassert-us = <2000>;
};
};
};
/*------------------ GPIO MISC --------------------*/
&gpio0 {
status = "okay";
gpio-line-names =
"", "", "", "", "", "", "", "", "", "",
"", "", "", "", "GPIO3_LS", "GPIO1_LS", "", "", "", "",
"M_INT_PS#", "U_INT_PS#", "GPIO2_LS", "DC_OM_I2C";
};
&gpio1 {
status = "okay";
gpio-line-names =
"", "", "", "", "", "", "", "", "", "",
"", "", "OSPI_opt", "", "", "", "", "", "", "",
"", "", "", "", "", "", "", "", "", "",
"", "", "", "", "", "", "", "GPIO0", "", "PERST0#",
"", "", "", "", "", "", "", "", "RST#", "",
"", "", "", "", "", "", "", "", "", "";
};
/*------------------ USB --------------------*/
&dwc3_0 {
dr_mode = "host";
};
/*------------------ I2C --------------------*/
&i2c2 {
status = "okay";
eeprom: eeprom@53 {
compatible = "microchip,24aa025", "atmel,24c02";
reg = <0x53>;
#address-cells = <1>;
#size-cells = <1>;
eth0_addr: eth-mac-addr@FA {
reg = <0xFA 0x06>;
};
};
pcf8574: gpio@25 {
compatible = "nxp,pcf8574";
reg = <0x25>;
gpio-controller;
#gpio-cells = <2>;
};
sysmon@45 {
compatible = "xlnx,versal-sysmon";
reg = <0x45>;
xlnx,numchannels = /bits/8 <27>;
#address-cells = <1>;
#size-cells = <0>;
supply@7 {
reg = <0x07>;
xlnx,name = "vccaux";
};
supply@9 {
reg = <0x09>;
xlnx,name = "vccaux_smon";
};
supply@6 {
reg = <0x06>;
xlnx,name = "vccint";
};
supply@4 {
reg = <0x04>;
xlnx,name = "vcc_ram";
};
supply@5 {
reg = <0x05>;
xlnx,name = "vcc_soc";
};
supply@25 {
reg = <0x19>;
xlnx,name = "gtyp_avccaux_104";
};
supply@23 {
reg = <0x17>;
xlnx,name = "gtyp_avcc_104";
};
supply@21 {
reg = <0x15>;
xlnx,name = "gtyp_avtt_104";
};
supply@24 {
reg = <0x18>;
xlnx,name = "gtyp_avccaux_103";
};
supply@22 {
reg = <0x16>;
xlnx,name = "gtyp_avcc_103";
};
supply@20 {
reg = <0x14>;
xlnx,name = "gtyp_avtt_103";
};
supply@11 {
reg = <0x0b>;
xlnx,name = "vcco_302";
};
supply@8 {
reg = <0x08>;
xlnx,name = "vccaux_pmc";
};
supply@12 {
reg = <0x0c>;
xlnx,name = "vcco_500";
};
supply@13 {
reg = <0x0d>;
xlnx,name = "vcco_501";
};
supply@15 {
reg = <0x0f>;
xlnx,name = "vcco_503";
};
supply@0 {
reg = <0x00>;
xlnx,name = "vcc_batt";
};
supply@1 {
reg = <0x01>;
xlnx,name = "vcc_pmc";
};
supply@2 {
reg = <0x02>;
xlnx,name = "vcc_psfp";
};
supply@3 {
reg = <0x03>;
xlnx,name = "vcc_pslp";
};
supply@10 {
reg = <0x0a>;
xlnx,name = "vp_vn";
};
supply@16 {
reg = <0x10>;
xlnx,name = "vcco_700";
};
supply@17 {
reg = <0x11>;
xlnx,name = "vcco_701";
};
supply@18 {
reg = <0x12>;
xlnx,name = "vcco_702";
};
supply@19 {
reg = <0x13>;
xlnx,name = "vcco_703";
};
supply@14 {
reg = <0x0e>;
xlnx,name = "vcco_502";
};
};
tpm0: tpm@2e {
compatible = "st,st33ktpm2xi2c","tcg,tpm-tis-i2c";
reg = <0x2e>;
interrupt-parent = <&gpio0>;
interrupts = <21 IRQ_TYPE_LEVEL_LOW>;
};
};
/*----------------- FAN Controller ----------*/
&ttc0{
#pwm-cells = <3>;
status = "okay";
};
/* Fan device using pwm-fan driver */
/{
fan0: fan@0 {
compatible = "pwm-fan";
pwms = <&ttc0 0 100000 0>; // Kanal 0, 50kHz, normal polarity
reg = <0>;
cooling-levels = <1 64 128 192 255>; // PWM Duty Cycles (0-255)
#cooling-cells = <2>;
status = "okay";
};
thermal-zones {
versal-thermal {
polling-delay-passive = <1000>; // in ms
polling-delay = <5000>;
thermal-sensors = <&sensor0>; // Sysmon Temperature sensor
trips {
trip0: trip-passive0 {
temperature = <50000>; // 50°C
hysteresis = <2000>; // 2°C
type = "passive";
};
trip1: trip-hot1 {
temperature = <65000>; // 65°C
hysteresis = <2000>; // 2°C
/* "active" uses the governor path (handle_non_critical_trips()),
* which actually applies map1.
*/
type = "active";
};
trip2: trip-alarm {
temperature = <80000>; // 80°C
hysteresis = <2000>; // 2°C
/* "active" uses the governor path (handle_non_critical_trips()),
* which actually applies map1.
*/
type = "active";
};
};
cooling-maps {
map0 {
trip = <&trip0>;
cooling-device = <&fan0 0 2>; // Use fan levels 0 to 2
};
map1 {
trip = <&trip1>;
cooling-device = <&fan0 2 3>; // Use fan levels 2 to 3
};
map2 {
trip = <&trip2>;
cooling-device = <&fan0 3 4>; // Use fan levels 3 to 4
};
};
};
};
};
/* Fix: Change #io-channel-cells to <1> and explicitly reference channel
* index 26 instead of relying on the ambiguous 0-cell reference.
*
* Note: If xlnx,numchannels changes in the native SysMon node
* (/axi/sysmon@f1270000), the hard-coded index 26 must be updated
* accordingly.
*/
&sysmon0 {
#io-channel-cells = <1>;
};
&sensor0 {
io-channels = <&sysmon0 26>;
};
/*--------------------------------------------*/
/*Add pl custom nodes for pl.dtsi which is generated from base xsa file.
Changes in this file reflects only when enabled the FPGA manager/Device tree overlay.*/
/*-------------------- PCIe -----------------------*/
/ {
pcie_refclk0:pcie_clock0 {
compatible = "fixed-clock";
#clock-cells = <0x00>;
clock-frequency = <100000000>;
};
qsfp_refclk1:qspf_clock1 {
compatible = "fixed-clock";
#clock-cells = <0x00>;
clock-frequency = <156250000>;
};
};
&qdma_0{
status = "okay";
clocks = <&pcie_refclk0>;
/* QDMA memory range 256MB */
ranges = <0x02000000 0x00 0xA8000000 0x00 0xA8000000 0x00 0x10000000>;
/*
* Configure DMA addressing below 4GB so Linux automatically uses SWIOTLB
* bounce buffers, avoiding DMA failures caused by the QDMA 32-bit AXI address limit.
*
*/
dma-ranges = <0x02000000 0x0 0x0 0x0 0x0 0x1 0x0>;
};
/*------------------------------------------------*/
Start with petalinux-config -c kernel
Changes:
For ST33KTPM2I TPM chip communication over I2C
CONFIG_TCG_TPM=y
CONFIG_TCG_TIS_I2C=y
CONFIG_THERMAL=y
CONFIG_THERMAL_EMERGENCY_POWEROFF_DELAY_MS=0
CONFIG_THERMAL_HWMON=y
CONFIG_THERMAL_OF=y
CONFIG_THERMAL_DEFAULT_GOV_STEP_WISE=y
CONFIG_THERMAL_GOV_STEP_WISE=y
CONFIG_VERSAL_THERMAL=y
CONFIG_PWM=y
CONFIG_PWM_SYSFS=y
CONFIG_PWM_CADENCE=y
CONFIG_PWM_XILINX=y
CONFIG_SCHED_THERMAL_PRESSURE=y
CONFIG_CPU_THERMAL=y
CONFIG_GENERIC_ADC_THERMAL=y
CONFIG_CPU_FREQ_THERMAL=y
CONFIG_GPIO_PCF857X=y
CONFIG_PCI_ENDPOINT=y
CONFIG_PCIE_XILINX_CPM=y
CONFIG_PCIE_XDMA_PL=y
CONFIG_PCIE_XILINX_NWL=n
CONFIG_BLK_DEV_NVME=y
CONFIG_NVME_TARGET=y
Start with petalinux-config -c rootfs
Petalinux template with Trenz debug log prints, see "<project folder>\os\petalinux\project-spec\meta-user\recipes-bsp\u-boot"
See "<project folder>\os\petalinux\project-spec\meta-user\recipes-apps\"
To get content of older revision got to "Change History" of this page and select older document revision number.
| Date | Document Revision | Authors | Description |
|---|---|---|---|
| |||
2026-02-26 | v.16 | Mohsen Chamanbaz |
|
| -- | all | -- |
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