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Overview

Trenz Electronic TE0712 is a FPGA module integrating an AMD Artix-7 FPGA, with a Quad GTP transceiver, DDR3 SDRAM, QSPI flash memory for configuration and operation. The SoM implements a 10/100 Mbit Ethernet transceiver and powerful switching-mode power supplies for all on-board voltages. All Trenz Electronic SoMs in 4 x 5 cm form factor are mechanically compatible.

Refer to http://trenz.org/te0712-info for the current online version of this manual and other available documentation.

Key Features

  • FPGA

    • AMD Artix 7 FPGA
      • Device:                        XC7A15T / XC7A35T / XC7A50T / XC7A75T / XC7A100T / XC7A200T 1)
      • Temperature ranges:  Commercial / Extended / Industrial 1)
      • Speed grades:            -1 / -2 / -3 1)
      • Package:                      FGG484 / FBG484 2)
  • RAM/Storage

    • 1 GByte DDR3 SDRAM 1)

    • 32 MByte QSPI Flash 1)
    • EEPROM with unique "EUI-48 ™ Node Identity" / MAC address and 192 Byte usable storage
  • On Board

    • 10/100 Mbit Ethernet PHY 
    • Pre-programmed Clock Generator
      • GTP Transceiver clock
      • Fabric clock
    • 25 MHz Oscillator
    • User configurable LEDs
    • System Controller (SC)
  • Interface

    • 3 x B2B Connector (LSHM) for Trenz 4 x 5 SoM socket
      • 4x GTP MGTs 3)
      • XC7A15T / XC7A35T / XC7A50T:     128x SE / 63x DIFF HR IOs
      • XC7A75T / XC7A100T / XC7A200T: 158x SE / 78x DIFF HR IOs
    • U.FL connector for SC clock
  • Power

    • System management and power sequencing
    • Voltage monitoring
    • On-board DCDC converters
  • Dimension

    • 50 mm × 40 mm

  • Notes
    1) Assembly variant dependent.
    2) Sockets FGG484 and FBG484 are footprint-compatible.
    3) Data rate depends on package and speed grade.

Block Diagram

TE0712 block diagram

Main Components

TE0712 main components
  1. AMD Artix-7 FPGA series, U1

  2. DDR3 SDRAM, U15, U19
  3. QSPI Flash, U4

  4. EEPROM, U7

  5. System Controller, U3
  6. 10/100 Mbps Ethernet PHY transceiver, U5
  7. Programmable Clock Generator, U2
  8. Oscillator, U9 - 25 MHz
  9. DCDC, U14
  10. DCDC, U6, U16
  11. LDO, U8
  12. Voltage monitoring, U10, U11
  13. Samtec Razor Beam™ LSHM B2B connectors, JM1, JM2, JM3
  14. U.FL jack, J1
  15. LEDs, green and red, D1, D2
  16. Load Switch, Q1

Initial Delivery State

Storage device name

Content

Notes

DDR3 SDRAM, U15, U19Not programmed

 

QSPI Flash, U4

Not programmed


Programmable Clock Generator, U2

ConfigurationRefer to Programmable Clock Generator for more information.
EEPROM, U7Not programmedContains write protected Unique Node ID / MAC .

System Controller, U3

Firmware

Refer to TE0712 CPLD Firmware / TE0712 CPLD for more information.

Initial delivery state of programmable devices on the module

Programmable Clock Generator

The programmable Clock Generator (Si5338A) is used to generate four different clocks from 25 MHz oscillator connected to pin IN3. The Si5338 can alternatively be clocked using pins IN1 and IN2 which are connected to B2B connector JM3 (CLKIN2).

The Si5338 output frequency to the FPGA clocks can be programmed while the Ethernet clock must remain at 50 MHz. An I2C bus is physically connecting the FPGA (master) and clock generator (slave). The I2C logic needs to be created in the FPGA to use this capability. Refer to TE0712 Reference Designs for more information.


CLK Output | Net Name | Destination Device.Pin

Default Frequency in MHz

IO Standard

Notes
CLK0A/B | CLK0_P/N | U1F.K4/J4

100

LVDS18 *

DDR interface
CLK1A | CLK50M | U5.23

50

CMOS33

PHY chip RMII reference clock.

CLK1B | CLK50M2 | U1E.R4

50

CMOS33 *

DDR interface
CLK2A/B | CLK2_P/N / MGT_CLK0_P/N | U1H.F6/E6

125

LVDS18

GTP transceiver clock.
CLK3A/B | PLL_CLK_P/N | U1F.H4/G4

50

LVDS18

DDR interface

* Since SoM REV02.

Clock Generator output configuration

Signals, Interfaces and Pins

Connectors

Connector Type

Designator

Interface

IO CNT

B2BJM1IO48x SE / 24x DIFF
B2BJM1IO10x SE / 5x DIFF 1)
B2BJM1IO8x SE / 4x DIFF
B2BJM1 ETH MDI4x DIFF
B2BJM2IO48x SE / 24x DIFF
B2BJM2IO18x SE / 9x DIFF
B2BJM2IO2x SE
B2BJM2JTAG4x SE
B2BJM3IO20x SE / 10x DIFF 1)
B2BJM3MGT GTP4x DIFF
B2BJM3Clock in MGT GTP1x DIFF
B2BJM3Clock in1x DIFF
B2BJM3IO4x SE / 2x DIFF
U.FLJ1IO1x SE

1) Only for variants with XC7A75T / XC7A100T / XC7A200T.

Board Connectors


Test Points

Test Point

Signal

Notes

TP1VIN
TP21V
TP3VTTREF
TP43.3VIN
TP51.2V_MGT
TP6GND
TP73.3V
TP8VCCIO13FPGA bank IO voltage.
TP9GND
TP101.8V
TP11VCCIO15FPGA bank IO voltage.
TP12GND
TP131.5V
TP14VCCIO16FPGA bank IO voltage.
TP15GND
TP16GND
TP17RESIN
TP18JTAGENJTAG enable. Select JTAG access between FPGA (low) or SC (high).
TP19TMS
TP20TDI
TP21TDO
TP22TCK
TP23DCDC_SCL
TP24DCDC_SDA
TP25PG_ALL



Test Points Information

On-board Peripherals

Chip/Interface

Designator

Connected To

Notes

FPGA

U1
  • System Controller, U3
  • Ethernet PHY, U5
  • DCDC Power SoC, U14
  • Clock Generator, U2
  • DDR3 SDRAM, U15, U19
  • QSPI Flash, U4
  • EEPROM, U7
  • B2B connector, JM1, JM2, JM3

DDR3 SDRAM

U15 / U19
  • FPGA, U1

QSPI Flash

U4
  • FPGA, U1

EEPROM

U7
  • FPGA, U1
Contains unique Node Identity / MAC.

System Controller

U3
  • FPGA, U1
  • B2B connector, JM1, JM2
  • U.FL connector, J1
  • DCDC Power SoC, U14
Refer to TE0712 CPLD Firmware for more information.

Ethernet PHY

U5
  • FPGA, U1
  • Clock Generator, U2
  • B2B connector, JM1

Clock Generator programmable

U2
  • FPGA, U1
  • Ethernet PHY, U5
  • Oscillator, U9
  • B2B connector, JM3

Refer to chapter Initial Delivery State / Programmable Clock Generator for more information.

Voltage monitor

U10 / U11
  • System Controller, U3

Oscillator

U9
  • Clock Generator, U2

On board peripherals

Configuration and System Control Signals

Signal Name

Connector.Pin

Direction1)

Description

EN1JM1.28IN 2)

Power enable. 2), 3)

PGOODJM1.30INOUT 2)Power good signal. 2), 3)
MODEJM1.32INOUT 2)Mode signal. 2), 3)
NOSEQJM1.7INOUT 2)Power sequence signal. 2), 3)
JTAGENJM1.89IN

JTAG selection signal.

Low → JTAG access FPGA

High → JTAG access System Controller

RESINJM2.18IN 2)Reset signal. 2), 3)
ULI_CPLDJ1.1OUT 2)System Controller clock signal. 2)
TMS / TDI / TDO / TCK

JM2.93 / JM2.95 / JM2.97 / JM2.99

Signal dependentJTAG.

1) Direction:

    • IN: Input from the point of view of this board.

    • OUT: Output from the point of view of this board.

2) Firmware dependent. Refer to TE0712 CPLD for more information.

3) Refer to 4 x 5 SoM Integration Guide for more general information.

Controller signal.

Power and Power-On Sequence

Power Rails

Power Rail Name/ Schematic Name

Connector.Pin

Direction1)

Notes

VIN

JM1.1 / JM1.3 / JM1.5 /

JM2.2 / JM2.4 / JM2.6 / JM2.8

INModule main power supply.
3.3VINJM1.13 / JM1.15INModule management power supply.

3.3V

JM1.14 / JM2.10 / JM2.12

OUT

Module 3.3 V power supply.

1.8V

JM1.39OUT

Module 1.8 V power supply.

1.5VJM2.19OUTModule 1.5 V power supply.
VCCIO13JM2.1 / JM2.3INFPGA IO bank power supply.
VCCIO15JM2.7 / JM2.9INFPGA IO bank power supply.
VCCIO16JM1.9 / JM1.11INFPGA IO bank power supply.

VREF_JTAG / 3.3V

JM2.91OUTJTAG reference voltage.

1) Direction:

    • IN: Input from the point of view of this board.

    • OUT: Output from the point of view of this board.

Module power rails.

Recommended Power up Sequencing


Sequence

Net name

Recommended Voltage Range

Pull-up/down

Description

Notes

0---

Configuration SoM signal setup.

See Configuration and System Control Signals.

13.3VIN3.3 V (± 5 %)-Main (management) power supply.Power consumption depends mainly on design and cooling solution.
2VIN
3.3 V (± 5 %) 1)-Main power supply.Power consumption depends mainly on design and cooling solution.
3
EN1 3.3 V (± 5 %)PU, 3.3 V 2)Power release.Controlled module internally. Can be used to disable power. Tie only to GND or leave floating.
4

3.3V or

PGOOD 3)


3.3 V (± 5 %)

3.3 V (± 5 %)

- 3)

Module generated output voltage/signal.

This voltage/signal 3) can be used

  • to supply bank voltages,
  • to supply periphery and/or
  • as power good signal to enable external power regulators.

Important: Consider maximum power consumption.

5

VCCIO13 4) /
VCCIO15 4) /
VCCIO16 4)

--Module bank voltages.
Baseboard Design Hints

1) A higher or lower input voltage may be possible. 

2) (on module)

3) Firmware dependent. Refer to TE0712 CPLD Firmware / TE0712 CPLD for more information.

4) Caution: A voltage difference between supply rails VCCO and VCCAUX of more than 2.625 V has to be temporarily limited to below TVCCO2VCCAUX for each power-on/off cycle. Refer to AMD data sheet DS181 for more information.

Board to Board Connectors

These connectors are hermaphroditic. Odd pin numbers on the module are connected to even pin numbers on the baseboard and vice versa.

4 x 5 modules use two or three Samtec Razor Beam LSHM connectors on the bottom side.

  • 2 x REF-189016-02 (compatible to LSHM-150-04.0-L-DV-A-S-K-TR), (100 pins, "50" per row)
  • 1 x REF-189017-02 (compatible to LSHM-130-04.0-L-DV-A-S-K-TR), (60 pins, "30" per row) (depending on module)
Connector Mating height

When using the same type on baseboard, the mating height is 8mm. Other mating heights are possible by using connectors with a different height

Order numberConnector on baseboardcompatible toMating height
23836REF-189016-01LSHM-150-02.5-L-DV-A-S-K-TR6.5 mm

LSHM-150-03.0-L-DV-A-S-K-TRLSHM-150-03.0-L-DV-A-S-K-TR7.0 mm
23838REF-189016-02LSHM-150-04.0-L-DV-A-S-K-TR8.0 mm

LSHM-150-06.0-L-DV-A-S-K-TRLSHM-150-06.0-L-DV-A-S-K-TR10.0mm
26125REF-189017-01LSHM-130-02.5-L-DV-A-S-K-TR6.5 mm

LSHM-130-03.0-L-DV-A-S-K-TRLSHM-130-03.0-L-DV-A-S-K-TR7.0 mm
24903 REF-189017-02LSHM-130-04.0-L-DV-A-S-K-TR8.0 mm

LSHM-130-06.0-L-DV-A-S-K-TRLSHM-130-06.0-L-DV-A-S-K-TR10.0mm
Connectors.

The module can be manufactured using other connectors upon request.

Connector Speed Ratings

The LSHM connector speed rating depends on the stacking height; please see the following table:

Stacking heightSpeed rating
12 mm, Single-Ended7.5 GHz / 15 Gbps
12 mm, Differential

6.5 GHz / 13 Gbps

5 mm, Single-Ended11.5 GHz / 23 Gbps
5 mm, Differential7.0 GHz / 14 Gbps
Speed rating.
Current Rating

Current rating of  Samtec Razor Beam™ LSHM B2B connectors is 2.0A per pin (2 adjacent pins powered).

Connector Mechanical Ratings
  • Shock: 100G, 6 ms Sine
  • Vibration: 7.5G random, 2 hours per axis, 3 axes total


Manufacturer Documentation

  File Modified
PDF File hsc-report_lshm-lshm-05mm_web.pdf High speed test report Apr 07, 2016 by Thorsten Trenz
PDF File lshm_dv.pdf LSHM catalog page Apr 07, 2016 by Thorsten Trenz
PDF File LSHM-1XX-XX.X-X-DV-A-X-X-TR-FOOTPRINT(1).pdf Recommended layout and stencil drawing Apr 07, 2016 by Thorsten Trenz
PDF File LSHM-1XX-XX.X-XX-DV-A-X-X-TR-MKT.pdf Technical drawing Apr 07, 2016 by Thorsten Trenz
PDF File REF-189016-01.pdf Technical Drawing Apr 07, 2016 by Thorsten Trenz
PDF File REF-189016-02.pdf Technical Drawing Apr 07, 2016 by Thorsten Trenz
PDF File REF-189017-01.pdf Technical Drawing Apr 07, 2016 by Thorsten Trenz
PDF File REF-189017-02.pdf Technical Drawing Apr 07, 2016 by Thorsten Trenz
PDF File TC0923--2523_report_Rev_2_qua.pdf Design qualification test report Apr 07, 2016 by Thorsten Trenz
PDF File tc0929--2611_qua(1).pdf Shock and vibration report Apr 07, 2016 by Thorsten Trenz



Technical Specifications

This TRM is generic for all variants.

  • The voltage ranges are generally the same across variants (exceptions are possible, depending on custom requests).
  • The temperature range can differ depending on the assembly version.
  • The combination of a carrier and a SoM might have different requirements.

Variants of modules are described here: Article Number Information. Please contact us for options.

Absolute Maximum Ratings *)

Power Rail Name / Schematic Name

Description

Min

Max

Unit

VIN

Main power supply.-0.36.5V
3.3VINMain (management) power supply.-0.33.6V
VCCIO13FPGA Bank 13 power supply.-0.53.6V
VCCIO15FPGA Bank 15 power supply.-0.53.6V
VCCIO16FPGA Bank 16 power supply.-0.53.6V
Absolute maximum ratings

*) Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. These are stress ratings only, which do not imply functional operation of the device at these
   or any other conditions beyond those indicated under Recommended Operating Condition. Exposure to absolute-maximum rated conditions for extended periods may affect device reliability.

Recommended Operating Conditions

Temperature range

Trenz Electronic classifies modules into temperature range categories by subsumption of its component data (PCB, ICs, connectors, passive components). The temperature ranges are values for ambient air temperature and do not reflect the junction temperature of individual components.

The categories are:

  • Modules with commercial temperature grade are equipped with components that cover at least the ambient temperature range of 0 °C to 70 °C.
  • Modules with extended temperature grade are equipped with components that cover at least the ambient temperature range of 0 °C to 85 °C.
  • Modules with industrial temperature grade are equipped with components that cover at least the ambient temperature range of -40 °C to 85 °C.

These categories do not take into account the entire custom system consisting of:

  • Customer SoC/FPGA design.
  • Cooling solution, active and or passive cooling.
  • Climate or environmental conditions besides ambient temperature range.
  • Module orientation, neighbouring assemblies, neither other heat sources nor the SoC/FPGA as heat source to other components.

The temperature of individual components should not exceed the specified range due to self-heating or heating by adjacent components.

The actual operating temperature range will depend on the customer design, usage, environment and cooling solution. Consult Cooling Solutions for more information.

Voltage rails

Parameter

Min

Max

Units

Reference Document

VIN

3.1355.25

V


3.3VIN3.2013.399

V


VCCIO131.1643.399

V


VCCIO151.1643.399

V


VCCIO161.1643.399

V


Recommended operating conditions.


Physical Dimensions

  • Module size: 50 mm × 40 mm. Please download the assembly diagram for exact numbers.
  • PCB thickness: 1.6 mm ±10 %
  • Mating height with standard connectors: 8 mm

All dimensions are shown in millimeters.

Physical Dimension

Currently Offered Variants 

Trenz shop TE0712 overview page*

English page

German page

*)  Module article name encoding table: 7 Series Spartan, Artix and Kintex modules

Trenz Electronic Shop Overview

Revision History

Hardware Revision History

The hardware revision number is located on the PCB next to the module identifier, separated by a dash.

Board hardware revision number.


Date

Revision

Changes

Documentation Link

2022-1103

1. Added Legal notices, project overview and revision changes. Updated page count and page order.
2. Added a D3 diode between the INIT and PROG_B signals to keep the FPGA in the reset state while PROG_B is low during the initial power-up.
3. Resistors R2, R68 replaced by 2K2 (were 4K87) to improve I2C stability at higher baud rates. 
4. Change obsolete ferrite beads BKP0603HS121-T to MPZ0603S121HT000 for L1, L2, L3, and L5.
5. Revised power supply circuit. Change obsolete components:
    - EN63A0QI to MP8869SGL-Z ( U14 )
    - EP53F8QI to MPM3834CGPA ( U6, U16 )
6. Change Q1 power switch TPS27082LDDCR to MP5077GG-Z.
7. Added power monitors U10, U11 STM6710LWB6F. System controller pin U3.25 connected to net PG_ALL instead of 3.3V. 
8. U14 I2C interface connected to bus PLL_SDA / PLL_SCL U1B. Connect U14 to I2C bus via resistors R80 and R81 and pull-up resistors R26 and R27 and test points TP23 and TP24. Added table with device addresses on the I2C bus. A new device will be detected during a bus scan. 
9. Change capacitors in net "VIN" from 47 uF, 6.3 V to 22 uF, 10 V for C70, C80, C126, C127, C132, C176, C177.

10. Change resistor values for R62 from 2.49 kOhm to 4.99 kOhm and for R63 from 4.99 kOhm to 10 kOhm.
11. Change capacitors C18, C19, C125, C158, C174.
13. Change SI5338A-B-GM firmware.

REV03

PCN

2016-0102

1. Added pullup on SPI "hold".
2. Added test points.
3. Routed MII clock pin additionally to FPGA.
4. Routed one more PLL clock output to FPGA.
5. Added I2C SCL Pullup.

6. Change DDR3 RAM (U15, U19) from IM4G16D3FABG-125I to IS43TR16256BL-125KBLI.
7. All SoMs use S25FL256SAGBHI20 Flash (U4).
8. Clock Revision Change (U9) SiT8008AI-73-XXS-25.000000E to SiT8008BI-73-XXS-25.000000E.

REV02

PCN

PCN

2014-0701Initial revision

REV01

Hardware Revision History

Document Change History

Date

Revision

Contributors

Description

  • DrawIO diagrams - Fixed settings for toolbar and boarder
  • Document change history - Fixed some entries

2025-08-28

v.35

 Martin Rohrmüller

  • Typo + Style

2025-08-01

v.34

Kilian Jahn

  • Updated to TRM version 4.3.1
  • Updated TRM to hardware revision 03

2024-04-30

v.33

Martin Rohrmüller

  • Updated Download link for this document

2022-12-22

v.31

Waldemar Hanemann 

  • Variants will changed to shop search
2020-07-03v.23John  Hartfiel
  • add power sequencing notes
2019-01-10v.22John  Hartfiel
  • Update document change history

  • Update system controller and power sequencing chapter
2017-12-15v.18John  Hartfiel
  • Update Board to Board (B2B) I/Os
2017-12-12v.15John  Hartfiel
  • Replace B2B connector section
  • Typo correction on Clocking section
2017-05-29v.13Jan Kumann
  • Variants table added.
  • Key Features section relocated.
2017-03-01v.7John Hartfiel
  • BUGFIX in the description of System Controller I/O section
  • Update Clocking Section
2017-01-26

v.3

Jan Kumann
  • New block diagram.
  • Few corrections.
2017-01-20
v.2


Jan Kumann

  • Revised version.
2013-12-02 v.1Antti Lukats
  • Work in progress.
--all
  • --

Disclaimer

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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