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AirPrime - - Hardware Integration Guide | Users Manual | 912.03 KiB | / February 06 2018 | |||
1 | Test Report | April 12 2017 | ||||||
1 | External Photos | / February 06 2018 | ||||||
1 | Internal Photos | / February 06 2018 | ||||||
1 | ID Label/Location Info | / April 12 2017 | ||||||
1 | RF Exposure Info | / April 12 2017 | ||||||
1 | Cover Letter(s) | / April 12 2017 | ||||||
1 | Cover Letter(s) | / April 12 2017 | ||||||
1 | Test Setup Photos | April 12 2017 / February 06 2018 |
1 | AirPrime - - Hardware Integration Guide | Users Manual | 912.03 KiB | / February 06 2018 |
Hardware Integration Guide AirPrime AR7584 4111xxxx 0.1 Nov 06, 2017 Hardware Integration Guide Important Notice Due to the nature of wireless communications, transmission and reception of data can never be guaranteed. Data may be delayed, corrupted (i.e., have errors) or be totally lost. Although significant delays or losses of data are rare when wireless devices such as the Sierra Wireless modem are used in a normal manner with a well-constructed network, the Sierra Wireless modem should not be used in situations where failure to transmit or receive data could result in damage of any kind to the user or any other party, including but not limited to personal injury, death, or loss of property. Sierra Wireless accepts no responsibility for damages of any kind resulting from delays or errors in data transmitted or received using the Sierra Wireless modem, or for failure of the Sierra Wireless modem to transmit or receive such data. Safety and Hazards Do not operate the Sierra Wireless modem in areas where cellular modems are not advised without proper device certifications. These areas include environments where cellular radio can interfere such as explosive atmospheres, medical equipment, or any other equipment which may be susceptible to any form of radio interference. The Sierra Wireless modem can transmit signals that could interfere with this equipment. Do not operate the Sierra Wireless modem in any aircraft, whether the aircraft is on the ground or in flight. In aircraft, the Sierra Wireless modem MUST BE POWERED OFF. When operating, the Sierra Wireless modem can transmit signals that could interfere with various onboard systems. Note:
Some airlines may permit the use of cellular phones while the aircraft is on the ground and the door is open. Sierra Wireless modems may be used at this time. The driver or operator of any vehicle should not operate the Sierra Wireless modem while in control of a vehicle. Doing so will detract from the driver or operators control and operation of that vehicle. In some states and provinces, operating such communications devices while in control of a vehicle is an offence. Limitations of Liability This manual is provided as is. Sierra Wireless makes no warranties of any kind, either expressed or implied, including any implied warranties of merchantability, fitness for a particular purpose, or noninfringement. The recipient of the manual shall endorse all risks arising from its use. The information in this manual is subject to change without notice and does not represent a commitment on the part of Sierra Wireless. SIERRA WIRELESS AND ITS AFFILIATES SPECIFICALLY DISCLAIM LIABILITY FOR ANY AND ALL DIRECT, INDIRECT, SPECIAL, GENERAL, INCIDENTAL, CONSEQUENTIAL, PUNITIVE OR EXEMPLARY DAMAGES INCLUDING, BUT NOT LIMITED TO, LOSS OF PROFITS OR REVENUE OR ANTICIPATED PROFITS OR REVENUE ARISING OUT OF THE USE OR INABILITY TO USE ANY SIERRA WIRELESS PRODUCT, EVEN IF SIERRA WIRELESS AND/OR ITS AFFILIATES HAS BEEN ADVISED OF THE POSSIBILITY OF SUCH DAMAGES OR THEY ARE FORESEEABLE OR FOR CLAIMS BY ANY THIRD PARTY. Notwithstanding the foregoing, in no event shall Sierra Wireless and/or its affiliates aggregate liability arising under or in connection with the Sierra Wireless product, regardless of the number of events, occurrences, or claims giving rise to liability, be in excess of the price paid by the purchaser for the Sierra Wireless product. 41110461XXXX Rev 0.1 January 16, 2017 2 Hardware Integration Guide Patents This product may contain technology developed by or for Sierra Wireless Inc. This product includes technology licensed from QUALCOMM. This product is manufactured or sold by Sierra Wireless Inc. or its affiliates under one or more patents licensed from InterDigital Group and MMP Portfolio Licensing. Copyright 2016 Sierra Wireless. All rights reserved. Trademarks Sierra Wireless, AirPrime, AirLink, AirVantage, WISMO, ALEOS and the Sierra Wireless and Open AT logos are registered trademarks of Sierra Wireless, Inc. or one of its subsidiaries. Watcher is a registered trademark of Netgear, Inc., used under license. Windows and Windows Vista are registered trademarks of Microsoft Corporation. Macintosh and Mac OS X are registered trademarks of Apple Inc., registered in the U.S. and other countries. QUALCOMM is a registered trademark of QUALCOMM Incorporated. Used under license. Other trademarks are the property of their respective owners. Contact Information Sales information and technical support, including warranty and returns Web: sierrawireless.com/company/contact-us/
Global toll-free number: 1-877-687-7795 6:00 am to 6:00 pm PST Corporate and product information Web: sierrawireless.com 41110461XXXX Rev 0.1 January 16, 2017 3 Hardware Integration Guide Document History Version Date Updates 0.1 Nov 06, 20167 Creation 41110461XXXX Rev 0.1 January 16, 2017 4 Contents 1. INTRODUCTION .................................................................................................. 9 1.1. 1.2. General Features .............................................................................................................. 9 Power ................................................................................................................................ 9 1.3. 1.3.1. RF ...................................................................................................................................... 9 GSM RF Interface .................................................................................................... 10 1.3.1.1. GSM TX Output Power.................................................................................................. 10 1.3.1.2. GSM RX Sensitivity ....................................................................................................... 10 1.3.2. WCDMA RF Interface .............................................................................................. 11 1.3.2.1. WCDMA TX Output Power ............................................................................................ 11 1.3.2.2. WCDMA RX Sensitivity ................................................................................................. 11 LTE RF Interface ...................................................................................................... 12 1.3.3.1. LTE TX Output Power ................................................................................................... 12 1.3.3.2. LTE RX Sensitivity ........................................................................................................ 12 1.3.4. WWAN Antenna Interface ........................................................................................ 13 1.3.4.1. WWAN Antenna Recommendations ............................................................................. 14 1.3.3. 1.4. 1.4.1. 1.4.2. GNSS .............................................................................................................................. 15 GNSS Receiver ........................................................................................................ 15 GNSS Antenna Interface .......................................................................................... 16 1.4.2.1. GNSS Antenna Recommendations ............................................................................... 16 1.5. Electrical Specifications ................................................................................................... 17 Absolute Maximum Ratings ..................................................................................... 17 Digital IO Characteristics .......................................................................................... 17 1.5.1. 1.5.2. 2. AUDIO SPECIFICATION .................................................................................... 20 2.1. Digital Audio .................................................................................................................... 20 3. ROUTING CONSTRAINTS AND RECOMMENDATIONS ................................. 21 3.1. 3.2. 3.3. 3.4. 3.5. RF Routing Recommendations ....................................................................................... 21 USB Routing Recommendations ..................................................................................... 23 Power and Ground Recommendations ........................................................................... 23 Antenna Recommendations ............................................................................................ 24 Interface Circuit Recommendations ................................................................................ 24 4. FIRMWARE AND TOOLS .................................................................................. 25 4.1. 4.2. Modem Firmware............................................................................................................. 25 Tools ................................................................................................................................ 25 5. APPROVAL ........................................................................................................ 26 5.1. 5.2. 5.3. 5.4. Important Notice .............................................................................................................. 26 Safety and Hazards ......................................................................................................... 26 Important Compliance Information .................................................................................. 26 IC Regulations ................................................................................................................. 27 Radiation Exposure Statement ................................................................................ 27 5.4.1. 6. REFERENCES ................................................................................................... 28 41110461 Rev 0.1 January 16, 2017 5 Hardware Integration Guide 7. ABBREVIATIONS .............................................................................................. 29 41110461XXXX Rev 0.1 January 16, 2017 6 List of Figures Figure 1. AppCAD Screenshot for Microstrip Design Power Mode Diagram ................................. 21 Figure 2. RF Routing Examples ..................................................................................................... 22 Figure 3. Coplanar Clearance Example ......................................................................................... 22 Figure 4. Antenna Microstrip Routing Example .............................................................................. 23 Figure 5. AirPrime AR758x Series Interface Reference Circuit...................................................... 24 41110461 Rev 0.1 January 16, 2017 7 List of Tables Table 1. AirPrime AR758x Series Embedded Modules .................................................................. 9 Table 2. AirPrime AR758x Series Supported Carrier Aggregation Combinations1 ......................... 9 Table 3. Power Supply Requirements ............................................................................................. 9 Table 4. Power Supply Pads ........................................................................................................... 9 Table 5. Conducted TX (Transmit) Max output Power Tolerances GSM/EDGE Bands ............ 10 Table 6. Conducted RX (Receive) Sensitivity GSM/EDGE Bands ............................................ 10 Table 7. Conducted TX (Transmit) Max output Power Tolerances WCDMA Bands ................. 11 Table 8. Conducted Primary RX (Receive) Sensitivity UMTS Bands1 ....................................... 11 Table 9. Conducted Secondary RX (Receive) Sensitivity UMTS Bands1 .................................. 11 Table 10. Conducted TX (Transmit) Max output Power Tolerances LTE Bands ......................... 12 Table 11. Conducted RX Sensitivity 3GPP (BW: 10MHz) LTE Bands1, 4..................................... 13 Table 12. Conducted RX Sensitivity SISO (BW: 10MHz) LTE Bands1 ........................................ 13 Table 13. WWAN Antenna Interface Pads ...................................................................................... 13 Table 14. AirPrime AR758x Series WWAN Antenna Recommendations ....................................... 14 Table 15. GNSS Specifications ....................................................................................................... 15 Table 16. GNSS Antenna Interface Pads ........................................................................................ 16 Table 17. AirPrime AR758x Series Absolute Maximum Ratings..................................................... 17 Table 18. Digital IO Characteristics for VCC=1.8V Nominal ........................................................... 17 Table 19. Digital IO Characteristics for SDIO VCC=1.8V Nominal ................................................. 18 Table 20. Digital IO Characteristics for SDIO VCC=2.85V Nominal ............................................... 18 Table 21. Digital IO Characteristics for UICC_VCC=1.8V Nominal ................................................ 19 Table 22. Digital IO Characteristics for UICC_VCC=2.85V Nominal .............................................. 19 Table 23. Digital Audio Interface Pads1 ........................................................................................... 20 Table 24. Approved Antenna Types ................................................................................................ 27 Table 25. Reference Specifications ................................................................................................. 28 Table 26. Abbreviations ................................................................................................................... 29 41110461 Rev 0.1 January 16, 2017 8 1. Introduction 1.1. General Features The AirPrime AR7584 embedded modules are designed for the automotive industry. It support LTE, WCDMA and GSM air interface standards. It also have Global Navigation Satellite System (GNSS) capabilities including GPS, GLONASS, Galileo, BeiDou, and QZSS The AirPrime AR7584 embedded modules are based on the Qualcomm MDM9628 wireless chipset and support the following bands. Table 1. AirPrime AR758x Series Embedded Modules Product Description Band Support AR7584 LTE / WCDMA / GSM /
GPRS / EDGE embedded module LTE: B1, B3, B7, B8, B20, B28A*
WCDMA: B1, B3, B8 GSM/GPRS/EDGE: 900/1800 Target Region1 EMEA
(Europe, Middle East) 1 Other regions or operators which use the same frequency bands may also be supported, subject to review and confirmation by Sierra Wireless.
*
Optional band 1.2. Power The AirPrime AR7584 are powered via a single regulated DC power supply, 3.7V nominal. Table 2. Power Supply Requirements Power Supply Min Main DC Power Input Range (VBATT) 3.4 Power Supply Ripple Peak Current 0 to 1kHz
>1kHz AR758x
-
-
-
Typ 3.7
-
-
2000 Max 4.2 200 50 3000 Units V mVpp mVpp mA Table 3. Power Supply Pads Pad Name Direction Function EA2 EB2 VBATT VBATT EC2 VBATT Input Input Input Power Supply Input Power Supply Input Power Supply Input If Unused Must Be Used Must Be Used Must Be Used 1.3. RF This section presents the WWAN RF interface of the AirPrime AR7584. The specifications for the LTE, GSM and WCDMA interfaces are defined. 41110461 Rev 0.1 January 16, 2017 9 Hardware Integration Guide Introduction 1.3.1. GSM RF Interface This section presents the GSM RF Specification for the AirPrime AR7584. 1.3.1.1. GSM TX Output Power The GSM Maximum Transmitter Output Power of the AirPrime AR7584 are specified in the following table. Note:
All values presented in the table below are preliminary. Table 4. Conducted TX (Transmit) Max output Power Tolerances GSM/EDGE Bands Band Standard 1
(dBm)1 Standard 2
(dBm)2 TX Power @
Room (dBm) TX Power @
Class A (dBm) 3 Notes EGSM 900 33 2dB 33 2.5dB 33 2dB 33 2.5dB GSM 1800 30 2dB 30 2.5dB 30 2dB 30 2.5dB EGSM 900 27 3dB 27 4dB 27 2.5dB 27 3.5dB GSM 1800 26 3dB 26 4dB 26 2.5dB 26 3.5dB GMSK mode, connectorized(Class 4; 2 W, 33 dBm) GMSK mode, connectorized(Class 1; 1 W, 30 dBm) 8PSK mode, connectorized(Class E2; 0.5 W, 27 dBm) 8PSK mode, connectorized(Class E2; 0.4 W, 26 dBm) 1 Per 3GPP TS 51.010-1 Requirement for Normal condition. 2 Per 3GPP TS 51.010-1 Requirement for Extreme conditions 3 Test at Class A extreme condition 1.3.1.2. GSM RX Sensitivity The GSM Receiver Sensitivities of the AirPrime AR758x Series are specified in the following table. Table 5. Conducted RX (Receive) Sensitivity GSM/EDGE Bands GSM/EDGE Bands EGSM 900 DCS 1800 2% BER CS 10% BLER 10% BLER 2% BER CS 10% BLER 10% BLER CS GMSK CS1 EDGE MCS5 CS GMSK CS1 EDGE MCS5 1 Per 3GPP specification 2 Test at Class A extreme condition Limit
(dBm) 1 Room Typical
(dBm)
-102
-104
-98
-102
-104
-98
-109
-108
-103.5
-109
-108.5
-103 Class A
(Extrem e) Typical
(dBm) 2 Class A Limit
(dBm)
-108
-107
-102
-108
-107.5
-102
-103
-105
-99
-103
-105
-99 41110461XXXX Rev 0.1 January 16, 2017 10 Hardware Integration Guide Introduction 1.3.2. WCDMA RF Interface This section presents the WCDMA RF Specification for the AirPrime AR758x Series. 1.3.2.1. WCDMA TX Output Power The WCDMA Maximum Transmitter Output Power of the AirPrime AR758x Series is specified in the following table. Note:
All values presented in the table below are preliminary. Table 6. Conducted TX (Transmit) Max output Power Tolerances WCDMA Bands Band1 Limit (dBm) 2 Room (dBm) B1 B3 B8 24 +1.7/-3.7dB 24 +1.7/-3.7dB 24 +1.7/-3.7dB 23.5 +2.2/-2.7dB 23.5 +2.2/-2.7dB 23.5 +2.2/-2.7dB Class A (Extreme)
(dBm)3 23.5 +2.2/-2.7dB 23.5 +2.2/-2.7dB 23.5 +2.2/-2.7dB 1 Connectorized (Class 3) 2 Per 3GPP TS 34.121-1 Specification 3 Test at Class A extreme condition 1.3.2.2. WCDMA RX Sensitivity The WCDMA Receiver Sensitivities of the AirPrime AR758x Series are specified in the following table. Table 7. Conducted Primary RX (Receive) Sensitivity UMTS Bands1 Band Limit (dBm) 2 Room Typical (dBm) Class A
(Extreme) Typical
(dBm)3 Class A Limit (dBm) B2 B4 B5 B6
-104.7
-106.7
-104.7
-106.7
-109
-110
-110.5
-110.5 1 1: CS 0.1% BER 12.2 kbps 2 Per 3GPP specification 3 Test at Class A extreme condition Tbd Tbd Tbd tbd
-105.5
-107.5
-105.5
-107.5 Table 8. Conducted Secondary RX (Receive) Sensitivity UMTS Bands1 Band Room Typical (dBm) Class A (Extreme) Typical (dBm) 2 Class A Limit ( dBm) B1 B3 B8
-106.7
-103.7
-103.7 1 CS 0.1% BER 12.2 kbps
-110.5
-111
-111.5
-109
-109.5
-110.5 41110461XXXX Rev 0.1 January 16, 2017 11 Hardware Integration Guide 2 Test at Class A extreme condition Introduction 1.3.3. LTE RF Interface This section presents the LTE RF Specification for the AirPrime AR758x Series. 1.3.3.1. LTE TX Output Power The LTE Maximum Transmitter Output Power of the AirPrime AR758x Series are specified in the following table. Note:
The test configuration for all of the entries in the table below is per 3GPP specification, Connectorized (Class 3). Note:
All values in the table below are preliminary. Table 9. Conducted TX (Transmit) Max output Power Tolerances LTE Bands Band Standard (dBm)
(Note 2) Class A (dBm) (Note 3) Notes B1 B3 B7 B8 B20 B28 23 2.7dB 23 2.7dB 23 2.7dB 23 2.7dB 23 2.7dB 23 2.7dB 23 2.2dB 23 2.2dB 23 2.2dB 23 2.2dB 23 2.2dB 23 2.2dB Note 1 Note 1, 4 Note 1, 4 Note 1, 4 Note 1, 4 Note 1 Note 1: The test configurations for all of the entries in the table above are per 3GPP specification, Connectorized (Class 3). Note 2: Per 3GPP TS 36.521-1 6.2.2 UE Maximum Output Power ( No MPR);and for B13,Per VzWs Supplementary_RF_Conformance. 2.1 Maximum Output Power No MPR Or A-MPR Note 3: Class A is defined in 3.3 Environmental Note 4: For transmission bandwidths (Figure 5.4.2-1 in 3GPP TS 36.521-1) confined within FUL_low and FUL_low + 4 MHz or FUL_high 4 MHz and FUL_high, the maximum output power requirement is relaxed by reducing the lower tolerance limit by 1.5 dB. 1.3.3.2. LTE RX Sensitivity The LTE Receiver Sensitivities of the AirPrime AR758x Series are specified in the following table. Note:
For the table below:
Dual receiver (SIMO) per 3GPP TS 36.521-1 Rx Sensitivity Specification. Sensitivity values scale with bandwidth:
x_MHz_Sensitivity = 10 MHz_Sensitivity 10*log(10 MHz/x_MHz) 10 MHz BW,and 50 RB DownLink and Up Link RB configuration is as 3GPP TS 36.521-1 Table 7.3.5-2. All values are preliminary pending transceiver matching and testing. 41110461XXXX Rev 0.1 January 16, 2017 12 Hardware Integration Guide Introduction Table 10. Conducted RX Sensitivity 3GPP (BW: 10MHz) LTE Bands1, 4 Band B1 B3 B7 B8 B20 B28 Standard
(dBm)2 Room Typical
(dBm) Class A (Extreme) Typical (dBm) 5 Class A Limit
(dBm)5
-96.3
-93.3
-94.3
-93.3
-93.3
-96.3
-101
-101.5
-99.5
-102
-102
-102
-100
-100
-98
-101.5
-101.5
-101
-97
-94
-95
-94
-94
-95.5 1: Dual receiver (SIMO) per 3GPP TS 36.521-1 Rx Sensitivity Specification for Non-CA Configuration 2: Per 3GPP Specification. 3: Sensitivity values scale with bandwidth: x_MHz_Sensitivity = 10 MHz_Sensitivity 10*log(10 MHz/x_MHz) 4: 10 MHz BW,and 50 RB DownLink and Up Link RB configuration is as 3GPP TS 36.521-1 Table 7.3.5-2. 5: Class A is defined in 3.3 Environmental Note:
For the table below:
Sensitivity values scale with bandwidth:
x_MHz_Sensitivity = 10 MHz_Sensitivity 10*log(10 MHz/x_MHz) 10 MHz BW,and 50 RB DownLink and Up Link as 3GPP TS 36.521-1 Table 7.3.5-2. All values are preliminary pending transceiver matching and testing. Table 11. Conducted RX Sensitivity SISO (BW: 10MHz) LTE Bands1 Band B1 B3 B7 B8 B20 B28 Room Typical (dBm) Class A (Extreme)Typical
(dBm)1 Class A Limit (dBm) 1 Primary Secondary Primary Secondary Primary Secondary
-98
-98.5
--96
-98.5
-99.5
-99
-98.5
-99
-96.5
-99.5
-99
-99.5
-97
-97
-95
-98
-99
-98
-97
-97.5
-95
-98.5
-98.5
-98.5
-94
-91
-92
-91
-91
-92
-94
-91
-92
-91
-91
-92 1: Class A is defined in 3.3 Environmental 1.3.4. WWAN Antenna Interface The WWAN Antenna Interfaces of the AirPrime AR758x Series are defined in the table below. Table 12. WWAN Antenna Interface Pads Pad Name Direction Function BA11 BA12 BA13 BB11 GND Primary Antenna Ground PRIMARY_ANT Input / Output Primary Antenna Interface GND GND Primary Antenna Ground Primary Antenna Ground 41110461XXXX Rev 0.1 January 16, 2017 13 Hardware Integration Guide Introduction Pad Name Direction Function BB12 BA7 BA8 BA9 BB7 BB8 GND GND Primary Antenna Ground Diversity Antenna Ground DIVERSITY_ANT Input Diversity Antenna Interface GND GND GND Diversity Antenna Ground Diversity Antenna Ground Diversity Antenna Ground 1.3.4.1. WWAN Antenna Recommendations The table below defines the key characteristics to consider for antenna selection. Table 13. AirPrime AR758x Series WWAN Antenna Recommendations Parameter Requirements Comments Antenna system External multi-band 2x2 MIMO antenna system (Ant1/Ant2)a Operating bands of Ant1 and Ant2b 698960 MHz 14511512 MHz 17101995 MHz 21102170 MHz 25002700 MHz Operating bands depend on modules supported bands/modes VSWR of Ant1 and Ant2 1:1 (ideal)
< 2.5:1 (recommended) On all bands including band edges Total radiated efficiency of Ant1 or Ant2
> 50% on all bands Maximum antenna gain Must not exceed antenna gains due to RF exposure and ERP/ EIRP limits, as listed in the modules FCC grant. Isolation between Ant1 and Ant2 (S21)
> 10 dB Measured at the RF connector. Includes mismatch losses, losses in the matching circuit, and antenna losses, excluding cable loss. Sierra Wireless recommends using antenna efficiency as the primary parameter for evaluating the antenna system. Peak gain is not a good indication of antenna performance when integrated with a host device (the antenna does not provide omni-directional gain patterns). Peak gain can be affected by antenna size, location, design type, etc. the antenna gain patterns remain fixed unless one or more of these parameters change. If antennas can be moved, test all positions for both antennas. Unless otherwise specified, this isolation requirement need to be maintained for optimum operation. Make sure all other wireless devices
(Bluetooth or WLAN antennas, etc.) are turned OFF to avoid interference. 41110461XXXX Rev 0.1 January 16, 2017 14 Hardware Integration Guide Introduction Parameter Requirements Comments Maximum Voltage applied to antenna 36 Volts Power handling
> 2 W RF power on low bands
> 1 W on high bands Measure power endurance over 4 hours (estimated talk time) using a 2 W CW signal set the CW test signal frequency to the middle of the PCS TX band (1880 MHz for PCS). Visually inspect device to ensure there is no damage to the antenna structure and matching components. VSWR / TIS / TRP measurements taken before and after this test must show similar results.
* These worst-case VSWR figures for the transmitter bands may not guarantee RSE levels to be within regulatory limits. The device alone meets all regulatory emissions limits when tested into a cabled (conducted) 50 system. With antenna designs with up to 2.5:1 VSWR or worse, the radiated emissions could exceed limits. The antenna system may need to be tuned in order to meet the RSE limits as the complex match between the module and antenna can cause unwanted levels of emissions. Tuning may include antenna pattern changes, phase/delay adjustment, passive component matching. Examples of the application test limits would be included in FCC Part 22, Part 24 and Part 27, test case 4.2.16 for GSM
(ETSI EN 301 511), and test case 4.2.2 for WCDMA (ETSI EN 301 908-1), where applicable. a Ant1Primary, Ant2Diversity (Diversity/MIMO/) b Stated band ranges satisfy requirements for both Ant1 and Ant2. 1.4. GNSS The AirPrime AR758x Series include optional Global Navigation Satellite System (GNSS) capabilities via the Qualcomm gpsOne Gen8C Engine, capable of operation in assisted and stand-alone modes using GPS, GLONASS, Beidou, Galileo, and QZSS SVs. Note:
Galileo support pending system / satellite deployment. 1.4.1. GNSS Receiver The table below summarizes the GNSS capabilities of the AirPrime AR758x Series. Table 14. GNSS Specifications Parameter/Feature Value GPS GLONASS (FDMA) Mode Satellite channels Standalone Time To First Fix
(TTFF) 1,2,4,6 Beidou Galileo QZSS Tracking Acquisition Hot start:
Warm start Cold start L1 L1OF B1L E1 L1 40 118 1 s 27 s 29 s 41110461XXXX Rev 0.1 January 16, 2017 15 Hardware Integration Guide Introduction Parameter/Feature Value Sensitivity
(GPS, GLONASS, BeiDou) Tracking 4,5,6 Cold start Acquisition Hot start Acquisition Horizontal Position accuracy 1,3,4,5,6, Altitude accuracy 1,3,4,5,6, Velocity accuracy 1,3,4,5,6 Tracking update rates SBAS support 3 Message Protocol NMEA 0183 Version Supported Sentences
-163 dBm
-158 dBm
-145 dBm 2 / 57 4 / 107 0.1 1 Hz WAAS, EGNOS, MSAS,GAGAN V3.0 GSV, GNS, GSA, GGA, GRS, RMC, VTG 1 Open sky, all SV RF signal level = -130dBm, Number of GPS SVs > 6, Number of Glonass SVs>5, Number of Galileo SVs>5, Number of BeiDou SVs>5 2 TTFF values show results in worst conditions (as an external host user): timing measurement start when GPS control request is sent on AT command interface and stop when NMEA frames (1Hz update) display 2D fix information. 3 Scenarios used for accuracy measurements simulate car travel including direction, altitude and speed variations. 4 The performance are obtained by using external Pre-SAW and LNA for conducted test setup at Room temperature, it is used to simulate the active antenna as customers application. 5 1Hz Navigation used for all tracking/navigation tests. 6 GNSS constellations used: GPS + GLONASS + Galileo + Beidou 7 Accuracy data are provided Circular Error Probable, CEP-50 / CEP-95. Means that 50%/95% of the positions returned calculated have an error lower or equal to the accuracy value. 8 Tracking sensitivity is the lowest GNSS signal level for which the device can still detect an in-view satellite 50% of the time when in sequential tracking mode.. 9 Acquisition sensitivity is the lowest GNSS signal level for which the device can still detect an in-view satellite 50% of the time. Note:
All GNSS characterization data are measured in conducted RF path with GNSS simulator at room temperature. 1.4.2. GNSS Antenna Interface The GNSS Antenna Interface is defined in the table below. Table 15. GNSS Antenna Interface Pads Pad Name Direction Function BA4 BA5 BA6 BB4 BB5 GND GNSS_ANT GND GND GND Input GNSS Antenna Ground GNSS Antenna Interface GNSS Antenna Ground GNSS Antenna Ground GNSS Antenna Ground 1.4.2.1. GNSS Antenna Recommendations To be added in a future revision. 41110461XXXX Rev 0.1 January 16, 2017 16 Hardware Integration Guide Introduction 1.5. Electrical Specifications This section provides details of the key electrical specifications of the AirPrime AR758x Series. 1.5.1. Absolute Maximum Ratings This section defines the Absolute Maximum Ratings of the AirPrime AR758x Series. Warning: If operating outside of the defined specifications, even momentarily, damage may occur to the device. Table 16. AirPrime AR758x Series Absolute Maximum Ratings Parameter Min Max Units VBATT Power Supply Input VIN IIN Voltage on any digital input or output pin Latch-up current
-
-
4.5 Vxx + 20%*
-100 100 ESD Ratings ESD1 Primary, Secondary and GNSS antenna pads Contact All other signal pads Contact
-
-
8 1.5 1 The ESD Simulator configured with 150pF, 330. V V mA kV kV Caution:
Vxx is the supply voltage associated with the input or output pin to which the test voltage is applied. 1.5.2. Digital IO Characteristics The Digital IO characteristics are defined in the table below. These apply to GPIOs, UART, LED, SPI, I2C, PCM/I2S, GNSS_LNA, WAKE_N, 2G_SYNC, AT_PORT_SW, SERVICE and RESET. Table 17. Digital IO Characteristics for HSIC VDD=1.2V Nominal Parameter Comments Min Typ Max Units VIH VIL IIH IIL High level input voltage CMOS/Schmitt Low level input voltage CMOS/Schmitt Input high leakage current No pull-down Input low leakage current No pull-up VOH High-level output voltage VOL Low level output current CMOS, at rated drive strength CMOS, at rated drive strength Tri-state leakage current No pull, no keeper Input capacitance IZ CIN 0.78
-0.3
-2 0.9 0
-2 1.44 0.42 2 1.25 0.3 2 5 V V A A V V A pF 41110461XXXX Rev 0.1 January 16, 2017 17 Hardware Integration Guide Introduction Table 18. The 1.8V Digital IO characteristics are defined in the table below. (Except SDIO1, UICC1 and UICC2/
Ethernet PHY Control interface) Table 18. D Digital IO Characteristics for VDD=1.8V Nominal Parameter Comments Typ Max Units High level input voltage Low level input voltage CMOS/Schmitt CMOS/Schmitt High level output voltage CMOS, at pin rated drive strength Low-level output voltage CMOS, at pin rated drive strength High level input voltage Low level input voltage CMOS/Schmitt CMOS/Schmitt High level output voltage CMOS, at pin rated drive strength Low-level output voltage CMOS, at pin rated drive strength High level output current Low Level output current High level output current VOH = 1.35 V VOL = 0.45 V GPIO_PMxx only Input high leakage current Logic High with pull-
down VIH VIL VOH VOL VIH-PM VIL-PM VOH-PM VOL-PM IOH IOL IOH-PM IIHPD IILPU CIN Min 1.17
-0.3 1.35 0 1.17
-0.3 1.5 0
-6 5 2.16 0.63 1.93 0.45 2.1 0.63 1.88 0.3 6 0.60 33
-5 V V V V V V V V mA mA mA A A pF Input low leakage current Logic Low with pull-up
-33 Input capacitance 5 Caution:
Digital IOs shall not be pulled-up to an external voltage as this may cause VCC_1V8 to not go low when the AirPrime AR758x/AR8582 device is powered down. Also, this would partially bias the AirPrime AR758x/AR8582 device which could potentially damage the device or result in GPIOs being set to undetermined levels. Table 19. Digital IO Characteristics for SDIO1 VDD=1.8V Nominal Parameter Comments Min Typ Max Units VIH VIL IIH IIL VOH VOL High level input voltage CMOS/Schmitt Low level input voltage CMOS/Schmitt Input high leakage current No pull-down Input low leakage current No pull-up 1.27
-0.3
-2 High-level output voltage CMOS, at rated drive strength 1.4 Low level output voltage CMOS, at rated drive strength 0 2 0.58 2 1.93 0.45 V V A A V V 41110461XXXX Rev 0.1 January 16, 2017 18 Hardware Integration Guide Introduction Table 20. Digital IO Characteristics for UICC_VCC1=3V/2.85V Nominal Parameter Comments Min Typ Max Units VIH VIL IIH IIL VOH VOL High level input voltage Low level input voltage Input high leakage current Input low leakage current CMOS/Schmitt 0.7* UICC_VCC UICC_VCC + 0.3 V CMOS/Schmitt
-0.3 No pull-down No pull-up
-10 10 0.2* UICC_VCC V High-level output voltage CMOS, at rated drive strength 0.8* UICC_VCC UICC_VCC Low level output current CMOS, at rated drive strength 0 0.4 A A V V Note 1: UICC2_VCC is 2.85V when Ethernet PHY Control interface is working. 41110461XXXX Rev 0.1 January 16, 2017 19 2. Audio Specification 2.1. Digital Audio The AirPrime AR758x Series provides two 4-wire digital audio interfaces. Each interface can be configured as either a PCM or an I2S interface. Table 21. Digital Audio Interface Pads1 Pad Mode Name Direction 2 Function If Unused DA3 DB3 DC2 DD2 DD3 DD4 DE2 DC4 PCM I2S PCM I2S PCM I2S PCM I2S PCM_CLK I2S_SCLK PCM_FS I2S_WS PCM_DOUT I2S_DOUT PCM_DIN I2S_DIN PCM2 PCM_CLK I2S2 I2S_SCLK PCM2 PCM_FS I2S2 I2S_WS PCM2 PCM_DOUT I2S2 I2S_DOUT PCM2 PCM_DIN I2S2 I2S_DIN Output Output Output Input Output Output Output Input PCM Clock I2S Bit Clock PCM Frame Sync I2S Word Select PCM Data Out I2S Data Out PCM Data In I2S Data In PCM Clock I2S Bit Clock PCM Frame Sync I2S Word Select PCM Data Out I2S Data Out PCM Data In I2S Data In Leave Open Leave Open Leave Open Leave Open Leave Open Leave Open Leave Open Leave Open 1 PCM2/I2S2 is multiplexed with SPI2/UART3 and is not available if either SPI2/UART3 is configured 2 Direction when defined in Master mode. 41110461 Rev 0.1 January 16, 2017 20 3. Routing Constraints and Recommendations Layout and routing of the AirPrime AR758x Series in the application is critical to maintaining the performance of the radio. The following sections provide guidance to the developer when designing their application to include an AirPrime AR758x Series and achieve optimal system performance. 3.1. RF Routing Recommendations To route the RF antenna signals, the following recommendations must be observed for PCB layout:
The RF signals must be routed using traces with a 50 characteristic impedance. Basically, the characteristic impedance depends on the dielectric constant (r) of the material used, trace width (W), trace thickness (T), and height (H) between the trace and the reference ground plane. In order to respect this constraint, Sierra Wireless recommends that a MicroStrip structure be used and trace width be computed with a simulation tool (such as AppCAD, shown in the figure below and available free of charge at http://www.avagotech.com). Figure 1. AppCAD Screenshot for Microstrip Design Power Mode Diagram The trace width should be wide enough to maintain reasonable insertion loss and manufacturing reliability. Cutting out inner layers of ground under the trace will increase the effective substrate height; therefore, increasing the width of the RF trace. Caution:
It is critical that no other signals (digital, analog, or supply) cross under the RF path. The figure below shows a generic example of good and poor routing techniques. 41110461 Rev 0.1 January 16, 2017 21 Hardware Integration Guide Routing Constraints and Recommendations Poor routing Correct routing The yellow traces cross the RF trace. There is no signal around the RF path. Figure 2. RF Routing Examples Fill the area around the RF traces with ground and ground vias to connect inner ground layers for isolation. Cut out ground fill under RF signal pads to reduce stray capacitance losses. Avoid routing RF traces with sharp corners. A smooth radius is recommended. E.g. Use of 45 angles instead of 90. The ground reference plane should be a solid continuous plane under the trace. The coplanar clearance (G, below) from the trace to the ground should be at least the trace width (W) and at least twice the height (H). This reduces the parasitic capacitance, which potentially alters the trace impedance and increases the losses. E.g. If W = 100 microns then G = 200 microns in an ideal setup. G = 150 microns would also be acceptable is space is limited. Figure 3. Coplanar Clearance Example Note:
The figure above shows several internal ground layers cut out, which may not be necessary for every application. 41110461XXXX Rev 0.1 January 16, 2017 22 Hardware Integration Guide Routing Constraints and Recommendations Figure 4. Antenna Microstrip Routing Example 3.2. USB Routing Recommendations HighSpeed USB signals (USB_D_P / USB_D_M) are a differential pair and must be routed with the following considerations/constraints:
90 Ohm differential +/- 10% trace impedance, Differential trace length pair matching < 2mm (15 ps), Solid reference planes, Trace lengths < 120 mm, And 2x the trace width separation to all adjacent signals. SuperSpeed USB adds two differential pairs (SSRX+ / SSRX- and SSTX+ / SSTX-). These pairs should be routed with the following considerations/constraints:
90 Ohm differential +/- 15% trace impedance, Differential trace length pair matching < 0.7mm (5 ps), Trace lengths < 112 mm, And GND isolation from other adjacent traces with minimum of 2x the SSRX/SSTX trace wdith. 3.3. Power and Ground Recommendations Power and ground routing is critical to achieving optimal performance of the AirPrime AR758x Series when integrated into an application. Recommendations:
Do not use a separate GND for the Antennas. Connections to GND from the AirPrime AR758x Series should be flooded plane using thermal reliefs to ensure reliable solder joints. VBATT is recommended to be routed as a wide trace(s) directly from the power supply to the LGA pad. 41110461XXXX Rev 0.1 January 16, 2017 23 AR759xRF ConnectorGNDGNDGNDGNDGNDGNDANT50 Ohm Controlled Impedance Trace2x Ground holdback twice the trace widthGNDGNDGNDGND Hardware Integration Guide Routing Constraints and Recommendations 3.4. Antenna Recommendations Connecting the antenna ground reference to the vehicle chassis is not recommended since that has been known to cause noise from the engine to couple into the audio of the device. It is ultimately up to the integrator to evaluate this performance. 3.5. Interface Circuit Recommendations The recommended interface implementation is to use a dual-supply bus transceiver with configurable voltage translation. This allows a host processor operating at a different voltage to communicate with the AirPrime AR758x Series using the appropriate voltage levels. The figure below is a reference circuit for a digital input / output signal to / from the AirPrime AR758x Series. Figure 5. AirPrime AR758x Series Interface Reference Circuit The dual-supply bus transceiver with configurable voltage translation used in the reference circuit above is the Texas Instruments SN74AVC1T45. If a Digital IO signal is used bidirectional in the application then a bidirectional level translator, such as Texas Instruments TCA9406 is needed. 41110461XXXX Rev 0.1 January 16, 2017 24 VCCAVCCBDIRABGPIOxVCC_1V8ApplVcc (1.2V 3.6V)ApplGPIOxDirectionL = B to AH = A to B 4. Firmware and Tools The AirPrime AR7582 are designed based on Qualcomms MDM9628 chipset, which contains a Modem Processor for running modem firmware components and an Application Processor for running embedded Linux applications. Various tools are provided by Qualcomm and developed by Sierra Wireless for developing and commercializing the AirPrime AR7584. 4.1. Modem Firmware The MDM9628 Modem Process contains the following categories of firmware, with possible modifications/extensions by Sierra Wireless as indicated:
LTE/ WCDMA/ TD-SCDMA air interface protocols GNSS engine IMS protocol stack AT Command Processor: New AT commands will be added by Sierra Wireless. See document [8] for the complete list of AT Commands for AR758x. Data services Drivers/ BSP: Some modifications will be made to ensure the firmware can communicate with the AR758x module hardware properly. UICC functions Memory Management: Built-in redundancy and continuous monitoring against memory corruption Antenna Protection Voice support 4.2. Tools The following tools will be needed for the AirPrime AR7584 development, testing and commercialization. Firmware Update Tool Linux driver and Application Downloader Logging Tool Qualcomms QXDM (license with Qualcomm required) Qualcomms QPST (license with Qualcomm required) 41110461 Rev 0.1 January 16, 2017 25 5. Approval 5.1. Important Notice Because of the nature of wireless communications, transmission and reception of data can never be guaranteed. Data may be delayed, corrupted (i.e., have errors) or be totally lost. Although significant delays or losses of data are rare when wireless devices such as the Sierra Wireless modem are used in a normal manner with a well-constructed network, the Sierra Wireless modem should not be used in situations where failure to transmit or receive data could result in damage of any kind to the user or any other party, including but not limited to personal injury, death, or loss of property. Sierra Wireless and its affiliates accept no responsibility for damages of any kind resulting from delays or errors in data transmitted or received using Sierra Wireless modem, or for failure of the Sierra Wireless modem to transmit or receive such data. 5.2. Safety and Hazards Do not operate the AirPrime AR7584:
In areas where blasting is in progress Where explosive atmospheres may be present including refueling points, fuel depots, and chemical plants Near medical equipment, life support equipment, or any equipment which may be susceptible to any form of radio interference. In such areas, the AirPrime AR7584 device MUST BE POWERED OFF. Otherwise, the AirPrime AR7584 device can transmit signals that could interfere with this equipment In an aircraft, the AirPrime AR7584 device MUST BE POWERED OFF. Otherwise, the AirPrime AR7584 device can transmit signals that could interfere with various onboard systems and may be dangerous to the operation of the aircraft or disrupt the cellular network. Use of cellular phone in aircraft is illegal in some jurisdictions. Failure to observe this instruction may lead to suspension or denial of cellular telephone services to the offender, or legal action or both. Some airlines may permit the use of cellular phones while the aircraft is on the ground and the door is open. The AirPrime AR7584 device may be used normally at this time. 5.3. Important Compliance Information The AirPrime AR7584 is granted with a modular approval for mobile applications. Integrators may use the AR7584 device in their final products without additional FCC certification if they meet the following conditions. Otherwise, additional FCC approvals must be obtained. 1. The end product must use the RF trace design approved with the AirPrime AR7584 module. The Gerber file of the trace design can be obtained from Sierra Wireless upon request. 2. At least 20cm separation distance between the antenna and the users body must be maintained at all times. 3. To comply with FCC regulations limiting both maximum RF output power and human exposure to RF radiation, the maximum antenna gain including cable loss in a mobile-only exposure condition must not exceed the gain values presented in the table below:
5.0 dBi in LTE Band 7 41110461 Rev 0.1 January 16, 2017 26 Hardware Integration Guide Approval 4. The AR7584 modem may transmit simultaneously with other collocated radio transmitters within a host device, provided the following conditions are met:
Each collocated radio transmitter has been certfied by FCC for mobile application. At least 20 cm separation distance between the antennas of the collocated transmitters and the users body must be maintained at all times. The output power and antenna gain must not exceed the limits and configu-rations stipulated in the following table. Device Technology Band Frequency (MHz) EIPR Limits
(dbm) Maximum antenna gain AR7594 LTE 7 2500 2570 Collocated transmitters*
WLAN WiMAX BT 2400-2500 5150-580 2300-2400 2500-2700 3300-3800 2400-2500 25 27 25 25 25 15 5
*. Valid collocated Transmitter combinations: WLAN+BT; WiMAX+BT. (WLAN+WiMAX+BT is not permitted.) 5. A label must be affixed to the outside of the end product into which the AirPrime AR7584 device is incorporated, with a statement similar to the following:
This device contains FCC ID: N7NAR7584 6. A user manual with the end product must clearly indicate the operating requirements and conditions that must be observed to ensure compliance with current FCC RF exposure guidelines. The end product with an embedded AirPrime AR7584 device may also need to pass the FCC Part 15 unintentional emission testing requirements and be properly authorized. Note:
If this module is intended for use in a portable device, you are responsible for separate approval to satisfy the SAR requirements of FCC Part 2.1093. 41110461XXXX Rev 0.1 January 16, 2017 27 6. References The table below lists the reference specifications for this product. Table 22. Reference Specifications Ref Title Rev Issuer
[1]
[2]
[3]
[4]
[5]
[6]
[7]
3GPP TS 51.010-1 3GPP TS 34.121-1 3GPP TS 36.521-1 Universal Serial Bus Specification Universal Serial Bus CDC Subclass Specification for Wireless Mobile Communication Devices Universal Serial Bus Class Definitions for Communication Devices Version 7.3.1 V8 V9 V2.0 V1.0 V1.1 3GPP 3GPP 3GPP USB Implementers Forum USB Implementers Forum USB Implementers Forum AirPrime - AR7 Series - Customer Process Guidelines
-
Sierra Wireless
[8]
AirPrime - AR75xx - AT Command Interface Specification - 4112841 V1.5 Sierra Wireless
[9]
AirPrime AR7xxx Firmware Download Guide
-
Sierra Wireless
[10]
[11]
[12]
[13]
AirPrime AR758x Thermal Management Application Note - 2174114 AirPrime AR758x Current Consumption Application Note - 2174115 V1.0 Sierra Wireless V1.0 Sierra Wireless AirPrime - AR Series - Hardware Compatibility APN -
4116174 V0.8 Sierra Wireless AirPrime - AR7552 - Hardware Integration Guide 4117336 V1.0 Sierra Wireless 41110461XXX Rev 0.1 January 16, 2017 28 7. Abbreviations The table below lists several abbreviations used in this document. Table 23. Abbreviations Abbreviation Description ADC CDMA DRX EDGE FDD GERAN GNSS GSM HSPA I2S LTE PCIe PCM PMIC SCI SDIO SPI TDD Analog-to-Digital Converter Code Division Multiple Access Discontinuous Receive Enhanced Data rates for GSM Evolution Frequency Division Duplex GSM EDGE Radio Access Network Global Navigation Satellite System Global System for Mobile Communications High Speed Packet Access Inter-IC Sound Long Term Evolution Peripheral Component Interconnect Express Pulse Coded Modulation Power Management Integrated Circuit Slot Cycle Index Secure Digital Input Output Serial Peripheral Interface Time Division Duplex TD-SCDMA Time Division Synchronous Code Division Multiple Access UART UICC UIM UMTS USB WCDMA WWAN Universal Asynchronous Receiver / Transmitter Universal Integrated Circuit Card User Identity Module Universal Mobile Telecommunications System Universal Serial Bus Wideband Code Division Multiple Access Wireless Wide Area Network 41110461XXX Rev 0.1 January 16, 2017 29
frequency | equipment class | purpose | ||
---|---|---|---|---|
1 | 2017-12-04 | 2500 ~ 2570 | TNB - Licensed Non-Broadcast Station Transmitter | Original Equipment |
app s | Applicant Information | |||||
---|---|---|---|---|---|---|
1 | Effective |
2017-12-04
|
||||
1 | Applicant's complete, legal business name |
Sierra Wireless Inc.
|
||||
1 | FCC Registration Number (FRN) |
0005810874
|
||||
1 | Physical Address |
13811 Wireless Way
|
||||
1 |
Richmond, BC, N/A V6V 3A4
|
|||||
1 |
Canada
|
|||||
app s | TCB Information | |||||
1 | TCB Application Email Address |
h******@acbcert.com
|
||||
1 | TCB Scope |
B1: Commercial mobile radio services equipment in the following 47 CFR Parts 20, 22 (cellular), 24,25 (below 3 GHz) & 27
|
||||
app s | FCC ID | |||||
1 | Grantee Code |
N7N
|
||||
1 | Equipment Product Code |
AR7584
|
||||
app s | Person at the applicant's address to receive grant or for contact | |||||
1 | Name |
Y******** W********
|
||||
1 | Title |
Sr. Manager, Regulatory Compliance
|
||||
1 | Telephone Number |
604-2********
|
||||
1 | Fax Number |
604-2********
|
||||
1 |
y******@SierraWireless.com
|
|||||
app s | Technical Contact | |||||
1 | Firm Name |
Sierra Wireless Technology (Shenzhen) Ltd.
|
||||
1 | Name |
S******** L********
|
||||
1 | Physical Address |
China
|
||||
1 |
s******@sierrawirelss.com
|
|||||
app s | Non Technical Contact | |||||
n/a | ||||||
app s | Confidentiality (long or short term) | |||||
1 | Does this application include a request for confidentiality for any portion(s) of the data contained in this application pursuant to 47 CFR § 0.459 of the Commission Rules?: | Yes | ||||
1 | Long-Term Confidentiality Does this application include a request for confidentiality for any portion(s) of the data contained in this application pursuant to 47 CFR § 0.459 of the Commission Rules?: | Yes | ||||
1 | If so, specify the short-term confidentiality release date (MM/DD/YYYY format) | 06/02/2018 | ||||
if no date is supplied, the release date will be set to 45 calendar days past the date of grant. | ||||||
app s | Cognitive Radio & Software Defined Radio, Class, etc | |||||
1 | Is this application for software defined/cognitive radio authorization? | No | ||||
1 | Equipment Class | TNB - Licensed Non-Broadcast Station Transmitter | ||||
1 | Description of product as it is marketed: (NOTE: This text will appear below the equipment class on the grant) | Wireless Module | ||||
1 | Related OET KnowledgeDataBase Inquiry: Is there a KDB inquiry associated with this application? | No | ||||
1 | Modular Equipment Type | Single Modular Approval | ||||
1 | Purpose / Application is for | Original Equipment | ||||
1 | Composite Equipment: Is the equipment in this application a composite device subject to an additional equipment authorization? | No | ||||
1 | Related Equipment: Is the equipment in this application part of a system that operates with, or is marketed with, another device that requires an equipment authorization? | No | ||||
1 | Grant Comments | Power out is conducted at the antenna terminal. Single Modular Approval. This device is to be used only for mobile and fixed application; and must not be co- located or operating in conjunction with any other antenna or transmitter, except in accordance with FCC multi- transmitter evaluation procedures as documented in this filing. End-users and installers must be provided with antenna installation instructions and transmitter operating conditions for satisfying RF exposure compliance. OEM integrators must insure that the end user has no manual instructions to remove or install this module. For mobile operating configurations the antenna gain, including cable loss, must not exceed the gains documented in this filing for, as defined in 2.1091 for satisfying RF exposure compliance. Under no conditions may an antenna gain be used that would exceed the EIRP power limit as specified in Part 27. The Grantee is responsible for providing the documentation required for modular use and this module can only be used with a host antenna circuit trace layout design in strict compliance with the OEM instructions provided. This device contains GSM/WCDMA/LTE features that are not operational in U.S. Territories. This filing is only applicable for LTE Band 7 (2500 MHz), which supports 5 MHz, 10 MHz, 15 MHz and 20 MHz bandwidth modes. | ||||
1 | Is there an equipment authorization waiver associated with this application? | No | ||||
1 | If there is an equipment authorization waiver associated with this application, has the associated waiver been approved and all information uploaded? | No | ||||
app s | Test Firm Name and Contact Information | |||||
1 | Firm Name |
DEKRA Testing and Certification (Suzhou) Co., Ltd.
|
||||
1 | Name |
J******** X****
|
||||
1 | Telephone Number |
86 51********
|
||||
1 |
j******@dekra.com
|
|||||
Equipment Specifications | |||||||||||||||||||||||||||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Line | Rule Parts | Grant Notes | Lower Frequency | Upper Frequency | Power Output | Tolerance | Emission Designator | Microprocessor Number | |||||||||||||||||||||||||||||||||
1 | 1 | 27 | BC | 2500 | 2570 | 0.195 | 2.5 ppm | 17M9G7D | |||||||||||||||||||||||||||||||||
1 | 2 | 27 | BC | 2500 | 2570 | 0.167 | 2.5 ppm | 17M9W7D | |||||||||||||||||||||||||||||||||
1 | 3 | 27 | BC | 2500 | 2570 | 0.198 | 2.5 ppm | 13M4G7D |
some individual PII (Personally Identifiable Information) available on the public forms may be redacted, original source may include additional details
This product uses the FCC Data API but is not endorsed or certified by the FCC