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OJFLITENNA0DB0P1In Building Repeater

Corning Optical Communication LLC
In Building Repeater - FCC ID OJFLITENNA0DB0P1 - Corning Optical Communication LLC
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Application Details

Equipment Class
AMP - Amplifier
Date of Grant
Jul 15, 2001
Application Purpose
Original Equipment
Date of Application
Jul 15, 2001
Equipment Note
In Building Repeater
Frequency Range
1930.00000000 - 1990.00000000
Company
Corning Optical Communication LLC
Country
United States

Documents & Files

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Users Manual

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Block Diagram

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Cover Letter(s)

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External Photos

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ID Label/Location Info

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Internal Photos

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Operational Description

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Parts List/Tune Up Info

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RF Exposure Info

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Test Report

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Test Setup Photos

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Document Text

Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.

Users Manual

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Text truncated - open the document above for the full version.

Block Diagram

FCC ID: OJFLITENNA0DB0P1 Page 4 Litenna explanation Block Diagram Litenna-in building coverage system The Litenna system consist of two parts: the base unit that connects to the microcell in one side and in the other it is connected to the remote unit that transmit the signals to the antennas and receive the signal from them. Left side shows the inputs/outputs of the system parts (BASE inputs/outputs). shows the internal structure of the BASE unit. The BASE unit can be consist of two equal boards (for 8 channels). Every board has four courses with optical output, optical input, RF input and common RF in. shows the splitting of the RF input to the BASE unit to every course of the laser circuits that converts the RF signal to a light signal and exits it through the optical fiber to the remote unit. Right side shows the basic structure of the receiver course. A photodiode receive the optic signal and converts it to RF. Then the signal pass trough an Amplifier and exits the unit. shows the basic structure of the REMOTE unit: The photodiode receives the light and converts it back to RF signal. Since the remote is dualband unit, the signal pass through amplifier, then splits to the lower band and to the upper band for different VCA’S (voltage Controlled attenuator). Than we combine again the signals, and transmit the signal through two others low power amplifiers. The signal splits again to the upper band and lower band for passing the signals through different lower and upper bands power amplifiers. the signals filtered, pass through duplexers (for separating- between the transmitted signals and the received signals), combined again the upper band and lower band then splits to four antennas. In the receive course, we sum the signals from all the four antennas, pass the signal to the receive course, filtering the needed frequencies, controlling the level of the signal through a vca (voltage- controlled attenuator, amplify the signal and convert it to light that passes through the optical fibers to the BASE unit. ANT # 1 ANT # 2 Ceramic Filter Ceramic filter PA- high freq. G=32db Diplexer low freq. PA-low freq. Ceramic filter Ceramic filter Diplexer high/low ANT # 3 ANT # 4 Diplexer high/low Diplexer high/low Photo DiodeG=15db VVA 1-18dbG=16dbG=13db LNA G=20db LNA G=22db VVA LNA G=13db LNA G=13db Laser Diode ,MKL &ERH 0S[ &ERH VVA Diplexer 900MHz- 1800MHz Diplexer high/low ,MKL &ERH Att. AV101-12 1-18db 0S[ &ERH Diplexer High freq. Splitter 1:4 Wide Band Base Downlink RF in Uplink RF Out Downlink Uplink Att. 3db Att.Laser Diode. Photo Diode. LNA G=15db Att. 3db Port 1. Port 2. Port 3. Port 4. Port 4. Port 3. Port 2. Port 1. Spiltter 1:4 Att. 3db 3 dB GAIN Optical Fiber -12 dB GAIN -32 dB GAIN 54 dB GAIN Remote 21 dB GAIN-20 dB GAIN

Block Diagram

FCC ID: OJFLITENNA0DB0P1 Page 2 The following is a copy of description of the circuit functions and block diagram of ModuLite TM . ModuLite TM general description The ModuLite TM is a new system for the provision of In-Building multiple wireless services. Its high performance yet cost effective structure efficiently enables the addition of new wireless services. The ModuLite TM is a hybrid fiber coax modular solution designed to serve multiple wireless services using a single common cabling infrastructure. The cabling infrastructure includes a fiber optic cable, a single coax cable, and a single antenna. The ModuLite TM has the following benefits and features: • Single cabling and antenna system for all services oenables fast deployment for WSP’s of new services oreduces tenant disruption osimplifies maintenance • Upgradeable to include more than ten services per Modular Remote Unit (MRU), including 3G technologies • Eliminates RF interferences occurring in parallel infrastructures due to cross antenna coupling The ModuLite TM (see Figure) has two main Modules, the MBU (Modular Base Unit including Litenna Dual Band Base Units and Interface Box – passive components) and the MRU. (Modular Remote Unit including Litenna Dual Band Remote Units and passive components) Both components are designed such that they can be located in easily accessible area, such as the communication room, the communication closet, or in the riser. TRANSDUCER MRU FEM Interface MBU RF MODULE RF to Light Conversion Service 1 Service 2 Service n RF MODULE RF Interface Figure: ModuLite TM Block Diagram The MBU converts RF signals from the RF source (Base Stations/off- air repeater) to an optical signal using direct modulation technology. Each BU module can support two to four services, depending on the application. The MBU is connected via a SM fiber optic cable to the MRU. The MRU is comprised of RF modules, each supporting two to four services, yet each RF module has sub RF channels in order to maximize the performance of each specific service in terms of IMD suppression and dynamic range. Each MRU can contain five RF modules, hence at least ten services. The RF modules can be added as required to support the required services. The MRU converts the optical signal to RF, performs filtering and enhanced signaling via its Filtering and Enhanced Signal Module (FEM), and connects to a single antenna via a single coax cable. Benefits and Features

Cover Letter(s)

tel: 650-726-1263 fax: 650-726-1252 [email protected] Thomas N. Cokenias EMC &Radio Approvals Test & Consulting Services for Commercial, Military, International Compliance P.O. Box 1086 El Granada, CA 94018 FCC Laboratory25 June 2001 7435 Oakland Mills Road Columbia, MD 21046 Attention: Application Examiner Reviewing Engineer Re: Request for confidentiality per Section 0.459 of FCC Rules Applicant: Foxcom Wireless Ltd. FCC ID: OJFLITENNA0DB0P1 To whom it may concern, Request is hereby submitted, on behalf of my client Foxcom Wireless Ltd., to withhold from public review certain portions of the application for equipment certification for the referenced FCC identifier. In particular, the following sections of the application and report are requested to be kept confidential: Schematics Parts List Rationale for request for confidentiality: Foxcom has invested considerable time and materials in research and development to produce the referenced product. Disclosure of the confidential portions of this application to competitors would give them competitive advantage in developing similar products.  If you have questions or need further information, please contact the undersigned. Sincerely, THOMAS N. COKENIAS EMC Consultant/Agent for Foxcom Wireless Ltd.

Cover Letter(s)

TCB RF Exposure Review Procedure Statement FCC ID:OJFLITENNA0DB0P1 Transmitter Category Device Type Product Category Approval and Review Procedures Used Specific Procedures: I Indoor Repeater Fixed Transmitters identified in Table 1 of §1.1307 Section B SP(1), SP(3), SP(7), SP(8) and SP(9) Grant Condition : Power output is expressed as composite output of single carrier. Output is specified at the antenna terminal on the remote HUB. The antenna(s) used for this transmitter are to be fixed-mounted on indoorpermanent structures providing a separation distance of at least 20 cm from all persons during normal operation.The maximum radiated output power at each antenna must satisfy the MPE Categorical Exclusion Requirementsof §2.1091. RF exposure compliance may need to be addressed at the time of licensing, as required by theresponsible FCC Bureau(s), including antenna co-location requirements of §1.1307(b)(3). SP1 EUT is a repeater. No duty cycle needs to be considered. Applicable FCC rule parts: Part 22, and 90. Output power ratings have been verified by comparingPage 13 of test report ( measured with power meter) and output plots (measured with Spectrum analyzer) SP3 Page 11 and 12 of Installation guide. RF exposure information to user specified 20 cm separation distance and specified the antenna gain can not over 10dBi SP7 Installation procedure has been fully described in Installation instruction provided by the applicant. The RF exposure warning information is placed atthe front chapter of document SP8 Page 11 and 12 of Installation Guide. SP9 Grant conditions have been reviewed by TCB and has made the determination that device complied with RF Exposure review procedures. Reviewed by Mike KuoCompliance Certification ServicesMay 8, 2001

External Photos

FCC ID: OJFLITENNA0DB0P1 Page 1 PHOTOGRAPHS OF THE LITENNA™ MODEL: 9B412, 9B422, 9B430, 9B440, TDMA 800/GSM 1800, GSM 900/ GSM 1800 EXTERNAL VIEW FCC ID: OJFLITENNA0DB0P1 Page 2 Remote Hub Unit FCC ID: OJFLITENNA0DB0P1 Page 3 FCC ID: OJFLITENNA0DB0P1 Page 4 FCC ID: OJFLITENNA0DB0P1 Page 5 Base Unit FCC ID: OJFLITENNA0DB0P1 Page 6

External Photos

FCC ID: OJFLITENNA0DB0P1 Page 1 PHOTOGRAPHS OF THE ModuLite™ EXTERNAL VIEW FCC ID: OJFLITENNA0DB0P1 Page 2 ModuLite TM Remote Unit FCC ID: OJFLITENNA0DB0P1 Page 3

ID Label/Location Info

FCC ID: OJFLITENNA0DB0P1 Page 1 FCC ID LABEL/Location Info FCC ID: OJFLITENNA0DB0P1 Page 2 Pursuant 47CFR Section 2.983(f) see the identification label of Litenna™: Models: 9B430, 9B412, 9B422, 9B440 Note: Base Unit Model: B8U, B4U, B2U, B1U Remote Unit Model: R1U, R4U Location Info: Remote Hub Unit Model #: 9B430- R4U Serial #: JO228607 FCC ID: OJFLITENNA0DB0P1 Base Unit Model #: 9B430-B1U Serial #: J0228608 FCC ID Label Location: FCC ID:OJFLITENNA0DB0P1

Internal Photos

FCC ID: OJFLITENNA0DB0P1 Page 1 PHOTOGRAPHS OF THE LITENNA™ MODEL: 9B412, 9B422, 9B430, 9B440 TDMA 800/GSM 1800, GSM 900/ GSM 1800 INTERNAL VIEW FCC ID: OJFLITENNA0DB0P1 Page 2 Remote Hub Unit MODEL 9B422 SMR 900/ PCS1900 FCC ID: OJFLITENNA0DB0P1 Page 3 Remote Hub Unit MODEL 9B430 Cellular 800/ PCS 1900 FCC ID: OJFLITENNA0DB0P1 Page 4 Remote Hub Unit MODEL 9B412 LMR/IDEN 800/ PCS 1900 FCC ID: OJFLITENNA0DB0P1 Page 5 Remote Hub Unit MODEL 9B440 PAGING 900/ PCS1900 FCC ID: OJFLITENNA0DB0P1 Page 6 Remote Hub Unit GSM 900/ GSM 1800 FCC ID: OJFLITENNA0DB0P1 Page 7 Remote Hub Unit Cellular 800 / GSM 1800 FCC ID: OJFLITENNA0DB0P1 Page 8 Base Unit

Internal Photos

FCC ID: OJFLITENNA0DB0P1 Page 1 PHOTOGRAPHS OF THE ModuLite TM INTERNAL VIEW FCC ID: OJFLITENNA0DB0P1 Page 2 ModuLite TM Remote Unit FCC ID: OJFLITENNA0DB0P1 Page 3 FCC ID: OJFLITENNA0DB0P1 Page 4

Internal Photos

FCC ID: OJFLITENNA0DB0P1 Page 1 PHOTOGRAPHS OF THE RHU OF Litenna TM MODEL: 9B412, 9B422, 9B430, 9B440 FOR ModuLite TM INTERNAL VIEW FCC ID: OJFLITENNA0DB0P1 Page 2 Remote Hub Unit Model 9B412 LMR/iDEN 800/PCS 1900 for ModuLite RF Output To Antenna FCC ID: OJFLITENNA0DB0P1 Page 3 Remote Hub Unit Model 9B422 SMR 900/PCS 1900 for ModuLite RF Output To Antenna FCC ID: OJFLITENNA0DB0P1 Page 4 Remote Hub Unit Model 9B430 Cellular 800/PCS 1900 for ModuLite RF Output To Antenna FCC ID: OJFLITENNA0DB0P1 Page 5 Remote Hub Unit Model 9B440 Paging 900/PCS 1900 for ModuLite RF Output To Antenna

Operational Description

FCC ID: OJFLITENNA0DB0P1 Page 1 PRODUCT DESCRIPTION and DESCRIPTION OF THE CIRCUIT FUNCTIONS AND BLOCK DIAGRAM. FCC ID: OJFLITENNA0DB0P1 Page 2 The following is a copy of description of the circuit functions and block diagram of Litenna™. RF in Sector 1 RF in Sector 2 Fiberoptic Tx #1 Fiberoptic Tx #8 Fiberoptic Rx #1 Fiberoptic Rx #8 Fiberoptic Rx #1 Fiberoptic Tx #1 Filters & Diplexers HPA LNA RF RF Litenna TM RHU #8 Litenna TM RHU #1Litenna TM Base Unit Fiberoptic Rx #8 Fiberoptic Tx #8 Filters & Diplexers HPA LNA RF RF Down Link Up Link RF o/p's Sector 1 RF o/p's Sector 2 Litenna general description The Litenna system is intended to provide the user with a network for the placement of distributed antennas to provide in-building coverage and capacity for cellular telephone services. The system includes two major components, a base unit which interfaces typically with microcell equipment and remote units which are distributed throughout the building and are hubs for antennas. The signals in the forward direction (downlink) from the microcell to the mobile stations (cellular telephones) are carried via optical fiber from the base unit to the remote units. The signals in the reverse direction (uplink) from the mobile to the microcell are similarly carried along a different fiber to the base unit. Functionally, the system behaves as a repeater, with gain/attenuation as appropriate. No signal processing/modification, or RF modulation takes place in the system. The base unit is connected via coaxial cable (and attenuators, splitters...) to the microcell equipment, or an off-air repeater. The remote unit ports connect via coaxial cables to indoor antennae, which we do not supply. The components in the RF system (aside from discrete passives) are amplifiers, splitters/combiners, filters, lasers and photodiodes. There are no oscillators used in the system. The amplifiers are class A bias, except for the output power amplifiers for the downlink, which are class AB bias. FCC ID: OJFLITENNA0DB0P1 Page 3 The system designed for Dual Band 800/1900 MHz: 869-894 MHz down, 824-849 MHz up Æfor CDMA 18 dBm total power, for TDMA/AMPS 24dBm total power. 851-869 MHz down, 806-824 MHz up Æfor LMR/iDEN 24 dBm total power. 935-941 MHz down, 869-902 MHz up Æfor SMR 24 dBm total power. 928-941 MHz down, 899-902 MHz up Æfor Paging 24 dBm total power 1930-1990 MHz down, 1850-1910 up. Æfor CDMA 18dBm total power, for GSM/TDMA 21dBm total power. The system is designed for indoor use in public buildings such as offices, shopping malls, etc. FCC ID: OJFLITENNA0DB0P1 Page 4 Litenna explanation Block Diagram Litenna-in building coverage system The Litenna system consist of two parts: the base unit that connects to the microcell in one side and in the other it is connected to the remote unit that transmit the signals to the antennas and receive the signal from them. Left side shows the inputs/outputs of the system parts (BASE inputs/outputs). shows the internal structure of the BASE unit. The BASE unit can be consist of two equal boards (for 8 channels). Every board has four courses with optical output, optical input, RF input and common RF in. shows the splitting of the RF input to the BASE unit to every course of the laser circuits that converts the RF signal to a light signal and exits it through the optical fiber to the remote unit. Right side shows the basic structure of the receiver course. A photodiode receive the optic signal and converts it to RF. Then the signal pass trough an Amplifier and exits the unit. shows the basic structure of the REMOTE unit: The photodiode receives the light and converts it back to RF signal. Since the remote is dualband unit, the signal pass through amplifier, then splits to the lower band and to the upper band for different VCA’S (voltage Controlled attenuator). Than we combine again the signals, and transmit the signal through two others low power amplifiers. The signal splits again to the upper band and lower band for passing the signals through different lower and upper bands power amplifiers. the signals filtered, pass through duplexers (for separating- between the transmitted signals and the received signals), combined again the upper band and lower band then splits to four antennas. In the receive course, we sum the signals from all the four antennas, pass the signal to the receive course, filtering the needed frequencies, controlling the level of the signal through a vca (voltage- controlled attenuator, amplify the signal and convert it to light that passes through the optical fibers to the BASE unit. ANT # 1 ANT # 2 Ceramic Filter Ceramic filter PA- high freq. G=32db Diplexer low freq. PA-low freq. Ceramic filter Ceramic filter Diplexer high/low ANT # 3 ANT # 4 Diplexer high/low Diplexer high/low Photo DiodeG=15db VVA 1-18dbG=16dbG=13db LNA G=20db LNA G=22db VVA LNA G=13db LNA G=13db Laser Diode ,MKL &ERH 0S[ &ERH VVA Diplexer 900MHz- 1800MHz Diplexer high/low ,MKL &ERH Att. AV101-12 1-18db 0S[ &ERH Diplexer High freq. Splitter 1:4 Wide Band Base Downlink RF in Uplink RF Out Downlink Uplink Att. 3db Att.Laser Diode. Photo Diode. LNA G=15db Att. 3db Port 1. Port 2. Port 3. Port 4. Port 4. Port 3. Port 2. Port 1. Spiltter 1:4 Att. 3db 3 dB GAIN Optical Fiber -12 dB GAIN -32 dB GAIN 54 dB GAIN Remote 21 dB GAIN-20 dB GAIN

Operational Description

FCC ID: OJFLITENNA0DB0P1 Page 1 PRODUCT DESCRIPTION and DESCRIPTION OF THE CIRCUIT FUNCTIONS AND BLOCK DIAGRAM. FOR ModuLite TM FCC ID: OJFLITENNA0DB0P1 Page 2 The following is a copy of description of the circuit functions and block diagram of ModuLite TM . ModuLite TM general description The ModuLite TM is a new system for the provision of In-Building multiple wireless services. Its high performance yet cost effective structure efficiently enables the addition of new wireless services. The ModuLite TM is a hybrid fiber coax modular solution designed to serve multiple wireless services using a single common cabling infrastructure. The cabling infrastructure includes a fiber optic cable, a single coax cable, and a single antenna. The ModuLite TM has the following benefits and features: • Single cabling and antenna system for all services oenables fast deployment for WSP’s of new services oreduces tenant disruption osimplifies maintenance • Upgradeable to include more than ten services per Modular Remote Unit (MRU), including 3G technologies • Eliminates RF interferences occurring in parallel infrastructures due to cross antenna coupling The ModuLite TM (see Figure) has two main Modules, the MBU (Modular Base Unit including Litenna Dual Band Base Units and Interface Box – passive components) and the MRU. (Modular Remote Unit including Litenna Dual Band Remote Units and passive components) Both components are designed such that they can be located in easily accessible area, such as the communication room, the communication closet, or in the riser. TRANSDUCER MRU FEM Interface MBU RF MODULE RF to Light Conversion Service 1 Service 2 Service n RF MODULE RF Interface Figure: ModuLite TM Block Diagram The MBU converts RF signals from the RF source (Base Stations/off- air repeater) to an optical signal using direct modulation technology. Each BU module can support two to four services, depending on the application. The MBU is connected via a SM fiber optic cable to the MRU. The MRU is comprised of RF modules, each supporting two to four services, yet each RF module has sub RF channels in order to maximize the performance of each specific service in terms of IMD suppression and dynamic range. Each MRU can contain five RF modules, hence at least ten services. The RF modules can be added as required to support the required services. The MRU converts the optical signal to RF, performs filtering and enhanced signaling via its Filtering and Enhanced Signal Module (FEM), and connects to a single antenna via a single coax cable. Benefits and Features FCC ID: OJFLITENNA0DB0P1 Page 3 869-894 MHz down, 824-849 MHz up !for CDMA/TDMA/AMPS. 851-869 MHz down, 806-824 MHz up !for LMR/iDEN. 935-941 MHz down, 869-902 MHz up !for SMR. 928-941 MHz down, 899-902 MHz up !for Paging . 1930-1990 MHz down, 1850-1910 up. !for CDMA/GSM/TDMA. The system is designed for indoor use in public buildings such as offices, shopping malls, etc. ModuLite™ System Architecture RHU's Cabinet Litenna Dual Band RHU iDEN / 1900 (FCC ID: OJFLITENNA0DB0P1) Litenna Dual Band RHU 800 / 1900 (FCC ID: OJFLITENNA0DB0P1) Hybrid 4x4 (Duplexer) (Passive Component) Ant 1 Ant 2 Ant 4 Ant 3 Litenna Dual Band BU (FCC ID: OJFLITENNA0DB0P1) Port1 PCS1900 1 st PCS1900 3 rd CELL800 1 st Tx Rx Tx Rx Interface Box (Passive Components) Interface Unit Interface Unit Port1 UL DL UL DL Litenna Dual Band RHU Page / 1900 (FCC ID: OJFLITENNA0DB0P1) Port1 PCS1900 2 nd Page900 Tx Rx Interface Unit UL DL CELL800 2 nd 115VAC to 48VDC Power Supply D1 Filter DL UL A1 Filter DL Input 115VAC Litenna Dual Band BU (FCC ID: OJFLITENNA0DB0P1) Litenna Dual Band BU (FCC ID: OJFLITENNA0DB0P1) ModuLite Functional Description. The ModuLite system is a combination of parallel dual band Litenna systems, combined to a single set of wide band antennas. It can integrate up to 4 parallel dual band Litenna systems. Signal flow for each frequency band is as with a "conventional" dual band Litenna with the addition of filtering, where necessary, to avoid potential interferences coming from downlink to the uplink. FCC ID: OJFLITENNA0DB0P1 Page 4 Each service is fed separately to the interface box where the signal is split and fed to the related base units. The downlink signal is converted at the base unit to light and fed to the RHU via a fiber optic connection. At the RHU, the downlink signal is converted back to RF, amplified and fed to the antenna system . The uplink signal is received at the antenna and fed to the RHU. The Uplink signal is converted at the RHU to light and fed to the base unit via a fiber optic connection. The base unit converts the uplink signal back to RF and feed it via the interface box to the related cellular base station. As mentioned earlier, external filters may be added at the uplink and downlink paths, at some service combinations, close to the antenna combiner, to avoid downlink energy from blocking the uplink.

Parts List/Tune Up Info

Litenna Installation GuideRequired Equipment Foxcom Wireless Proprietary Information Document No. 42-93-005-23D15 Required Equipment The following describes the equipment required for testing the system at setup. Table 2 – Required Equipment List Required Setup EquipmentQuantity HP8753C Network Analyzer or equivalent1 HP85046A S Parameter test set or equivalent1 HP8594E Spectrum Analyzer or equivalent1 Power supply 18/48 @ 1A1 Signal generator HP8648B or equivalent2 Amplifier Mini-circuit ZKL-2 or equivalent1 Digital Multi-meter1 RF Combiner Mini-Circuit ZAPD-21 or equivalent with N connectors1 High-grade 50-ohm phase matched cables: N to N cables N to SMA cables (in N remote type) SMA to SMA cables (in SMA remote type) 4 2 3 Optical power meter (1310 nm) for minimum 3 mW1 Singlemode duplex fiberoptic cable with SC/APC connectors 3m Singlemode fiberoptic cable SC/APC connectors3m Calibration kit, including Through (N-female to N-female) Short (N-female) 50 ohm (N-female) Required EquipmentLitenna Installation Guide 16 Document No. 42-93-005-23D Foxcom Wireless Proprietary Information Test Procedures This section explains the following test procedures: • Pre RF Test • Flatness Test • Gain/IP3 Test • Uplink Network Test In order to carry out the tests, the following connections need to be made. 1. Connect the Base Unit optical output to the RHU optical input via fiberoptic cable. 2. Connect power to all units being tested (18V-48V DC). Use the relevant setup for every test. Pre RF Test To carry out the Pre RF Test, the following procedure needs to be carried out. 1. Make sure all DC LEDs are lit on both units. 2. Measure Tx optical output power for all lasers. Output power should be 1.5-2.4mW (with optical power meter). 3. On the RHU, Make sure that the optical LED is lit. 4. On the BU, make sure the Rx optical LEDs are lit. Flatness Test To carry out the Flatness Test, the following procedure needs to be carried out. 1. Connect the Network Analyzer to the designated Base Unit. On the Network Analyzer, Base Unit connects to port 2. On the Network Analyzer RHU connects to port 1 (see Figure 9). 2. After calibrating the network, set Network Analyzer to: Measure S21 Format Log Scale 1db/div 3. Apply with the required F1 and F2 should be according to Product Spec. 4. Measure the difference between the highest and the lowest signal point, which should be as specified in the data sheet. Litenna Installation GuideRequired Equipment Foxcom Wireless Proprietary Information Document No. 42-93-005-23D17 Gain/IP3 Test To carry out the Gain/IP3 Test, the following procedure needs to be carried out. 1. Set the 2 tone signal from the 2 signal generators. RF signals F1 and F2 should be according to Product Spec. 2. Combine the signals with ZAPD-21 combiner or equivalent. 3. Connect the 2-tone signal to the input of the base (see Figure 10). 4. Set Spectrum Analyzer to: Video BW 10khz RBW 100khz Attenuation 20db Span 30Mhz Center freq. Refer to Product Spec. Ref level 10dbm 5. Connect RF cable from the RHU output to the Spectrum Analyzer. 6. Measure …

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Contact Information

Applicant

Dana Whitney(Director of Operations and Program)
[email protected]817-431-7894Fax: 817-431-7894

Test Firm

Compliance Certification Services IncSteve Cheng
[email protected]408-463-0885Fax: 408-463-0888

Technical Specifications

#Rule PartsFrequency RangePower OutputEmissionTolerance
6241.93 GHz - 1.99 GHz145.00 mWGXWAmp
Confidentiality
Long Term
Grant Notes
Grant Condition : Power output is expressed as composite output of single carrier. Output is specified at the antenna terminal on the remote HUB. The antenna(s) used for this transmitter are to be fixed- mounted on indoor permanent structures providing a separation distance of at least 20 cm from all persons during normal operation. The maximum radiated output power at each antenna must satisfy the MPE Categorical Exclusion Requirements of �2.1091. RF exposure compliance may need to be addressed at the time of licensing, as required by the responsible FCC Bureau(s), including antenna co- location requirements of �1.1307(b)(3).

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