ANALOG-ALAT-LOGO

Alat analog ADIN6310 Médan Pindah Desain Rujukan

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-PRODUCT

Spésifikasi produk

  • 6-port Ethernet switch ADIN6310
  • 2 port batang Gb: SGMII ku SMA atanapi ADIN1300 ku RGMII
  • 4 spur 10BASE-T1L palabuhan: ADIN1100 ku RGMII
  • IEEE 802.3cg-patuh SPoE PSE controller: LTC4296-1
  • Kelas Kakuatan 12
  • Proyék software open source Zephyr
  • Unmanaged mode with a basic switch and PSE power
  • ID VLAN 1-10 diaktipkeun dina sadaya palabuhan
  • Kakuatan gandeng kana kabel 10BASE-T1L pikeun sakabéh palabuhan spur
  • DIP switch options to enable other features (Time Sync, LLDP, IGMP Snooping)
  • Managed mode using the switch evaluation package TSN/Redundancy evaluations
  • Jaringan sénsitip waktos (TSN) sanggup
  • Lalu lintas anu dijadwalkeun (IEEE 802.1Qbv)
  • Preemption pigura (IEEE 802.1Qbu)
  • Nyaring per stream sareng policing (IEEE 802.1Qci)
  • Réplikasi pigura sareng éliminasi pikeun réliabilitas (IEEE 802.1CB)
  • IEEE 802.1AS 2020 time synchronisation
  • Kamampuhan redundancy

Parentah Pamakéan Produk

Parabot Diperlukeun

  • Lembar data ADIN6310 sareng pituduh pangguna UG-2280 sareng UG-2287
  • lambar data ADIN1100
  • lambar data ADIN1300
  • LTC4296-1 lambar data
  • Lembar data MAX32690

Software Diperlukeun

  • For TSN evaluation, install the ADIN6310 evaluation package
  • Npcap pakét newak

Katerangan Umum

  • For extensive switch evaluation, refer to the TSN switch evaluation package available from the ADIN6310 product page.

FITUR

  • 6-port Ethernet switch ADIN6310
    • 2Gb trunk ports; SGMII by SMA or ADIN1300 by RGMII
    • 4 spur 10BASE-T1L ports, ADIN1100 by RGMII
  •  IEEE 802.3cg-compliant SPoE PSE controller, LTC4296-1
    •  Kelas Kakuatan 12
    • Power classification by SCCP (not enabled)
  • Arm® Cortex®-M4 microcontroller, MAX32690
    • External flash and RAM
  • Proyék software open source Zephyr
    • Modeu teu diurus sareng saklar dasar sareng kakuatan PSE
    • ID VLAN 1-10 diaktipkeun dina sadaya palabuhan
    • Kakuatan gandeng kana kabel 10BASE-T1L pikeun sakabéh palabuhan spur
    • DIP switch options to enable other features (Time Sync, LLDP, IGMP Snooping)
  • Managed mode using the switch evaluation package, TSN/Redundancy evaluations
    • Jaringan sénsitip waktos (TSN) sanggup
    • Lalu lintas anu dijadwalkeun (IEEE 802.1Qbv)
    •  Preemption pigura (IEEE 802.1Qbu)
    • Nyaring per stream sareng policing (IEEE 802.1Qci)
    • Réplikasi pigura sareng éliminasi pikeun réliabilitas (IEEE 802.1CB)
  • IEEE 802.1AS 2020 time synchronisation
    • Kamampuhan redundancy
    • High availability seamless redundancy (HSR)
    • Parallel redundancy protocol (PRP)
    • Media redundancy protocol (MRP)
  • Host interface hardware strapping with jumpers, a choice of
    • Single/Dual/Quad SPI interface
    • 10Mbps/100Mbps/1000Mbps Ethernet port (Port 2/Port 3)
    • SGMII/100BASE-FX/1000BASE-KX
    • Header for direct SPI access (Single/Dual/Quad)
  • Scale port count by cascading by RJ45 or SGMII/1000BASE-KX/ 100BASE-FX
  • PHY strapping by surface-mount configuration resistors
    • The default state is software power down for spur Ports
  • Switch firmware ngatur operasi PHY leuwih MDIO
    • Ngoperasikeun tina tunggal, éksternal 9V ka 30V suplai
    •  LED indicators on GPIO, TIMER pins

EVALUASI KIT Eusi

  • EVAL-ADIN6310T1LEBZ evaluation board
  • 15V, 18W wall adapter with international adapters
  • 5 x plug-in screw terminal connectors for 10BASE-T1L cable and external power supply
  • 1x kabel Cat5e Ethernet

PERALATAN DIPERyogikeun

  • Link partner with 10BASE-T1L interface
  • Link partner with standard Ethernet interface
  • Single pair cabling for T1L
  • PC ngajalankeun Windows® 11

DOKUMEN DIPERyogikeun

  • ADIN6310 data sheet and UG-2280 jeung UG-2287 pituduh pamaké
  • lambar data ADIN1100
  • lambar data ADIN1300
  • LTC4296-1 lambar data
  • Lembar data MAX32690

SOFTWARE DIPERyogikeun

  • For TSN evaluation, install the ADIN6310 evaluation package

PEDARAN UMUM

  • This user guide describes the ADIN6310 Field switch evaluation board with support for four 10BASE-T1L spur ports and two standard Gigabit capable Ethernet trunk ports.
  • The hardware includes single-pair power over Ethernet (SPoE) LTC4296-1 circuit with optional serial communication classification protocol (SCCP) support.
  • The default operation of the hardware is an unmanaged mode where the MAX32690 Arm Cortex-M4 microcontroller configures the switch into a basic switching mode and the PSE is configured for Class 12 operation.
  • Enhance the unmanaged switch operation by the DIP switch (S4), which provides the ability to enable features such as time synchronisation, LLDP, or IGMP snooping by default.
  • Disable the PSE by using the DIP switch; default is enabled. For more extensive switch evaluation, refer to the TSN switch evaluation package available from the ADIN6310 product page.
  • This evaluation package provides ability to exercise the TSN functionality in addition to the Redundancy features.
  • Gambar 1 nembongkeun hiji leuwihview tina dewan evaluasi.

HARDWARE LEUWIHVIEW

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-1

HARDWARE DEWAN EVALUASI

suplai kakuatan

  • Hardware ngoperasikeun tina rel suplai tunggal, éksternal, 9V ka 30V. A adaptor témbok 15V disadiakeun salaku bagian tina kit.
  • Apply the wall adapter to P4 connector or 9V to 30V to the P4 connector. Alternatively, it is possible to supply power to the 3-pin connector, P3.
  • The LED DS1 lights up when power is applied to the board, indicating a successful power-up of the main power rails.
  • All power rails are provided by an on-board MAX20075 buck regu-lator and MAX20029 DC-DC converter.
  • These devices generate the four rails (3.3V, 1.8V, 1.1V, and 0.9V) required for operation of the ADIN6310 pindah, ADIN1100 jeung ADIN1300 PHYs, MAX32690 and associated circuitry.
  • The default nominal voltages are listed in Table 1, in addition to which rails are used for the different devices.
  • The LTC4296-1 is powered directly from the incoming supply on P3 or P4. By default, the PSE is configured to enable four ports with IEEE802.3 Class 12 operation.
  • If using the PSE with SCCP, increase the supply rail to the evaluation board to 20V minimum.
  • Alternatipna, kakuatan dewan ngagunakeun konektor USB P2 nyadiakeun kakuatan + 5V kalawan P8 jumper diselapkeun. Kusabab PSE beroperasi tina minimum +6V, konektor USB teu kedah dianggo upami operasi PSE diperyogikeun.

meja 1. Konfigurasi Power Supply Alat standar

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-2

1 N/A hartina teu lumaku.
Connector P5 provides probe access to the individual power supplies and, when inserted, connects the supply rails to the circuit. P5 must have links inserted across VDD3P3 (3-4), VDD1P8 (5-6), VDD1P1 (7-8) and VDD0P9 (9-10).

  • meja 2 nembongkeun hiji leuwihview of the current consumption for the switch and PHYs for various operating modes. The MAX32690 is held in reset for these measurements; the LTC4296-1 is not enabled.

Tabél 2. Managed Mode Board Quiescent Current (Aplikasi Evaluasi TSN)ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-3

Tabél 2. Managed Mode Board Quiescent Current (TSN Evaluation Application) (Continued)

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-4

Tabél 3 shows a summary of the current consumption of the board for the unmanaged operation where MAX32690 enables the switch and the PSE provides power to the end device over the single pair.
Table 3. Unmanaged Mode Board Quiescent Current (MAX32690 Configures)

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-5

  1. S4 DIP switch is in default configuration (all OFF) for basic switch configuration and PSE providing power.
  2. DEMO-ADIN1100D2Z papan.
  3. PSE port supplies power to the board, and the power depends on the hardware.

POWER SEQUENCING

  • Henteu aya syarat pangurutan kakuatan khusus pikeun alat. Papan evaluasi dikonpigurasi pikeun ngahijikeun rel listrik.

EVALUASI dewan mode operasi

  • Aya tilu modus umum pikeun ngagunakeun hardware. Modeu kahiji nyaéta operasi standar, nyaéta modeu teu diurus. Dina modeu ieu, mikrokontroler MAX32690 ngonpigurasikeun saklar ADIN6310 sareng LTC4296-1, duanana dina panganteur SPI.
  • The second mode is for TSN evaluation. In this mode, the ADI TSN evaluation application is used to interface to the switch over an Ethernet-connected Host interface through Port 2.
  • The TSN evaluation package provides a PC based web server and allows users to interact with all the TSN and Redundancy features of the switch.
  • The TSN evaluation package does not support configuration of the PSE. In this use case, use the other ports on the board to evaluate the capability of the ADIN6310, establish links with other link partners and evaluate TSN capability and 10BASE-T1L.
  • For more details on this mode, see the Managed Configuration and TSN section.
  • Modeu operasi katilu ngalibatkeun Host sorangan anu nyambung ka panganteur switch SPI ngaliwatan header P13/P14 sareng pangguna porting supir switch ka platformna.

RESET DEWAN

  • The push button S3 provides user the ability to reset the ADIN6310 and optionally the MAX32690. P9 must be inserted in position (1-2), for the reset button to also reset the MAX32690.
  • Pushing the reset button does not reset the 10BASE-T1L PHYs or the Gigabit PHYs directly, but the subsequent initialisation of the switch causes the PHYs to reset.

JUMPER JEUNG PILIHAN PILIHAN

ADIN6310 Host Port Strapping

  • The ADIN6310 switch supports the Host control over SPI or any of the six Ethernet ports. Configure the Host interface to be Port 2, Port 3, or SPI.
  • The Host port and Host port interface selection are configured using jumpers inserted in the P7 header on the
  • nets labelled TIMER0/1/2/3, SPI_SIO, and SPI_SS.
  • The Timer and SPI pins have internal pull-up/-down resistors, as shown in Table 4. The strapping jumpers on the evaluation board provide user with the ability to reconfigure the strapping to select an alternative Host interface.
  • For more details on all options  available, refer to the section on Host strapping in the ADIN6310 data sheet. Overcome the internal pull-up/-down strapping resistors with the external resistor by inserting the strapping jumper.
  • Kalawan henteu link strapping diselapkeun, panganteur Host geus ngonpigurasi pikeun SPI baku. Ieu ogé konfigurasi standar pikeun hardware nalika dikirimkeun. Parobahan kana strapping Host merlukeun siklus kakuatan pikeun mawa pangaruh.

meja 4. Host Strapping Pamilihan Interface

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-6

  1. PU = Pull-Up, PD = Pull-Down.
  2. MAX32690 is configured for a single SPI interface. 3 Use with the TSN evaluation application.

Table 5. Host Port Selection

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-7

Use with the TSN evaluation application.
Sababaraha jumper dina dewan evaluasi kudu diatur pikeun setelan operasi diperlukeun saméméh ngagunakeun dewan pikeun meunteun. Setélan standar sareng pungsi pilihan jumper ieu dipidangkeun dina Tabél 6.

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-8

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-9

ADIN1300

GPIO AND timer lulugu
A lulugu disadiakeun (P18 jeung P17) pikeun observasi sadaya Timer jeung sinyal input / output (GPIO) tujuan umum. Salian lulugu, aya ogé LED dina pin ieu.
Dina modeu unmanaged, TIMER0 dipaké salaku sinyal interupsi kana panganteur MAX32690 SPI.

When S4 DIP switch is configured to enable time synchronisation, the default configuration for TIMER2 is a 1PPS (one pulse per second) signal and the user can see a blink at a 1-second rate. Similarly, when using the ADI Evaluation software package, the TIMER2 pin is configured for a 1PPS signal by default.

ON-BOARD LEDS

  • The board has one power LED, DS1, that lights up to indicate a successful power-up of the board supply rails. The MAX32690 circuit has a bi-colour LED, D6, currently not used.
  • There are eight LEDs associated with the ADIN6310 Timer and GPIO functions; link P19 must be inserted to see activity on these LEDs. The TIMER2 pin has a 1PPS signal enabled by default if time synchronisation is enabled.

10BASE-T1L PHY LEDs

  • Aya tilu LEDs pakait sareng unggal port 10BASE-T1L, ditémbongkeun saperti dina Table 7.

meja 7. 10BASE-T1L LED Operasi

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-10

PHY STRAPPING JEUNG KONFIGURASI

Alamat PHY
Alamat PHY dikonpigurasi ku sampling the RXD pins after power-on, when they come out of reset. External strapping resistors are used on the board to configure each PHY with a unique PHY address. The default PHY addresses assigned to the devices is shown in Table 8.
meja 8. Alamat PHY standarANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-11

PHY Strapping
There are two ADIN1300 devices on this evaluation board, connected to Port 2 and Port 3 of the switch. Either port is capable of being a Host interface to the switch, so these PHYs must be capable of bringing a link up independent of configuration from the switch. Both PHYs are hardware-strapped for 10/100 HD/FD, 1000 FD leader mode, RGMII no delays, and Auto-MDIX prefer MDIX, allowing them to establish a link with a remote partner. See Table 9. The ADIN1100 PHYs use the default strapping, as shown in Table 10.

meja 9. ADIN1300 PHY Port KonfigurasiANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-12meja 10. ADIN1100 PHY Port Konfigurasi

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-13

PHY Patalina Status Polaritasna

  • Note that the ADIN1100 and ADIN1300 LINK_ST output pins are active high by default, whereas the Px_LINK input of the ADIN6310 defaults active low; therefore, the hardware includes an inverter in the path between each of the PHY LINK_ST and the
  • Px_LINK of the switch. If component space/cost is a concern, it is possible to avoid including this inverter and rely on a parameter passed as part of the switch configuration to change the PHY polarity as part of the initial configuration.
  • This software inversion of the link polarity is supported only for ADI PHY types.
  • In the event a PHY is used in the Host interface path to the switch, the link signal provided to the Host port must always be active low, so an inverter must be required for this port.

Pamilihan Tumbu / SGMII Modeu

  • The switch has a per-port digital input (Px_LINK). When driven low, this tells the switch that port is enabled.
  • Port 2 and Port 3 can optionally be configured for SGMII, 1000BASE-KX, or 100BASE-FX mode.
  • When using these ports in SGMII modes, the corresponding link jumper (P10 for Port 2, P16 for Port 3) must be connected into the SGMII position.
  • This pulls the Px_LINK of the port low, which enables the port. For SGMII mode, ensure that the autonegotiation is disabled (false).
  • SGMII mode is not currently supported with the unmanaged configuration from the MAX32690 firmware.
  • Configure this mode if modifying the MAX32690 configuration directly, when using TSN evaluation package or when connecting your own Host to the device.

ADIN1300 Patalina Status Voltage Domain

  • The ADIN1300 LINK_ST is primarily intended to drive the switch link signal; therefore resides on the VDDIO_x voltagdomain e (standar voltage rail is 1.8V). If using the LINK_ST pin to drive an LED to indicate link active, a level shifter is used to provide voltage and drive capability for the LED function. The LED anode is tied to 3.3V through a 470Ω resistor.

panganteur MDIO

  • The MDIO bus of the ADIN6310 connects to the MDIO bus of each of the six PHYs on the evaluation board. The configuration of the PHYs is done by the switch firmware by this MDIO bus.

GANTI SWD (P6) panganteur

  • Antarbeungeut ieu teu diaktipkeun.

10BASE-T1L sambungan kabel

  • Connect the 10BASE-T1L cables by a pluggable screw terminal block for each port. If more of the pluggable connectors are needed for easy connecting or changing of cables, purchase additional con-nectors from vendors or distributors, such as, Phoenix
  • Contact, Part Number 1803581, which is a pluggable, 3-way, 3.81mm, 28AWG to 16AWG, 1.5mm2 screw terminal block.

Sambungan taneuh

  • The board has an Earth node. Although this node may or may not be electrically connected to Earth ground, in a real device, this node is typically connected to the device’s metal housing or chassis.
  • Connect this Earth node as required in a wider demonstration system by the Earth terminal of the power supply connector, P3, or by an exposed metal plating of four mounting holes in the corners of the board.
  • For each port, disconnect the shield of the 10BASE-T1L cable from this Earth node, connected directly, or connect by a 4700pF capacitor (C1_x).
  • Select the required connection by the relevant link position of P2_x. Connect the Earth connection and metal body of the two RJ45 connectors (J1_2, J1_3) directly to the Earth node.
  • Connect the local circuit ground and the external power supply (except the Earth terminal, P3) to the Earth node by approximately 2000pF of capacitance and approximately 4.7MΩ of resistance.
  • Catet yén dewan geus dirancang ukur salaku dewan evaluasi. Éta henteu acan dirancang atanapi diuji pikeun kaamanan listrik. Sakur parabot, alat, kawat, atawa kabel nu disambungkeun ka papan ieu kudu geus ditangtayungan tur aman noel tanpa bahaya shock listrik.

SPOE kakuatan gandeng

  • The circuit includes the five-port LTC4296-1, power supply equip-ment (PSE) controller, which can provide power over data line (PoDL)/single-pair power over Ethernet (SPoE).
  • The PSE controller supports powering the four T1L ports and the circuit is designed for PSE Class 12. One port of the PSE device is unused.
  • Note that a 20 to 30 V power supply is required to operate SPoE at Class 12; the provided 15 V power supply is not compliant with this power class.
  • The PSE controller is powered by default through the P3 or P4 connector, which supports up to 30V. To use the PSE controller for power classes other than Class 12 requires circuit modifications to the high-side, low-side sense resistors, and high-side MOSFET.
  • For details on the circuit modifications needed for the different power classes, refer to the LTC4296-1 data sheet.
  • Voltagsarat pikeun kelas séjén bisa dirojong ku nyoplokkeun jumper P25 sarta nyadiakeun vol diperlukeuntage through the P24 connector.
  • This allows the PSE controller to be powered up to 55V.
  • The PSE controller circuit also includes circuit support for SCCP for purpose of classifying the power for a powered device (PD) at the end node side.
  • This uses the microcontroller GPIO pins for SCCP to communicate with the connected PD. SCCP is not enabled as part of the unmanaged/managed mode; example code for SCCP is included in the Zephyr project.
  • Using SCCP, information on the device class, type, and pd_faulted is obtained before power is applied to the cable. To use SCCP, increase the input voltage to the board to 20V minimum.
  • For additional details on SCCP protocol and use, refer to the LTC4296-1 data sheet and associated user guide.

MAX32690 MICROCONTROLLER

  • The MAX32690 is an Arm Cortex-M4 microcontroller designed for industrial and wearable applications. For this reference design, the MAX32690 is used to configure the switch and the PSE controller.
  • Associated with the MAX32690 circuit is external 1Gb of DRAM, 1Gb FLASH Memory, and a MAXQ1065 security device, which is planned to use in future versions.

Firmware on MAX32690

  • There is firmware installed on the MAX32690, which supports a basic configuration of the switch and PSE controller. For more details, see the Managed vs. Unmanaged section.

UART and SWD Interfaces

  • Connector P20 provides access to the MAX32690 serial interface. P1 provides access to the UART interface.

MAXQ1065 CRYPTOGRAPHIC CONTROLLER

  • The MAXQ1065 is an ultra-low-power security cryptographic controller with ChipDNA™ for embedded devices that provides turnkey cryptographic functions for root-of-trust, mutual authentication, data confidentiality and integrity, secure boot, and secure firmware update.
  • It provides secure communications with generic key exchange and bulk encryption or complete TLS support. It is planned to enable in future updates for encryption purposes.

JURUAN VS. Teu diurus

Konfigurasi teu diatur

  • Unmanaged configuration relies on the MAX32690 configuring the ADIN6310 switch and the LTC4296-1 PSE controller to a basic configuration.
  • The MAX32690 has firmware loaded to enable the switch configuration based on the positions of the S4 DIP switch, and that runs this configuration after power-up.
  • Konfigurasi standar pikeun hardware nyaéta mode unmanaged.
  • In unmanaged mode, all links from jumpers P7 and P9 are open. When P7 is open, this configures the switch to use SPI as the Host interface and P9 open enables the MAX32690 to run the loaded firmware to configure the switch and PSE.
  • The switch is configured for basic switching functionality, including VLAN IDs (1-10) with all ports enabled and configured as follows:
    • Port 0, Port 1, Port 4, Port 5: RGMII, 10Mbps
    • Port 2, Port 3: RGMII, 1000Mbps

meja 11. Posisi Jumper pikeun Mode Unmanaged

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-14

Switch S4 provides user ability to enable additional functionality for the ADIN6310, namely time synchronisation (IEEE 802.1AS 2020), link layer discovery protocol (LLDP), and IGMP snooping. Table 12 shows the possible combinations and the functionality for each configuration. Note that the corresponding GPIO pins are sampled on power up, therefore, changes to S4 configuration require a power cycle.

meja 12. DIP Pindah S4 Konfigurasi

  • ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-15Note that other TSN functionality or SGMII interface is not supported in unmanaged mode, but available if using managed mode. The PSE configuration is carried out by the MAX32690 firmware, which enables the LTC4296-1 device over SPI.
  • The LTC4296-1 circuit is configured for 4 channels of PSE Class 12. When the PSE controller supplies voltage ka port T1L, daya biru LED pikeun port nu illuminates.

Konfigurasi junun jeung TSN

  • Managed mode for this reference design provides the user the ability to evaluate the broader capability of the ADIN6310 device, including TSN and Redundancy capability.
  • Managed mode relies on the use of ADI’s TSN evaluation package (application and web server that runs on a Windows 10 PC con-nected to the switch over Ethernet Port 2 or Port 3). The default Host interface is Port 2.
  • Pikeun make mode junun kalawan pakét evaluasi, mastikeun yén Tumbu diselapkeun dina P7 pikeun ngonpigurasikeun panganteur Host pikeun port pilihan, tingali ADIN6310 Host Port Strapping.
  • Mun PSE controller henteu diperlukeun, lajeng selapkeun P9 dina posisi 2-3 pikeun ngajaga MAX32690 di reset.
  • Aktipkeun palabuhan RGMII nalika nganggo pakét évaluasi.

meja 13. Posisi Jumper pikeun Mode Diurus

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-16

Ngalihkeun TSN Evaluasi Software

  • Parangkat lunak pakét évaluasi sayogi salaku undeuran parangkat lunak tina halaman produk ADIN6310.
  • The evaluation package contains the Windows-based evaluation tool and PC based web server pikeun konfigurasi switch (jeung PHYs).
  • This package supports TSN functionality and Redundancy capability and is used for evaluation of the switch.
  • This package does not support operation with the MAX32690 or LTC4296-1. A user can view individual switch port statistics, add and remove static entries from the look-up table, and configure TSN features through web kaca disadiakeun ku web server running on the PC. Once cthe configuration is complete, user applications can communicate with other devices over the TSN network.
  • Alternatively, the user can configure the device for Redundancy features such as HSR or PRP.

JURUAN VS. Teu diurus
Pituduh pamaké nu saluyu (UG-2280) ogé sadia tina kaca produk ADIN6310.

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-17

ses-konfigurasi File

  • Nalika nganggo pakét évaluasi, konfigurasi ADIN6310 dumasar kana téks konfigurasi file, as shown in Figure 4. The hardware-specific parameters are passed from an xml file dikandung dina masing-masing file system, see Figure 5.
  • The configuration is specific to the hardware being used. Edit the ses-configuration.txt file pikeun cocog hardware ku ngaropéa XML file, sakumaha ditémbongkeun dina Gambar 4.
  • Then, launch the application to start configuring the switch.
  • Use the XML file name eval-adin6310-10t1l-rev-c.xml the field switch evaluation board, this configuration applies to all hardware revisions from REV C onward, which uses RGMII interface for all Ethernet PHYs.
  • XML éta file eval-adin6310-10t1l-rev-b.xml cocog jeung révisi heubeul hardware, nu dipaké panganteur RMII pikeun ADIN1100 PHYs. Kanggo inpo nu langkung lengkep ihwal ngagunakeun parangkat lunak ieu, tingal pituduh pangguna (UG-2280) tina kaca produk ADIN6310.

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-18ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-19

TSN SWITCH DRIVER Perpustakaan

  • The driver package contains the ADIN6310 switch APIs used for configuration of the switch and all its functionality.
  • The software is C source code and OS agnostic. Port this package to different platforms to interact with the switch and provide access to all the features currently exposed in the switch.
  • The driver package is available to download from the ADIN6310 product page and must be consulted with the user guide (UG-2287).
  • When using the driver APIs, the port configuration is specific to the hardware configuration. For this field switch reference design, the following snippet of code shows the port initialisation structure specifically for this board.
  • This structure is passed to the SES_Ini-tializePorts() API during the initialisation of the switch. For more details on the sequence of API calls, refer to the user guide (UG-2287).
  • The structure caters for the different PHY configurations and speeds. This version of hardware uses 2 x ADIN1300 PHYs on Port 2 and Port 3 and 4 x ADIN1100 PHYs on Port 0, Port 1, Port 4, and Port 5.
  • All PHYs are connected over RGMII interface. This version of hardware uses an inverter in the path from PHY to switch link input, uses external PHY address strapping resistors (phyPullupCtrl).
    Nalika ngonpigurasikeun ADIN1100 PHYs, parameter autonegotiation teu boga pangaruh kana kamampuhan autonegotiation PHY.

JURUAN VS. Teu diurus

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-20

KODE SUMBER MAX32690

  • The source code project is available on GitHub on the ADI Zephyr fork at the GitHub. The ADIN6310 exampproyék le lokasina di samples/application_development/adin6310, under the adin6310_switch branch.
  • The TSN driver library for the switch is not included in the branch; therefore, add the source code separately when building the project. The TSN driver library is available as a download directly from the ADIN6310 product page.
  • proyék Zephyr Ieu ngarojong sababaraha examples based on the hardware configuration of the DIP switch S4 as described in Table 12. The default configuration for the hardware is for the MAX32690 processor to run firmware to configure the ADIN6310
  • Ethernet switch over the SPI Host interface into a basic switching mode with VLAN ID 1-10 enabled for learning and forwarding on all ports, and for the LTC4296-1 PSE to be enabled on all ports. SCCP is not enabled, but an example rutin kaasup kana kode Zephyr.

Nyusun proyék
Pikeun nyusun proyék, jalankeun ieu:

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-21

Dimana DLIB_ADIN6310_PATH mangrupikeun jalur dimana aya paket software supir ADIN6310 TSN.

Kedip-kedip papan
Panyambung P20 nyadiakeun aksés ka panganteur MAX32690 SWD. Gumantung kana usik debug dipaké, mikrokontroler bisa diprogram, sakumaha ditémbongkeun dina bagian handap.

Segger J-Patalina

Aya dua pendekatan pikeun ngamuat firmware nganggo Segger J-Link. Mimiti, pastikeun yén toolchain parangkat lunak J-Link dipasang (sadia ti Segger websitus) sareng tiasa diaksés tina variabel PATH (duanana pikeun Windows sareng Linux), teras lakukeun salah sahiji ieu:

  • Alternatively, the user can use the JFlash (or JFlashLite) Utility:
  • Open JFlashLite and select the MAX32690 MCU as the target.
  • Then, program the .hex file located at the build/Zephyr/Zephyr. hex path (in the Zephyr directory). The firmware executes after a successful load.

MAX32625 PICO

  • Firstly, the MAX32625 PICO board must be programmed with the MAX32690 image available from Github. This PICO programmer offers direct access to the microcontroller memory, which allows the user to flash hex files kalawan kalenturan gede. Aya dua cara pikeun program hex firmware file nepi ka MAX32690.

The first approach is the simplest and does not require additional installations. Similar to most DAPLink interfaces, the MAX32625PI-CO board comes preinstalled with a bootloader that enables driver less drag-and-drop updates. This allows users to use the MAX32625PICO board as a tiny, embeddable development platform. The following steps guide how to flash the firmware onto the MAX32690 device:

  1. Connect the MAX32625PICO board to the Field switch board P20 connector.
  2. Connect the target board to a power source, connect the MAX32625PICO debug adapter to the Host machine.
  3. Drag and drop the hex file from the build step onto the DA-PLINK drive to load new firmware into the board. The firmware executes after a successful load.

The alternative approach to flashing using the PICO board using

The West Command requires the user to use a custom version of OpenOCD. The easiest method of getting this version of Open-OCD is to install the MaximSDK using the automatic installer available at MaximSDK. Ensure that the Open On-Chip Debugger is enabled in the Select components window during installation (it is by default). After MaximSDK is installed, OpenOCD is available at the Max-imSDK/Tools/OpenOCD path. Program the MAX32690 now by using west. Run the following in the terminal (must be the same from which a user previously compiled the project): ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-23Robah jalur kana diréktori dasar MaximSDK dumasar kana tempat anu dipasang sateuacana.

Ngajalankeun firmware
Saatos programming, gambar firmware ngajalankeun otomatis. Mikrokontroler log status konfigurasi ngaliwatan UART (115200/8N1, euweuh parity). Kalayan debugger disambungkeun tur ngagunakeun aplikasi terminal kayaning putty, nalika S4 DIP switch dina posisi 1111, ieu nembongkeun kaluaran handap:

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-24

ZEPHYR SETTING UP GUIDE

First-time users of the Zephyr, refer to the Zephyr setting up guide located at Zephyr setting up guide

DEWAN CASCADING

Kasebut nyaéta dimungkinkeun pikeun Daisy-ranté sababaraha dewan nambahan count port ngagunakeun boh konfigurasi unmanaged kalawan sambungan Ethernet baku, Alternatipna, ngagunakeun pakét evaluasi TSN leuwih boh RGMII atanapi SGMII.
CASCADING Maké Konfigurasi UNMANAGED

  • When operating in the unmanaged configuration Port 2 and Port 3 are operating as 1Gb trunk ports.Use these ports to cascade boards to increase the port count. As SPI is selected as the Host, connect Port 2 or Port 3 to either Port 2 or Port 3 on the next board in the chain.ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-26

CASCADING Maké Konfigurasi junun
Using RGMII Host Interface
When using the TSN evaluation package (PC application and web server) with Port 2 and Port 3 in RGMII mode, the corresponding link jumper (P10 for Port 2, P16 for Port 3) must be connected into the PHY LINK_ST position. In the managed configuration, configure the Port 2 or Port 3 as the Host interface using the P7 jumper positions. The configuration shown in Table 13 configures Port 2 as the Host interface. In this case, cascading boards to increase the port count, Port 2 of the first board must be connected to the Host PC running the Windows TSN evaluation application. Port 3 is connected to Port 2 of the next board in the chain, and so on. The TSN evaluation package can configure multiple switches in a chain, up to ten max. For more details, refer to the user guide

(UG-2280). Ensure that the ses-configuration.txt file nunjuk kana konfigurasi XML relevan file sakumaha dibahas dina ses-konfigurasi File bagian.

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-27

Ngagunakeun SGMII mun Cascade

The ADIN6310 switch supports four ports configured with SGMII modes, however, the evaluation board hardware supports configuration of SGMII modes for Port 2 and Port 3 only. SGMII modes of operation are not supported in the unmanaged mode. User can modify the Zephyr project code to use SGMII modes if required. Enable the SGMII modes by using the TSN evaluation package, where you configure Port 2 and Port 3 for SGMII, 100BASE-FX, or 1000BASE-KX mode. If Port 2 or Port 3 are used in SGMII mode, ensure to connect the corresponding link jumpers (P10 for Port 2, P16 for Port 3) into the SGMII position. When using SGMII mode between ADIN6310 devices, disable the autonegotiation as this is a MAC-MAC interface.
SGMII mode is not currently supported with the unmanaged config-uration.

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-28

ANALOG-DEVICES-ADIN6310-Field-Switch-Reference-Design-FIG-29ESD Awas
Alat sénsitip ESD (discharge éléktrostatik). Alat anu dicas sareng papan sirkuit tiasa dileupaskeun tanpa deteksi. Sanaos produk ieu gaduh sirkuit panyalindungan anu dipaténkeun atanapi proprietary, karusakan tiasa lumangsung dina alat anu kakeunaan ESD énergi tinggi. Ku alatan éta, pancegahan ESD anu leres kedah dilaksanakeun pikeun nyegah degradasi kinerja atanapi leungitna fungsionalitas.

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Dokumén / Sumberdaya

Alat analog ADIN6310 Médan Pindah Desain Rujukan [pdf] Buku Panduan Pamilik
ADIN6310, ADIN1100, ADIN1300, LTC4296-1, MAX32690, ADIN6310 Desain Rujukan Pindah Lapang, ADIN6310, Desain Rujukan Pindah Medan, Desain Rujukan Pindah, Desain Rujukan

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