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Atmel AVR2042: REB Controller Base Board - Hardware User Guide Features • High-performance, low-power Atmel ® 8/16-bit AVR ® XMEGA ® microcontroller ATxmega256A3 - 256KB in-system, self-programmable flash - 8KB boot code section with independent lock bits - 16KB internal SRAM - 4KB EEPROM • 4Mb serial flash for support of over-the-air (OTA) upgrades • Programming interface • Fully functional wireless node in combination with the Atmel Radio Extender Board (REB) • Powered by two AAA batteries for stand-alone operation 1 Introduction This application note describes the Atmel REB Controller Base Board (REB-CBB). Detailed information about its functionality, its interfaces, the microcontroller programming, and the PCB design is given in the individual sections. The REB-CBB is intended to serve as a microcontroller platform for the Atmel Radio Extender Board (REB) family. The REB connected to a REB-CBB forms a battery powered, fully functional, and portable wireless node. Figure 1-1. REB controller base board. 8-bit Atmel Microcontrollers Application Note Rev. 8334A-AVR-05/11 2 Atmel AVR2042 8334A-AVR-05/11 2 Disclaimer Typical values contained in this application note are based on simulations and on testing of individual examples. Any information about third-party materials or parts is included in this document for convenience. The vendor may have changed the information that has been published. Check the individual vendor information for the latest changes. Atmel AVR2042 3 8334A-AVR-05/11 3 Overview The Atmel REB-CBB is designed to interface directly to a radio extender board. The combination of the two boards form a battery powered, fully functional, portable wireless node. The setup provides an ideal platform to: • Evaluate the outstanding performance of the Atmel radio transceivers • Test the unique radio transceiver hardware support for the IEEE ® 802.15.4 standard [3] • Test the enhanced radio transceiver feature set • Develop applications capable of hosting a ZigBee ® stack The following table lists the available radio extender boards and related radio transceivers. Table 3-1. Supported radio extender boards. Board name Comment Radio transceiver Available Evaluation Kit REB230 SMA connector AT86RF230 N/A (1) REB231 SMA connector AT86RF231 N/A (1) REB231ED Antenna diversity AT86RF231 ATREB231ED-EK REB212 SMA connector AT86RF212 N/A (1) REB232ED Antenna diversity AT86RF232 ATREB232ED-EK REB231FE2 Antenna diversity AT86RF231 ATREB231FE2-EK Note: (1) Currently there exists no Evaluation Kit, but the plain radio extender is purchasable from http://www.dresden-elektronik.de/shop/. The REB-CBB is assembled with an Atmel 8-bit AVR ATxmega256A3 microcontroller. It offers a connector for programming and debugging, suitable to connect an Atmel JTAGICE mkII programmer. A connector to attach an asynchronous serial interface allows interfacing to a PC host for control and data exchange tasks. Figure 3-1 shows a development and evaluation setup using the REB-CBB in combination with the REB231ED radio extender board. 4 Atmel AVR2042 8334A-AVR-05/11 Figure 3-1. Atmel REB-CBB connected to an Atmel REB231ED with an RS232 cable plugged in and an Atmel JTAGICE mkII programming interface. Atmel AVR2042 5 8334A-AVR-05/11 4 Mechanical description The REB-CBB is manufactured using a two-layer printed circuit board (PCB). All active components are mounted on the bottom side, and all connectors and user I/Os are located on the top side using through-hole components. The radio extender board is plugged into the 2 x 20 female header, Expand1, vertically. Figure 4-1. Mechanical outline. Table 4-1. REB-CBB mechanical dimensions. Dimension Value Width x 57mm Width y 60mm PCB standoff height 5mm Height without REB 18mm Height with REB231ED plugged in 70mm 5mm 5mm 18mm 60mm 57mm 70mm 6 Atmel AVR2042 8334A-AVR-05/11 5 Functional description The Atmel REB-CBB carries a high-performance Atmel AVR XMEGA microcontroller, which connects to the radio extender board and various peripheral units (see Figure 5-1). It is powered by two AAA batteries or optionally by applying an external voltage source. Figure 5-1. REB-CBB block diagram. 5.1 Power supply The board is powered by two AAA batteries. The power switch, SW1, disconnects batteries from the entire board. External power is not routed through the power switch. For debugging and test purposes, power can also be supplied at pin header PWR. NOTE There is no protection against over voltage. Take care when applying power from an external source. Refer to Section 7.1 for allowable input voltage range. Exceeding these limits may destroy the board. In addition, avoid applying reverse currents into batteries by switching SW1 to the off position, or by removing the batteries when using external power Figure 5-2. Power supply of the REB-CBB. 5.2 Microcontroller The Atmel XMEGA A3 is a family of low-power, high–performance, and peripheral- rich CMOS 8/16-bit microcontrollers based on the AVR enhanced RISC architecture. By executing powerful instructions in a single clock cycle, the Atmel XMEGA A3 achieves throughputs of up to 1 million instructions per second (MIPS) per MHz, allowing the system designer to optimize power consumption versus processing Atmel AVR2042 7 8334A-AVR-05/11 speed. A detailed description of the Atmel ATxmega256A3 can be found in the datasheet [1]. Table 5-1. ATxmega256A3 ordering information. Ordering code Flash EEPROM SRAM Speed (MHz) Power supply Package Temperature ATxmega256A3-AU 256KB + 8KB 4KB 16KB 32 1.6V – 3.6V 64A TQFP-64 -40°C – 85°C 5.3 Clock sources The XMEGA has a flexible clock system, supporting a large number of clock sources. It incorporates both calibrated integrated oscillators and external crystal oscillators, and resonators. The Atmel AVR XMEGA family allows dynamic switching between the clock sources. Internal clock sources are: • 32kHz RC oscillator • 2MHz RC oscillator • 32MHz RC oscillator The 2/32MHz oscillators can be calibrated using…
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Atmel AVR2080: REB231FE2 - Hardware User's Manual Features • High-performance, 2.4GHz, RF-CMOS Atmel ® AT86RF231 radio transceiver targeted for IEEE ® 802.15.4, ZigBee ® , and ISM applications - Industry leading 104dB link budget - Ultra-low current consumption - Ultra-low supply voltage (1.8V to 3.6V) • High-performance, fully integrated 2.4GHz RF Front End Module SE2431L • Hardware supported antenna diversity • RF reference design and high-performance evaluation platform • Interfaces to various Atmel microcontroller development platforms • Board information EEPROM - MAC address - Board identification, features, and serial number - Crystal calibration values 1 Introduction This manual describes the Atmel REB231FE2 radio extender board supporting increased TX output power and RX sensitivity as well as antenna diversity. The board is designed using the AT86RF231 radio transceiver in combination with the Skyworks SE2431L RF front end module (FEM). Detailed information is given in the individual sections about the board functionality, the board interfaces and the board design. The REB231FE2 connects directly to the REB controller base board (REB-CBB), or can be used as an RF interface in combination with an Atmel microcontroller development platform. The REB231FE2 together with a microcontroller forms a fully functional wireless node. Figure 1-1. Top and bottom view of the REB231FE2. 8-bit Atmel Microcontrollers Application Note Rev. 8479A-AVR-01/12 2 Atmel AVR2080 8479A-AVR-01/12 2 Disclaimer Typical values contained in this application note are based on simulations and testing of individual examples. Any information about third-party materials or parts was included in this document for convenience. The vendor may have changed the information that has been published. Check the individual vendor information for the latest changes. 3 Overview The radio extender board is assembled with an Atmel AT86RF231 radio transceiver [1], a Sk yworks SE2431L FEM [9] and two ceramic antennas, demonstrating an increased link budget together with hardware-based antenna diversity, improving radio link robustness in harsh environments significantly [3]. The ra dio extender board was designed to interface to an Atmel microcontroller development platform. The microcontroller board in combination with the REB provides an ideal way to: • Evaluate the outstanding radio transceiver performance, such as the excellent receiver sensitivity achieved at ultra-low current consumption • Test the radio transceiver’s comprehensive hardware support of the IEEE 802.15.4 standard • Test the radio transceiver’s enhanced feature set, which includes antenna diversity, AES, high data rate modes and other functions The photograph in Figure 3-1 shows a development and evaluation setup using the REB-CBB [2] in combination with the Atmel REB231FE2 radio extender board. Figure 3-1. The REB231F2 connected to a REB-CBB. Atmel AVR2080 3 8479A-AVR-01/12 4 Functional description The block diagram of the Atmel REB231FE2 radio extender board is shown in Figure 4-1. The power supply pins and all digital I/Os of the radio transceiver are routed to the 2 × 20-pin expansion connector to interface to a power supply and a microcontroller. The Atmel AT86RF231 antenna diversity (AD) feature supports the control of two antennas (ANT0/ANT1). A digital control pin (DIG1) is used to control an external RF switch selecting one of the two antennas. During the RX listening period, the radio transceiver switches between the two antennas autonomously, without the need for microcontroller interaction, if the AD algorithm is enabled. Once an IEEE 802.15.4 synchronization header is detected, an antenna providing sufficient signal quality is selected to receive the remaining frame. This ensures reliability and robustness, especially in harsh environments with strong multipath fading effects. Board-specific information such as board identifier, the node MAC address, and production calibration values are stored in an ID EEPROM. The SPI bus of the EEPROM is shared with the radio transceiver’s interface. Figure 4-1. REB231FE2 block diagram. AT86RF231 RFP RFN DIG2 EXPAND1 SE2431L ANT2 ANT1 XTAL2XTAL1 XTAL DIG1 CLKM Protection VDD VSS ID EEPROM SPI 4 IRQ RSTN SLPTR DIG4 DIG3 DIG2 TP6 50R TP7 LPF LPF VDD VDD X2 X3 4.1 Interface connector specification The REB is equipped with a 2 × 20-pin, 100mil expansion connector. The pin assignment enables a direct interface to the REB-CBB [2]. Further, the i nterface connects to the Atmel STK ® 500/501 microcontroller development platform to enable support for various Atmel 8-bit AVR ® microcontrollers. The REB is preconfigured to interface to the REB-CBB and STK501 with an Atmel ATmega1281. If an Atmel ATmega644 is used as the microcontroller, the 0Ω resistors R10 through R18 must be removed and re-installed on the board manually as resistors R20 through R28 (see appendix A.1). Other mi crocontroller development platforms need to be interfaced using dedicated adapter boards. 4 Atmel AVR2080 8479A-AVR-01/12 4.1.1 REB-CBB (Atmel ATxmega256A3) and Atmel STK501 (Atmel ATxmega1281) configuration Table 4-1. Default expansion connector mapping. Pin# Function Pin# Function 1 GND 2 GND 3 n.c. 4 n.c. 5 n.c. 6 n.c. 7 n.c. 8 n.c. 9 n.c. 10 n.c. 11 n.c. 12 n.c. 13 n.c. 14 n.c. 15 n.c. 16 n.c. 17 XT1 (MCLK) 18 n.c. 19 Vcc 20 Vcc 21 GND 22 GND 23 PB7 (open) 24 PB6 (open) 25 PB5 (RSTN) 26 PB4 (SLPTR) 27 PB3 (MISO) 28 PB2 (MOSI) 29 PB1 (SCLK) 30 PB0 (SEL) 31 PD7 (TP1) 32 PD6 (MCLK) 33 PD5 (TP2) 34 PD4 (DIG2) 35 PD3 (TP3) 36 PD2 (open) 37 PD1 (TP4) 38 PD0 (IRQ) 39 GND 40 EE#WP (write protect EEPROM) 4.1.2 Atmel ATmega644 configuration Table 4-2. Expansion connector mapping when assembled for ATmega644. Pin# Function Pin# Function 1 GND 2 GND 3 n.c. 4 n.c. 5 n.c. 6 n.c. 7 n.c. 8 n.c. 9 n.c. 10 n.c. 11 n.c. 12 n.c. 13 n.c. 14 n.c. 15 n.c. 16 n.c. 17 XT1 (MCLK) 18 n.c. 19 Vcc 20 Vcc 21 GND 22 GND 23 PB7 (SCLK) 24 PB6 (MISO) 25 PB5 (MOSI) 26 PB4 (SEL) …
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dresden elektronik Tel.: 0351 – 31 85 00 Seite 1 von 1 ingenieurtechnik gmbh Fax: 0351 – 3 18 50 10 Enno-Heidebroek-Str. 12 [email protected] 01237 Dresden www.dresden-elektronik.de agent: dresden elektronik ingenieurtechnik gmbh client: Atmel Automotive GmbH FCC ID: VNR-E31F2-X5B-00 FCC Part 15 Certification Exhibit: Oscillator block diagram ATxmega256A3 Q2 16,0 MHz Exhibit: Oscillator block diagram Onboard Q1: Timer/Counter Oscillator Q2: Transceiver Crystal Oscillator Q1 32.768 kHz AT86RF231 REB Controller BaseBoard REB231FE2 V4.5.1
dresden elektronik Tel.: 0351 – 31 85 00 Seite 1 von 4 ingenieurtechnik gmbh Fax: 0351 – 3 18 50 10 Enno-Heidebroek-Str. 12 [email protected] 01237 Dresden www.dresden-elektronik.de agent: dresden elektronik ingenieurtechnik gmbh client: Atmel Automotive GmbH FCC ID: VNR-E31F2-X5B-00 FCC Part 15 Certification Exhibit: External Photo Front View REB231FE2 2012-02-23 Seite 2 von 4 Back View REB231FE2 2012-02-23 Seite 3 von 4 Top View CBB Bottom View CBB 2012-02-23 Seite 4 von 4 Side View REB231FE2 plugged on CBB
dresden elektronik Tel.: 0351 – 31 85 00 Seite 1 von 2 ingenieurtechnik gmbh Fax: 0351 – 3 18 50 10 Enno-Heidebroek-Str. 12 [email protected] 01237 Dresden www.dresden-elektronik.de agent: dresden elektronik ingenieurtechnik gmbh client: Atmel Automotive GmbH FCC ID: VNR-E31F2-X5B-00 FCC Part 15 Certification Exhibit: Label Sample Bottom View: REB231FE2 Label Information: ∑ serial number (2D code) ∑ MAC adress ∑ FCC-ID Information in copper ∑ product name ∑ CE sign ∑ FCC sign 2012-02-23 Seite 2 von 2 Bottom View: Controller Base Board Label Information: ∑ Article number(2D-code) ∑ serial number ∑ FCC-ID
dresden elektronik Tel.: 0351 – 31 85 00 Seite 1 von 1 ingenieurtechnik gmbh Fax: 0351 – 3 18 50 10 Enno-Heidebroek-Str. 12 [email protected] 01237 Dresden www.dresden-elektronik.de agent: dresden elektronik ingenieurtechnik gmbh client: Atmel Automotive GmbH FCC ID: VNR-E31F2-X5B-00 FCC Part 15 Certification Exhibit: Internal Photo Front View REB231FE2
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”ø≤øπª≥ª≤ ̈ ̄fi””Ù œ”” ̃ fl∞∞¥∑Ωø ̈∑±≤ Ã◊“«¡Ãfl‘ ⁄±Æ ø Ω±≥∞¥ª ̈ª ºª≠ΩÆ∑∞ ̈∑±≤ ±∫ ̈∏ª fl–◊ ±∫ ªøΩ∏ ¥øßªÆ ø≤º Ω±≥∞±≤ª≤ ̈ ∞¥ªø≠ª ƪ∫ªÆ ̈± ̈∏ª çfl ŒÓÓÎ ◊¤¤¤ ËÓÚÔÎÚÏ ”fl› Œª∫ªÆª≤Ωª ”ø≤ ́ø¥å ̄”fl›¡Æªøº≥ªÚ∏ ̈≥¥ ̃ ¥±Ωø ̈ªº ∑≤ ̈∏ª fl ŒÓÓÎ ̈±∞ º∑ÆªΩ ̈±ÆßÚ ÓÚÔ ”ø∑≤ Õ ̈øΩμ ‘øßªÆ≠ Ã∏ª ≥ø∑≤ ”fl› ≠ ̈øΩμ ≠±∫ ̈©øÆª Ω±≤≠∑≠ ̈≠ ±∫ ̈∏ƪª ¥øßªÆ≠ ≠ ̈øÆ ̈∑≤π ∫Ʊ≥ ̈∏ª æ± ̈ ̈±≥ ́∞Ê i –¥ø ̈∫±Æ≥ flæ≠ ̈ÆøΩ ̈∑±≤ ‘øßªÆ Û –fl‘ i ÃÆø≤≠Ωª∑™ªÆ flæ≠ ̈ÆøΩ ̈∑±≤ ‘øßªÆ Û Ãfl‘ i ”fl› ›±Æª ¥øßªÆ ä ”›‘ Ì ÓÓÎÿÛ”›À ...∑ƪ¥ª≠≠ÛËÒÔ fl ŒÓÓÎ ⁄±Æ ± ̈∏ªÆ ≠ ̈øΩμ ¥øßªÆ≠ ∞¥ªø≠ª ƪ∫ªÆ ̈± ≠ªΩ ̈∑±≤ ÓÚÓÚ ÓÚÔÚÔ –¥ø ̈∫±Æ≥ flæ≠ ̈ÆøΩ ̈∑±≤ ‘øßªÆ ̄–fl‘ ̃ Ã∏ª –¥ø ̈∫±Æ≥ flæ≠ ̈ÆøΩ ̈∑±≤ ‘øßªÆ ̄–fl‘ ̃ Ω±≤ ̈ø∑≤≠ ø¥¥ ∞¥ø ̈∫±Æ≥ ̄∑ÚªÚ ”›À ø≤º æ±øÆº ̃ ≠∞ªΩ∑∫∑Ω ∫ ́≤Ω ̈∑±≤ø¥∑ ̈ß ̄ÆªØ ́∑ƪº æß ̈∏ª ”fl› ≠±∫ ̈©øÆª ∞øΩμøπª≠ ̃ ø≤º ∞Ʊ™∑ºª≠ ∑≤ ̈ªÆ∫øΩª≠ ̈± ̈∏ª ́∞∞ªÆ ≥±º ́¥ª≠Ú Ã∏ªÆª∫±ÆªÙ ø¥¥ ́∞∞ªÆ ≥±º ́¥ª≠ øÆª ∑≤ºª∞ª≤ºª≤ ̈ ∫Ʊ≥ ̈∏ª ́≤ºªÆ¥ß∑≤π ∞¥ø ̈∫±Æ≥Ú Õ∑≤Ωª ≠±≥ª Ω±≥∞±≤ª≤ ̈≠ ±∫ ̈∏ª –fl‘ ≥øßæª ºª∞ª≤ºª≤ ̈ ±≤ ̈∏ª øΩ ̈ ́ø¥ ∞¥ø ̈∫±Æ≥Òæ±øÆºÙ ꦒ ̈ø∑≤ ∫ ́≤Ω ̈∑±≤ø¥∑ ̈ß ©∑ ̈∏∑≤ ̈∏ª –fl‘ ∏ø≠ ̈± æª ∑≥∞¥ª≥ª≤ ̈ªº ∫±Æ ªøΩ∏ ≠ª ̈ ́∞Ù ¥∑μª ‘¤‹≠ ø≤º æ ́ ̈ ̈±≤≠Ú ⁄±Æ ªøΩ∏ ≥∑ΩÆ±Ω±≤ ̈Ʊ¥¥ªÆ ø ≠ª∞øÆø ̈ª ∑≥∞¥ª≥ª≤ ̈ø ̈∑±≤ ª®∑≠ ̈≠ ©∑ ̈∏∑≤ ̈∏ª –fl‘ ¥øßªÆ≠Ú Ã∏ª æ±øÆº ø≤º ø∞∞¥∑Ωø ̈∑±≤ ≤ªªº≠ øÆª øºø∞ ̈ªº ™∑ø ø æ±øÆº Ω±≤∫∑π ́Æø ̈∑±≤ ∫∑¥ª ̄∞ø¥¡Ω±≤∫∑πÚ∏ ̃Ú Ã∏∑≠ æ±øÆº Ω±≤∫∑π ́Æø ̈∑±≤ ∫∑¥ª ª®∑≠ ̈≠ ª®øΩ ̈¥ß ±≤Ωª ∫±Æ ªøΩ∏ ≠ ́∞∞±Æ ̈ªº ∏øÆº©øÆª ∞¥ø ̈∫±Æ≥Ú Ã∏ª –fl‘ ∞Ʊ™∑ºª≠ ∑≤ ̈ªÆ∫øΩª≠ ̈± ̈∏ª ∫±¥¥±©∑≤π Ω±≥∞±≤ª≤ ̈≠Ê i ÃÆø≤≠Ωª∑™ªÆ øΩΩª≠≠ ∫ ́≤Ω ̈∑±≤ø¥∑ ̈ßÙ ∑ÚªÚ ™∑ø Õ–◊ ±Æ º∑ÆªΩ ̈ ≥ª≥±Æß øΩΩª≠≠ i Ÿ–◊— Ω±≤ ̈Ʊ¥ ̄øΩΩª≠≠ ∫Ʊ≥ ≥∑ΩÆ±Ω±≤ ̈Ʊ¥¥ªÆ ̈± ̈∏ª Ÿ–◊— ∞∑≤≠ Ω±≤≤ªΩ ̈ªº ̈± ̈∏ª ̈Æø≤≠Ωª∑™ªÆ ̃ i ‘±©Û¥ª™ª¥ ∑≤ ̈ªÆÆ ́∞ ̈ ∏ø≤º¥∑≤π i Ã∑≥ªÆ≠ ̄∏∑π∏Û∞Æ∑±Æ∑ ̈ß ø≤º ≠±∫ ̈©øÆª ̈∑≥ªÆ≠ ̃ i ÕªÆ∑ø¥ ≠ ̈ƪø≥ ◊Ò— ≠ ́∞∞±Æ ̈ ̄™∑ø ÀÕfi ±Æ ÀflŒÃ ̃ i flΩΩª≠≠ ̈± ∞ªÆ≠∑≠ ̈ª≤ ̈ ≠ ̈±Æøπª ̄ªÚπÚ ¤¤–Œ—” ̃ i ‘¤‹ Ω±≤ ̈Ʊ¥ ±Æ æ ́ ̈ ̈±≤ øΩΩª≠≠ ≠ ́∞∞±Æ ̈ Ã∏ª≠ª Ω±≥∞±≤ª≤ ̈≠ øÆª ∑≥∞¥ª≥ª≤ ̈ªº ø≠ ≠±∫ ̈©øÆª 楱Ωμ≠ ø≤º øÆª ∞±Æ ̈ªº æø≠ªº ±≤ ̈∏ª ̈øÆπª ̈ ≥∑ΩÆ±Ω±≤ ̈Ʊ¥¥ªÆÚ Ã∏ª ̈Æø≤≠Ωª∑™ªÆ øΩΩª≠≠ ≥±º ́¥ª ∞Ʊ™∑ºª≠ ∑≤ ̈ªÆ∫øΩª ̈± ̈∏ª ƪπ∑≠ ̈ªÆ≠ ø≤º ∫Æø≥ª æ ́∫∫ªÆ ±∫ ̈∏ª ̈Æø≤≠Ωª∑™ªÆÚ Ã∏ª ̈∑≥ªÆ ≥±º ́¥ª ∑≥∞¥ª≥ª≤ ̈≠ ≠±∫ ̈©øÆª ̈∑≥ªÆ ∫ ́≤Ω ̈∑±≤ø¥∑ ̈ß ́≠ªº æß ̈∏ª ”fl›Ù Ãfl‘Ù ø≤º ø∞∞¥∑Ωø ̈∑±≤ ¥øßªÆÚ Ã∏ª ≠ªÆ∑ø¥ ≠ ̈ƪø≥ ◊Ò— ≥±º ́¥ª ∞Ʊ™∑ºª≠ Ω±≥≥ ́≤∑Ωø ̈∑±≤ ≠ªÆ™∑Ωª≠ ∫±Æ ̈Æø≤≠≥∑≠≠∑±≤ ø≤º ÆªΩª∞ ̈∑±≤ ±∫ ≠ªÆ∑ø¥ ºø ̈øÙ ªÚπÚ ÀflŒÃÒÀÕfi Ω±≥≥ ́≤∑Ωø ̈∑±≤Ú Ã∏ª Ÿ–◊— ≥±º ́¥ª Ω±≤ ̈Ʊ¥≠ ̈∏ª πª≤ªÆø¥ ∞ ́Æ∞±≠ª ◊Ò— ∞∑≤≠ ±∫ ̈∏ª ≥∑ΩÆ±Ω±≤ ̈Ʊ¥¥ªÆÚ Ã∏ª ∑≤ ̈ªÆÆ ́∞ ̈ ≥±º ́¥ª ∏ø≤º¥ª≠ ̈∏ª ̈Æø≤≠Ωª∑™ªÆ ∑≤ ̈ªÆÆ ́∞ ̈ ̄≠ ̃Ú ÿøÆº©øÆª ̈∑≥ªÆ ∑≤ ̈ªÆÆ ́∞ ̈≠ ø≤º ± ̈∏ªÆ ∑≤ ̈ªÆÆ ́∞ ̈≠ øÆª ∏ø≤º¥ªº ∑≤ ̈ªÆ≤ø¥¥ß æß ̈∏ª –fl‘Ú Ã∏ª ∫ ́≤Ω ̈∑±≤ ∞Ʊ ̈± ̈ß∞ª≠ ∫±Æ ø¥¥ –fl‘ fl–◊ ∫ ́≤Ω ̈∑±≤≠ øÆª ∑≤Ω¥ ́ºªº ∑≤ ∫∑¥ª –fl‘Ò◊≤ΩÒ∞ø¥Ú∏Ú ÓÚÔÚÓ ÃÆø≤≠Ωª∑™ªÆ flæ≠ ̈ÆøΩ ̈∑±≤ ‘øßªÆ ̄Ãfl‘ ̃ Ã∏ª ÃÆø≤≠Ωª∑™ªÆ flæ≠ ̈ÆøΩ ̈∑±≤ ‘øßªÆ ̄Ãfl‘ ̃ Ω±≤ ̈ø∑≤≠ ̈∏ª ̈Æø≤≠Ωª∑™ªÆ ≠∞ªΩ∑∫∑Ω ∫ ́≤Ω ̈∑±≤ø¥∑ ̈ß ́≠ªº ∫±Æ ̈∏ª ËÓÚÔÎÚÏ ”fl› ≠ ́∞∞±Æ ̈ ø≤º ∞Ʊ™∑ºª≠ ∑≤ ̈ªÆ∫øΩª≠ ̈± ̈∏ª ”fl› ›±Æª ‘øßªÆ ©∏∑Ω∏ ∑≠ ∑≤ºª∞ª≤ºª≤ ̈ ∫Ʊ≥ ̈∏ª ́≤ºªÆ¥ß∑≤π ̈Æø≤≠Ωª∑™ªÆÚ fiª≠∑ºª≠ ̈∏ø ̈Ù ̈∏ª …
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11 22 33 44 55 66 77 88 D D C C B B A A * ***** * ReB_ControllerBaseBoard * 16.03.2010ReB_ControllerBaseBoard.SchDoc TitleSize: Project: Date:File: Revision: Sheet of A3 1 ReB_ControllerBaseBoard.PrjPCB 20049SW1 GNDGND 1989 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 Expand14 PA3 1 PA4 2 PA5 3 PA6 4 PA7 5 PB0 6 PB1 7 PB2 8 PB3 9 PB4 10 PB5 11 PB6 12 PB7 13 GND 14 VCC 15 PC0 16 PC1 17 PC2 18 PC3 19 PC4 20 PC5 21 PC6 22 PC7 23 GND 24 VCC 25 PD0 26 PD1 27 PD2 28 PD3 29 PD4 30 PD5 31 PD6 32 PD7 33 GND 34 VCC 35 PE0 36 PE1 37 PE2 38 PE3 39 PE4 40 PE5 41 PE6 42 PE7 43 GND 44 VCC 45 PF0 46 PF1 47 PF2 48 PF3 49 PF4 50 PF5 51 PF6 54 PF7 55 GND 52 VCC 53 PDI 56 RESET 57 PRO 58 PR1 59 GND 60 AVCC 61 PA0 62 PA1 63 PA2 64 ATxmega256A3 29645 U124 GND GND GND GND VTG VTG GND GND RSTNSLPTRMISOMOSISCKSELNIRQDIG2 RSTN SLPTR MISO MOSI SCK SELNIRQDIG2CLKM CLKM TXCW TXCWPA0PA1PA2PA3PA4PA5PA6PA7 PA0 PA1 PA2 PA3 PA4 PA5 PA6 PA7 VTG GND PE0PE1PE2PE3PE4PE5TOSC2TOSC1 PE0 PE1 PE2 PE3 PE4 PE5 VTG GND 5352 1 2 3 4 5 6 7 8 9 10 PORTF9 PF0PF1PF2PF3PF4PF5PF6PF7 PF0 PF1 PF2 PF3 PF4 PF5 PF6 PF7 VTG GND TCKTDOTDITMS GND VTG uCRST TCKTDOTDITMS VTG GND TxD0RxD0D1D2D3T1 GND VTG VTG GND GND 3572 1 3 2 DBGSEL PDI uCRST uCRSTPDI TOSC2TOSC1 GND low-active LEDs connected to ADC pins to enable software-based production test D1D2D3T1 XT1 #CS 1 SO 2 #WP 3 GND 4 SI 5 SCK 6 #HOLD 7 VCC 8 AT25DF021 29646 U223 2M_SCK2M_SI 2M_SO2M_nCS VTG GND VTG 2M_SO2M_nCS2M_SCK2M_SI XT1 GND GND VTG 4428 12 PWR7 5352 1 2 3 4 5 6 7 8 9 10 PORTE95352 1 2 3 4 5 6 7 8 9 10 PORTA9 5352 1 2 3 4 5 6 7 8 9 10 DBG9 25289T1 100n7777C5 470R17632 R3 1785D43 VTG GND 10n18002C2 18454 1 2 3 4 5 6 USARTD016 RXD0 TXD0 VTG GND uCRST 20365 AAAx2 BT1 VTG GND 3.768 kHz6130Q1 3027 redD3 15833 L1 3027 redD2 3027 redD1 470R17632 R2 470R17632 R1 25289RST 100n7777 C6 100n7777C7 100n7777C8 100n7777C9 100n7777C10 22p19015C322p19015C4 100n7777C11 GND 10u19441C15 10u19441C12 10u19441C13 10u19441C14 JTAGICE MKII debug port selection1-2 : PDI access2-3: JTAG access für RS232 Pegelwanderde Art.Nr. 28560 885410kR4 8mmZ10 8mmZ11 8mmZ12 8mmZ13 8mmZ14 4521MutterZ1 5252M2,5x8Z2 DIN1255138Z3 5 449 36 00.250.0029647Z4 UP1 RF200RF201 SCH REB Controller-Base Board LP-B de29207 5 449 36 00.150.00
1 1 2 2 3 3 4 4 5 5 6 6 7 7 8 8 DD CC BB AA 1 MCU Wireless 01099 Dresden Koenigsbruecker Landstrasse 61 ATMEL Automotive GmbH Germany 1 RadioExtender231FE2 DE5 449 42 00.100.01 06.05.2011 V:\A09-1384_REB231FE2\06_Hardware\PCB_Design\RadioExtender231FE2_V4.5.1\RadioExtender231FE2_V4.5.1.sch Title Size:Project: Date: File: Revision:Sheetof A3 Cannot open file R:\own\text\ATMEL_L ogo.bmp 1 Project DGND IRQ MCLK MOSISEL_TRXSCKMISO SLPTR EVDD DGND DGND DGND DGND DGND DGNDDGNDDGNDDGND DGND DGNDDGND CVTG DGND PB1 PB2PB3 PB0 PB4PB5 PD4 XT1 DGNDDGND CVTGCVTG PD6 STK501 - EXPAND1 S/N S/N1 DGND DGND DGND DGND DGND Route DVSS pins to plane on top and not directly to the paddle underneath the IC ATMEL G2 ATMEL_Logo PB6 ATmega644 configATmega1281 config RSTN SLPTR MCLK IRQ MOSI SEL SCK MISO RSTN DIG2 SLPTR MCLK IRQ MOSI SEL SCK MISO PB2 PD6 PB1 PB7 PB6 PB5 PB4 PD2 PB2 PB3 PB0 PB1 PD0 PD4 PB5 PB4 PD6 MCLK PB7 PD7 PD7 DIG2 DIG2 TP6 TP7 PD0PD1 PD2PD3 PD5 TP4 TP TP3 TP TP2 TP TP1 TP MISO MOSI SCK SEL_EE RSTN DGNDDGND EE#WP EE#WP SEL DEVDDEVDD mm 07.97.16.35.510.38.79.5 mm 07.16.35.57.98.79.510.3 Antenna Tuning Line Scale DGND DGNDDGNDDGNDDGNDDGNDDGNDDGND DGNDDGNDDGNDDGNDDGNDDGND DGNDDGND RSTN DEVDD To make use of BOD, assemble resistors with 1M0 to avoid radio wake up in case of a BOD reset condition. RSTN SLPTR Antenna Tuning Line Scale DEVDD DEVDD DEVDD DIG1 DGND DEVDD SEL_TRX RST DGND DGND DIG1 CSD DIG3 DGND DGND DGND EVDD EVDD DIG3 DIG4 CSD TP5 TP DGNDDGND DGNDDGND DGND iNet ClassiNet Class i Net Class i Net Class i Net Class i Net Class i Net Class i Net Class 1 LT08AD4303F SH1 incl. A08-0961 A 1 nc 2 A2 2.45GHz 3.3p C2 22pF C12 22pF C11 A 1 nc 2 A1 2.45GHz 3.3p C1 100nF C42 100nF C30 100nF C31 100nF C37 10pF C39 10pF C38 10pF C34 1.5k R19 0R00 R10 0R00 R11 0R00 R12 0R00 R13 0R00 R14 0R00 R15 0R00 R16 0R00 R17 0R00 R18 R1 nc R2 nc R3 nc 1.2k R29 22pF C43 1uF C29 1uF C32 1uF C33 1uF C28 C13 nc C3 nc C4 nc C5 nc C6 nc C14 nc C7 nc C8 nc C9 nc C10 nc C20 nc C21 nc R20 nc R21 nc R22 nc R23 nc R24 nc R25 nc R26 nc R27 nc R28 nc 1M00 R7 4.7uF C18 4.7uF C26 49.9R R6 470R R8 1M00 R9 2.2pF C36 350mA F1 Jumper X4 BZG05C3V9 D1 13 24 16MHz Q1 12pF C35 VCC 8 GND 4 1 1 2 2 7 7 1 NC7WP32K8X_NL U4A 6 6 5 5 3 3 1 NC7WP32K8X_NL U4B VCC 5 GND 2 1 1 6 6 NC7WV04P6X_NL U6A 3 3 4 4 NC7WV04P6X_NL U6B DGND 74279263 L1 Inductor_Iron DEVDD 12 34 56 78 910 1112 1314 1516 1718 1920 2122 2324 2526 2728 2930 3132 3334 3536 3738 3940 1007-121-040 X1 R32 nc 0R00 R31 DGND C15 nc C22 nc FIDUCIAL 1.5mm RF2 FIDUCIAL 1.5mm RF1 PCB1 PCB EVDD 113kR30 2.7nH L2 2.7nH L3 1.0pF C25 1.0pF C27 1.0pF C40 1.0pF C41 DGNDDGND 12 1001-121-002 JP1 B2 1 DNC 3 T/R 6 DNC 4 VDD 5 B1 2 DNC 7 DNC 8 GND 9 GND 10 GND 11 GND 12 ANT2 13 GND 14 ANT1 15 ANT_SEL 16 DNC 17 GND 18 VCC2 19 CSD 20 CPS 21 VCC1 22 BOUT 23 CTX 24 Paddle (GND) 25 SE2431L-R U1 DGND EVDD Cannot open file C:\Documents and Settings\jllass en\Desktop\qr code.jpg Product number/revision Serial number Label PCBA with MAC64 and FCC ID LAB1 #CS 1 SO 2 #WP 3 GND 4 SI 5 SCK 6 #HOLD 7 VCC 8 AT25010B AT25010B-MAHL-T U5 Document RadioExtender231FE2_V4.5.1_PCBA_Documents Z1 IN C A GND GND MS-147 X2 IN C A GND GND MS-147 X3 DIG4 2 AVSS 3 RFP 4 RFN 5 AVSS 6 DVSS 7 RSTN 8 DIG1 9 DIG2 10 SLP_TR 11 DVSS 12 DVDD 13 DVDD 14 DEVDD 15 DVSS 16 CLKM 17 DVSS 18 SCLK 19 MISO 20 DVSS 21 MOSI 22 SEL 23 IRQ 24 XTAL2 25 XTAL1 26 AVSS 27 EVDD 28 AVDD 29 AVSS 30 AVSS 31 AVSS 32 AT86RF231 MLF32 DIG3 1 DIE 33 AT86RF231-ZU U3 AT86RF231 PIA101 PIA102 COA1 PIA201 PIA202 COA2 PIC101 PIC102 COC1 PIC201 PIC202 COC2 PIC301 PIC302 COC3 PIC401 PIC402 COC4 PIC501 PIC502 COC5 PIC601 PIC602 COC6 PIC701 PIC702 COC7 PIC801 PIC802 COC8 PIC901 PIC902 COC9 PIC1001 PIC1002 COC10 PIC1101PIC1102 COC11 PIC1201PIC1202 COC12 PIC1301 PIC1302 COC13 PIC1401 PIC1402 COC14 PIC1501 PIC1502 COC15 PIC1801 PIC1802 COC18 PIC2001 PIC2002 COC20 PIC2101 PIC2102 COC21 PIC2201 PIC2202 COC22 PIC2501PIC2502 COC25 PIC2601 PIC2602 COC26 PIC2701PIC2702 COC27 PIC2801PIC2802 COC28 PIC2901 PIC2902 COC29 PIC3001 PIC3002 COC30 PIC3101 PIC3102 COC31 PIC3201 PIC3202 COC32 PIC3301 PIC3302 COC33 PIC3401 PIC3402 COC34 PIC3501 PIC3502 COC35 PIC3601 PIC3602 COC36 PIC3701 PIC3702 COC37 PIC3801 PIC3802 COC38 PIC3901 PIC3902 COC39 PIC4001PIC4002 COC40 PIC4101PIC4102 COC41 PIC4201 PIC4202 COC42 PIC4301PIC4302 COC43 PID10A PID10K COD1 PIF101PIF102 COF1 COG2 PIJP101PIJP102 COJP1 PIL101PIL102 COL1 PIL201 PIL202 COL2 PIL301 PIL302 COL3 COLAB1 COPCB1 PIQ101 PIQ102 PIQ103 PIQ104 COQ1 PIR101 PIR102 COR1 PIR201 PIR202 COR2 PIR301PIR302 COR3 PIR601PIR602 COR6 PIR701 PIR702 COR7 PIR801 PIR802 COR8 PIR901PIR902 COR9 PIR1001PIR1002 COR10 PIR1101PIR1102 COR11 PIR1201PIR1202 COR12 PIR1301PIR1302 COR13 PIR1401PIR1402 COR14 PIR1501PIR1502 COR15 PIR1601PIR1602 COR16 PIR1701PIR1702 COR17 PIR1801PIR1802 COR18 PIR1901PIR1902 COR19 PIR2001PIR2002 COR20 PIR2101PIR2102 COR21 PIR2201PIR2202 COR22 PIR2301PIR2302 COR23 PIR2401PIR2402 COR24 PIR2501PIR2502 COR25 PIR2601PIR2602 COR26 PIR2701PIR2702 COR27 PIR2801PIR2802 COR28 PIR2901PIR2902 COR29 PIR3001PIR3002 COR30 PIR3101PIR3102 COR31 PIR3201PIR3202 COR32 PIRF101 CORF1 PIRF201 CORF2 COS0N1 PISH101 COSH1 PITP101 COTP1 PITP201 COTP2 PITP301 COTP3 PITP401 COTP4 PITP501 COTP5 PITP601 COTP6 PITP701 COTP7 PIU101 PIU102 PIU103 PIU104 PIU105 PIU106 PIU107 PIU108 PIU109 PIU1010 PIU1011 PIU1012 PIU1013 PIU1014 PIU1015 PIU1016 PIU1017 PIU1018 PIU1019 PIU1020 PIU1021 PIU1022 PIU1023 PIU1024 PIU1025 COU1 PIU301PIU302PIU303PIU304PIU305PIU306PIU307PIU308 PIU309 PIU3010 PIU3011 PIU3012 PIU3013 PIU3014 PIU3015 PIU3016 PIU3017PIU3018PIU3019PIU3020PIU3021PIU3022PIU3023PIU3024 PIU3025 PIU3026 PIU3027 PIU3028 PIU3029 PIU3030 PIU3031 PIU3032 PIU3033 COU3 PIU401 PIU402 PIU404 PIU407 PIU408 COU4A PIU403 PIU405 PIU406 COU4B PIU501 PIU502 PIU503 PIU504PIU505 PIU506 PIU507 PIU508 COU5 PIU601 PIU602 PIU605 PIU606 COU6A PIU603PIU604 COU6B PIX101PIX102 PIX103PIX104 PIX105PIX106 PIX107PIX108 PIX109PIX1010 PIX1011PIX1012 PIX1013PIX1014 PIX1015PIX1016 PIX1017PIX1018 PIX1019PIX1020 PIX1021PI…
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SLG Prüf- und Zertifizierungs GmbH Burgstädter Straße 20 D – 09232 Hartmannsdorf Test report Radio module [Funkeinheit] Controller Base Board (CBB) with Radio Extender Board (REB231FE2 v4.5.0) Test plan of customer FCC rules Radio test 1044-11-EE-11-PB002 Testing is a confidential matter Test report no. [Prüfbericht- Nr.]: 1044-11-EE-11-PB002 Date [Datum]: 2011-06-09 Revised by [geprüft]: Tested by [gemessen]: Svadlenka Puder Head of EMC laboratory [Leiter EMV-Labor] EMC laboratory [EMV-Labor] SLG Prüf- und Zertifizierungs GmbH Burgstädter Straße 20 D-09232 Hartmannsdorf EMC laboratory Phone: +49 (0) 37 22 / 73 23 - 760 Fax: +49 (0) 37 22 / 73 23 - 899 e-mail: [email protected] http://www.slg.de.com This report consists of [Dieser Bericht besteht aus]: 89 Pages [Seiten] Customer [Auftraggeber] Atmel Automotive GmbH Design Center Dresden Represented by [vertreten durch] Königsbrücker Straße 61 Mr. [Herr] Beyer, Sascha 01099 Dresden, Germany [Deutschland] Order [Auftrag] Dated [vom]: 2011-02-22 Order no. [Auftragsnr.]: K4500287853 Aim of test [Zweck der Prüfung] Verification of conformity to the requirements according to customer’s test plan [Nachweis der Einhaltung der Anforderungen nach Prüfplan des Auftraggebers] Partial tests of customer’s test plan [Teilprüfungen nach Prüfplan des Auftraggebers] Product [Erzeugnis] Radio module [Funkeinheit] Type [Typ] Controller Base Board (CBB) with Radio Extender Board (REB231FE2 V4.5.0) Manufacturer [Hersteller] dresden elektronik ingenieurtechnik GmbH Enno-Heidebroek-Straße 12 01237 Dresden, Germany [Deutschland] Date of test [Prüfzeitraum] 2011-02-21 - 2011-04-07 Location of test [P…
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St�rnhofer Berg 15 · Unterleinleiter · Germany
| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15C | 2.40 GHz - 2.48 GHz | 165.96 mW |

REB233SMAD-EK
Equipment Class
DTS - Digital Transmission System
2.4GHz IEEE802.15.4 compliant antenna diversity radio transceiver
Equipment Class
DTS - Digital Transmission System
2.4GHz IEEE802.15.4 compliant antenna diversity radio transceiver
Equipment Class
DTS - Digital Transmission System
2.4GHz IEEE802.15.4 compliant single chip radio transceiver
Equipment Class
DTS - Digital Transmission System