
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
M365 OEM Users Guide TECH SPECS DataRateAvg. TXToleranceDataRateSensitivityTolerance MCS023 dBm+/-2dBMCS0-94 dBm+/-2dB MCS123 dBm+/-2dBMCS1-93 dBm+/-2dB MCS223 dBm+/-2dBMCS2-90 dBm+/-2dB MCS323 dBm+/-2dBMCS3-89 dBm+/-2dB MCS422 dBm+/-2dBMCS4-86 dBm+/-2dB MCS520 dBm+/-2dBMCS5-83 dBm+/-2dB MCS619 dBm+/-2dBMCS6-77 dBm+/-2dB MCS718 dBm+/-2dBMCS7-74 dBm+/-2dB MCS823 dBm+/-2dBMCS8-93 dBm+/-2dB MCS923 dBm+/-2dBMCS9-91 dBm+/-2dB MCS1023 dBm+/-2dBMCS10-89 dBm+/-2dB MCS1123 dBm+/-2dBMCS11-87 dBm+/-2dB MCS1222 dBm+/-2dBMCS12-84 dBm+/-2dB MCS1320 dBm+/-2dBMCS13-79 dBm+/-2dB MCS1419 dBm+/-2dBMCS14-78 dBm+/-2dB MCS1518 dBm+/-2dBMCS15-75 dBm+/-2dB TX POWER SPECIFICATIONSRX SPECIFICATIONS 11n / AirMax 11n / Airmax PHYSICAL / ELECTRICAL / ENVIRONMENTAL Operating Humidity5 to 95% Condensing Shock and VibrationETSI300-019-1.4 SYSTEM INFORMATION Processor SpecsAtheros MIPS 24KC, 400MHz Memory Information64MB SDRAM, 8MB Flash Networking Interface1 X 10/100 BASE-TX (Cat. 5, RJ-45) Ethernet Interface Power Supply24V, 1A POE Supply Included Power MethodPassive Power over Ethernet (pairs 4,5+; 7,8 return) Operating Temperature -30C to 75C Enclosure CharacteristicsOutdoor UV Stabalized Plastic Mounting KitPole Mounting Kit included Max Power Consumption6.5 Watts Enclosure Size16cm length x 8cm width x 3cm height Weight0.5 kg RF Connector2x RPSMA (Waterproof) RoHS ComplianceYES OPERATING FREQUENCY 3675MHz-3700MHz Wireless ApprovalsFCC Part 15.247, IC RS210, CE REGULATORY / COMPLIANCE INFORMATION COMPLIANCE INFORMATION FCC Changes or modifications not expressly approved by the party responsible for compliance could void the user’s authority to operate the equipment. NOTE: This equipment has been tested and found to comply with the limits for a Class A digital device, pursuant to part 15 of the FCC Rules. These limits are designed to pro-vide reasonable protection against harmful interference when the equipment is operated in a commercial environment. This equipment generates, uses, and can radiate radio frequency energy and, if not installed and used in accordance with the instruction manual, may cause harmful interference to radio communications. Operation of this equipment in a residential area is likely to cause harmful interference in which case the user will be required to correct the interference at his own expense. The antennas used for this transmitter must be installed to provide a separation distance of at least 28cm from all persons and must not be located or operating in conjunction with any other antenna or transmitter. INDUSTRY CANADA This Class A digital apparatus complies with Canadian ICES-003. Cet appareil numérique de la classe A est conforme à la norme NMB-003 du Canada. Operation is subject to the following two conditions: (1) this device may not cause interference, and (2) this device must accept any interference, including interference that may cause undesired operation of the device. To reduce potential radio interference to other users, the antenna type and its gain should be so chosen that the equivalent isotropically radiated power (e.i.r.p.) is not more than that permitted for successful communication. This equipment is required to be professionally installed
72 Copyright © 1999 IEEE. All rights reserved. 9.2 DCF The basic medium access protocol is a DCF that allows for automatic medium sharing between compatible PHYs through the use of CSMA/CA and a random backoff time following a busy medium condition. In addition, all directed traffic uses immediate positive acknowledgment (ACK frame) where retransmission is scheduled by the sender if no ACK is received. The CSMA/CA protocol is designed to reduce the collision probability between multiple STAs accessing a medium, at the point where collisions would most likely occur. Just after the medium becomes idle follow- ing a busy medium (as indicated by the CS function) is when the highest probability of a collision exists. This is because multiple STAs could have been waiting for the medium to become available again. This is the situation that necessitates a random backoff procedure to resolve medium contention conflicts. Carrier sense shall be performed both through physical and virtual mechanisms. The virtual carrier-sense mechanism is achieved by distributing reservation information announcing the impending use of the medium. The exchange of RTS and CTS frames prior to the actual data frame is one means of distribution of this medium reservation information. The RTS and CTS frames contain a Duration/ ID field that defines the period of time that the medium is to be reserved to transmit the actual data frame and the returning ACK frame. All STAs within the reception range of either the originating STA (which transmits the RTS) or the destination STA (which transmits the CTS) shall learn of the medium reservation. Thus a STA can be unable to receive from the originating STA, yet still know about the impending use of the medium to transmit a data frame. Another means of distributing the medium reservation information is the Duration/ID field in directed frames. This field gives the time that the medium is reserved, either to the end of the immediately following ACK, or in the case of a fragment sequence, to the end of the ACK following the next fragment. The RTS/CTS exchange also performs both a type of fast collision inference and a transmission path check. If the return CTS is not detected by the STA originating the RTS, the originating STA may repeat the process (after observing the other medium-use rules) more quickly than if the long data frame had been transmitted and a return ACK frame had not been detected. Another advantage of the RTS/CTS mechanism occurs where multiple BSSs utilizing the same channel overlap. The medium reservation mechanism works across the BSA boundaries. The RTS/CTS mechanism may also improve operation in a typical situation where all STAs can receive from the AP, but cannot receive from all other STAs in the BSA. The RTS/CTS mechanism cannot be used for MPDUs with broadcast and multicast immediate address because there are multiple destinations for the RTS, and thus potentially multiple concurrent senders of the CTS in response. The RTS/CTS mechanism need not be used for every data frame transmission. Because the Contention Based Protocol Explained M365 M365 Utilizes the inherent carrier sense mechanism described in the following document: ISO/IEC 8802-11: 1999(E) MEDIUM ACCESS CONTROL (MAC) AND PHYSICAL (PHY) SPECIFICATIONSANSI/IEEE Std 802.11, 1999 Edition Copyright © 1999 IEEE. All rights reserved. 73 additional RTS and CTS frames add overhead inefficiency, the mechanism is not always justified, especially for short data frames. The use of the RTS/CTS mechanism is under control of the dot11RTSThreshold attribute. This attribute may be set on a per-STA basis. This mechanism allows STAs to be configured to use RTS/CTS either always, never, or only on frames longer than a specified length. A STA configured not to initiate the RTS/CTS mechanism shall still update its virtual carrier-sense mecha- nism with the duration information contained in a received RTS or CTS frame, and shall always respond to an RTS addressed to it with a CTS. The medium access protocol allows for STAs to support different sets of data rates. All STAs shall receive all the data rates in aBasicRateSet and transmit at one or more of the aBasicRateSet data rates. To support the proper operation of the RTS/CTS and the virtual carrier-sense mechanism, all STAs shall be able to detect the RTS and CTS frames. For this reason the RTS and CTS frames shall be transmitted at one of the aBasi- cRateSet rates. (See 9.6 for a description of multirate operation.) Data frames sent under the DCF shall use the frame type Data and subtype Data or Null Function. STAs receiving Data type frames shall only consider the frame body as the basis of a possible indication to LLC. 9.2.1 Carrier-sense mechanism Physical and virtual carrier-sense functions are used to determine the state of the medium. When either func- tion indicates a busy medium, the medium shall be considered busy; otherwise, it shall be considered idle. A physical carrier-sense mechanism shall be provided by the PHY. See Clause 12 for how this information is conveyed to the MAC. The details of physical carrier sense are provided in the individual PHY specifica- tions. A virtual carrier-sense mechanism shall be provided by the MAC. This mechanism is referred to as the net- work allocation vector (NAV). The NAV maintains a prediction of future traffic on the medium based on duration information that is announced in RTS/CTS frames prior to the actual exchange of data. The dura- tion information is also available in the MAC headers of all frames sent during the CP other than PS-Poll Control frames. The mechanism for setting the NAV using RTS/CTS in the DCF is described in 9.2.5.4, and use of the NAV in PCF is described in 9.3.2.2. The carrier-sense mechanism combines the NAV state and the STA's transmitter status with physical carrier sense to determine the busy/idle state of the medium. The NAV may be thought of as a counter, which counts down to zero at a …
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Ubiquiti Networks, Inc. 91 E. Tasman San Jose, CA 95134 5/5/10 Attn: MET laboratories 914 West Patapsco Ave. Baltimore, MD 21230 RE: CONFIDENTIALITY REQUEST FOR M365 (FCC ID: SWX-M365) To Whom It May Concern: This letter serves as an official request for confidentiality under FCC Rule Section 0.457 & 0.459. We have requested that the schematics, block diagrams, theory of operation, BOM/parts list, and internal photos required to be submitted with this application be withheld from public review. These documents contain proprietary information that would sacrifice our competitive advantage in the marketplace if made public. Please contact me if there is any information you may need. Sincerely, Robert J. Pera Senior RF Engineer
M365 FCC ID: SWX-M365 IC: 6545A-M365 Ubiquiti Networks This device complies with Part15 of FCC rules. Operation is subject to the following two conditions: 1.) This device may not cause harmful interference and, 2.) This device must accept any interference received, including interference that maay cause undesired operation www.ubnt.com
Electromagnetic Compatibility Ubiquiti Networks Intentional Radiators M365 CFR Title 47, Part 90, Subpart Z & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 78 of 90 7. RF Exposure Requirements RF Exposure Requirements: §90.1335, §1.1307(b), 2.1091, 2.1093: Systems operating under the provisions of this section shall be operated in a manner that ensures that the public is not exposed to radio frequency energy levels in excess of the Commission’s guidelines. RF Radiation Exposure Limit: §1.1307: As specified in this section, the Maximum Permissible Exposure (MPE) Limit shall be used to evaluate the environmental impact of human exposure to radiofrequency (RF) radiation as specified in Sec. 1.1307(b), except in the case of portable devices which shall be evaluated according to the provisions of Sec. 2.1093 of this chapter. MPE Limit Calculation: EUT’s operating frequencies @ 3650–3675 MHz Limit for Uncontrolled exposure: 1 mW/cm 2 or 10 W/m 2 Equation from page 18 of OET 65, Edition 97-01 EUT with 28 dBi Antenna Conducted Power = 11.80 dBm S = PG / 4R 2 or R = √PG / 4S where, S = Power Density (1 mW/cm 2 ) P = Power Input to antenna (15.13mW) G = Antenna Gain (630.95 numeric) R = (15.13*630.95/4*3.14) 1/2 = (9549.926/12.56) 1/2 = 27.57cm _ in order to comply with 1 mW/cm 2 EUT with 21 dBi Antenna Conducted Power = 18.80 dBm S = PG / 4R 2 or R = √PG / 4S where, S = Power Density (1 mW/cm 2 ) P = Power Input to antenna (75.86mW) G = Antenna Gain (125.90 numeric) R = (75.89*125.90/4*3.14) 1/2 = (9549.926/12.56) 1/2 = 27.57cm _ in order to comply with 1 mW/cm 2 EUT with 17 dBi Antenna Conducted Power = 22.80 dBm S = PG / 4R 2 or R = √PG / 4S where, S = Power Density (1 mW/cm 2 ) P = Power Input to antenna (190.54mW) G = Antenna Gain (50.12 numeric) R = (190.54*50.12/4*3.14) 1/2 = (9549.926/12.56) 1/2 = 27.57cm _ in order to comply with 1 mW/cm 2
MET Laboratories, Inc. Safety Certification - EMI - Telecom Environmental Simulation 914 WEST PATAPSCO AVENUE ! BALTIMORE, MARYLAND 21230-3432 ! PHONE (410) 354-3300 ! FAX (410) 354-3313 33439 WESTERN AVENUE ● UNION CITY, CALIFORNIA 94587 ● PHONE (510) 489-6300 ● FAX (510) 489-6372 3162 BELICK STREET ● SANTA CLARA, CALIFORNIA 95054 ● PHONE (408 748-3585 ● FAX (510) 489-6372 The Nation’s First Licensed Nationally Recognized Testing Laboratory July 14, 2010 Ubiquiti Networks 91 E. Tasman San Jose, CA 95134 Dear Robert Pera, Enclosed is the EMC Wireless test report for compliance testing of the Ubiquiti Networks, M365, tested to the requirements of Title 47 of the Code of Federal Regulations (CFR), Part 90 Subpart Z for Land Mobile Radio Services and Part 15 Subpart B for a Class A Digital Device. Thank you for using the services of MET Laboratories, Inc. If you have any questions regarding these results or if MET can be of further service to you, please feel free to contact me. Sincerely yours, MET LABORATORIES, INC. Jennifer Sanchez Documentation Department Reference: (\Ubiquiti Networks\EMCS82293-FCC90Z Rev. 2) Certificates and reports shall not be reproduced except in full, without the written permission of MET Laboratories, Inc. MET Laboratories, Inc. Safety Certification - EMI - Telecom Environmental Simulation 914 WEST PATAPSCO AVENUE ! BALTIMORE, MARYLAND 21230-3432 ! PHONE (410) 354-3300 ! FAX (410) 354-3313 33439 WESTERN AVENUE ● UNION CITY, CALIFORNIA 94587 ● PHONE (510) 489-6300 ● FAX (510) 489-6372 3162 BELICK STREET ● SANTA CLARA, CALIFORNIA 95054 ● PHONE (408 748-3585 ● FAX (510) 489-6372 DOC-EMC700 7/9/04 Electromagnetic Compatibility Criteria Test Report For the Ubiquiti Networks Model M365 Tested under The FCC Verification Rules Contained in Title 47 of the CFR, Part 90, Subpart Z for Private Land Mobile Radio Services and Part 15, Subpart B for a Class A Digital Device MET Report: EMCS82293-FCC90Z Rev. 2 July 14, 2010 Prepared For: Ubiquiti Networks 91 E. Tasman San Jose, CA 95134 Prepared By: MET Laboratories, Inc. 3162 Belick St. Santa Clara, CA 95054 Electromagnetic Compatibility Ubiquiti Networks Cover Page M365 CFR Title 47 Part 90 Subpart Y & Part 15 Subpart B MET Report: EMCS82293-FCC90Z Rev. 2 © 2010, MET Laboratories, Inc. Page ii of ix DOC-EMC700 7/9/04 Electromagnetic Compatibility Criteria Test Report For the Ubiquiti Networks Model M365 Tested under The FCC Verification Rules Contained in Title 47 of the CFR, Part 90, Subpart Z for Private Land Mobile Radio Services and Part 15, Subpart B for a Class A Digital Device MET Report: EMCS82293-FCC90Z Rev. 2 Anderson Soungpanya Jennifer Sanchez Electromagnetic Compatibility Lab Documentation Department Engineering Statement: The measurements shown in this report were made in accordance with the procedures indicated, and the emissions from this equipment were found to be within the limits applicable. I assume full responsibility for the accuracy and completeness of these measurements, and for the qualifications of all persons taking them. It is further stated that upon the basis of the measurements made, the equipment tested is / is not capable of operation in accordance with the requirements of Part 90, Subpart Z and Part 15, Subpart B of the FCC Rules under normal use and maintenance. Shawn McMillen, Lab Manager Electromagnetic Compatibility Lab Electromagnetic Compatibility Ubiquiti Networks Report Status M365 CFR Title 47 Part 90 Subpart Y & Part 15 Subpart B MET Report: EMCS82293-FCC90Z Rev. 2 © 2010, MET Laboratories, Inc. Page iii of ix DOC-EMC700 7/9/04 Report Status Sheet Revision Report Date Reason for Revision May 18, 2010 Initial Issue. 1 May 26, 2010 Revised to reflect engineer corrections. 2 July 14, 2010 Update Emission Designator Electromagnetic Compatibility Ubiquiti Networks Terms and Abbreviations M365 CFR Title 47 Part 90 Subpart Y & Part 15 Subpart B MET Report: EMCS82293-FCC90Z Rev. 2 © 2010, MET Laboratories, Inc. Page iv of ix DOC-EMC700 7/9/04 Table of Contents 1. Executive Summary .................................................................................................................................................... 1 1.1. Testing Summary ................................................................................................................................................... 2 2. Equipment Configuration........................................................................................................................................... 3 2.1. Overview................................................................................................................................................................ 4 2.2. References .............................................................................................................................................................. 5 2.3. Test Site ................................................................................................................................................................. 5 2.4. Description of Test Sample .................................................................................................................................... 5 2.5. Equipment Configuration....................................................................................................................................... 6 2.6. Support Equipment ................................................................................................................................................ 6 2.7. Ports and Cabling Information ............................................................................................................................... 6 2.8. Modifications ......................................................................................................................................................... 8 2.8.1. Modifications to EUT ....................................................…
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Electromagnetic Compatibility Ubiquiti Networks Unintentional Radiators M365 CFR Title 47 Part 90 Subpart Y & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 13 of 90 Conducted Emission Limits Test Setup Photograph 2.Conducted Emissions Test Setup Electromagnetic Compatibility Ubiquiti Networks Unintentional Radiators M365 CFR Title 47 Part 90 Subpart Y & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 17 of 90 Radiated Emission Limits Test Setup Photograph 3. Radiated Emission Limits 30MHz – 1GHzTest Setup Electromagnetic Compatibility Ubiquiti Networks Unintentional Radiators M365 CFR Title 47 Part 90 Subpart Y & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 18 of 90 Radiated Emission Limits Test Setup Photograph 4. Radiated Emission Limits 1GHz – 10GHzTest Setup Electromagnetic Compatibility Ubiquiti Networks Intentional Radiators M365 CFR Title 47, Part 90, Subpart Z & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 75 of 90 Radiated Emissions Spurious Test Setup Photograph 5. Radiated Emission Spurious Test Setup Electromagnetic Compatibility Ubiquiti Networks Intentional Radiators M365 CFR Title 47, Part 90, Subpart Z & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 76 of 90 Radiated Emissions Spurious Test Setup Photograph 6. Radiated Emission Spurious Bilog Antenna Test Setup Electromagnetic Compatibility Ubiquiti Networks Intentional Radiators M365 CFR Title 47, Part 90, Subpart Z & Part 15 Subpart B MET Report: EMCS82293-FCC90Z © 2010, MET Laboratories, Inc. Page 77 of 90 Radiated Emissions Spurious Test Setup Photograph 7. Radiated Emission Spurious Horn Antenna Test Setup
91 E. Tasman · San Jose · United States
| # | Rule Parts | Frequency Range | Power Output | Emission | Tolerance |
|---|---|---|---|---|---|
| 3 | 9 | 3.66 GHz - 3.66 GHz | 18.544 W | 17M8D7D | 1 ppm |
SuperLink Gateway HA
Equipment Class
DTS - Digital Transmission SystemDigital Transmission Radio
Equipment Class
DTS - Digital Transmission SystemRecessed Entry Sensor
Equipment Class
DSS - Part 15 Spread Spectrum TransmitterG6 Edge Dome
Equipment Class
DTS - Digital Transmission SystemG6 Edge Turret
Equipment Class
DTS - Digital Transmission System