
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
Cell Phone Signal Booster Installation Guide NEED HELP? 866.294.1660support.weboost.com MON - FRI: 6AM to 7PM MST SAT - SUN: 8AM to 5PM MST Troubleshooting Safety Guidelines Frequently Asked Questions Package Content1 2 18 16 14 12 11 8 4 Find Strongest Signal Quick Installation Antenna Expansion Kit Signal Booster Specifications Warranty Index 6 Light Patterns eqo Boostereqo Antenna + 15’ Cable (303020)(859948) Power Supply Package Content IMPORTANT NOTICE: Connect your eqo Booster AC Power Supply to a surge protected AC power strip with at least a 1000 Joule rating. Failure to do this will void your warranty in the event of a power surge or lightning strike. This device may be operated ONLY in a fixed location for in-building use. The signal booster unit is designed for use in an indoor, temperature controlled environment ( > 150 degrees Fahrenheit) ! ! CELL PHONE SIGNAL BOOSTER 1 Installation Instructions for the Following weBoost Signal Booster: eqo™ 700 MHz Band 12 & 17 800 / 1900 (Excluding B25) AWS (1700 / 2100) Find the Strongest Cellular Signal CELL PHONE SIGNAL BOOSTER 2 Before you install your eqo signal booster, you must determine the location of the best available cellular signal. This will help you maximize performance from your eqo booster. Use any of the following methods to find the strongest signal in the room where the booster will be installed. (FIND THE STRONGEST CELLULAR SIGNAL cont.) weboost.com/us/test-mode-instructions/ WITH 2 PEOPLE - one inside and one outside. The person inside should have the phone in test mode so the numerical signal strength can be read. This is more accurate than the bar indicator. For help in finding the test mode for your phone please go to: Place calls from several locations outside your building. As you move to dierent locations, note where you get the best reception. Check the bar indicator on your cell phone display and note where the signal appears the strongest. Repeat your signal check several times, moving each time to a dierent location. Remember each time you move to a new location, your phone may require up to 30 seconds to reset and display the new reading. For additional instructions on finding the strongest cellular signal, watch the installation video at: weboost.com/us/eqovideo. How to Find Your Strongest Signal. CELL PHONE SIGNAL BOOSTER 3 (Note: cell phone bars are only an approximation of signal strength and vary from phone to phone.) -80dB -100dB -95dB -90dB -90dB Quick Installation 1 3 To view an installation video for this booster please visit the following link: weboost.com/us/eqovideo/ Place the Antenna where you need to boost your signal, at least 6 feet away from the Booster. The Antenna can be mounted on the wall. Place your Booster in the area with the strongest cell phone signal, as identified on the previous page. The LED light should be facing into the room. 6 ft. 2 Connect the supplied Coax Cable and Power Supply on the side of the Booster. Power Cable Coax Cable CELL PHONE SIGNAL BOOSTER 4 IMPORTANT NOTICE: Connect your eqo Booster AC Power Supply to a surge protected AC power strip with at least a 1000 Joule rating. Failure to do this will void your warranty in the event of a power surge or lightning strike. ! 4 5 CELL PHONE SIGNAL BOOSTER 5 Connect the Power Supply to a surge protected AC power strip with at least 1000 Joule rating*. Connect the other end of the Coax Cable to the Antenna. Coax Cable A AAA BA The booster and antenna should face the same direction. The booster and antenna should never face each other, or be placed back to back. They should be at least 6 feet away from each other. Placement Instructions eqo Booster Product NumberU473020 460032 PWO460032 4726A-460032 Connectors SMA-Female Antenna Impedance50 Ohms Frequency Model Number FCC ID: IC: 698-716 MHz, 729-756 MHz, 777-787 MHz, 824-894 MHz, 1850-1990 MHz, 1710-1755/2110-2155 MHz Passband Gain (nominal) 700 MHz Band 12/17 61 700 MHz Band 13 62 800 MHz Band 5 62 1700/2100 MHz Band 4 68 1900 MHz Band 2 70 20 dB Bandwidth (MHz) 700 MHz Band 12/17 700 MHz Band13 800 MHz Band 5 1700/2100 MHz Band 4 1900 MHz Band 2 Typical Maximum 31.8 35.4 32.1 35.6 37.9 39.0 79.9 83.0 81.9 85.1 Power output for single cell phone (Uplink) dBm 700 MHz Band 12/17 700 MHz Band 13 800 MHz Band 5 1700 MHz Band 4 1900 MHz Band 2 23.9424.1923.4924.5523.61 Power output for single cell phone (Downlink) dBm 700 MHz Band 12/17 700 MHz Band 13 800 MHz Band 5 2100 MHz Band 4 1900 MHz Band 2 11.6411.9212.111.99.5 Power output for multiple received channels (Uplink) dBm No. Tones Maximum Power Maximum Power 700 MHz Band 12/17 700 MHz Band 13 800 MHz Band 5 1700 MHz Band 4 1900 MHz Band 2 220.719.923.421.219.1 317.116.319.917.715.5 414.613.817.415.213.0 512.711.915.413.311.1 611.110.313.911.79.5 Power output for multiple received channels (Downlinklink) dBm Maximum Power No. Tones 700 MHz Band 12/17 700 MHz Band 13 800 MHz Band 5 2100 MHz Band 4 1900 MHz Band 2 212.713.311.811.912.6 39.29.88.28.49.1 46.77.35.75.96.6 54.85.43.84.04.7 63.23.82.22.43.1 Noise Figure5 dB nominal Isolation> 1 10 dB 5V/2.5A Power Requirements IC Note #1: The term “IC” before the radio certification number only signifies that Industry Canada technical specifications were met. Specifications CELL PHONE SIGNAL BOOSTER 6 CELL PHONE SIGNAL BOOSTER 7 Each Signal Booster is individually tested and factory set to ensure FCC compliance. The Signal Booster cannot be adjusted without factory reprogramming or disabling the hardware. The Signal Booster will amplify, but not alter incoming and outgoing signals in order to increase coverage of authorized frequency bands only. If the Signal Booster is not in use for five minutes, it will reduce gain until a signal is detected. If a detected signal is too high in a frequency band, or if the Signal Booster detects an oscillation, the Signal Booser will automatically reduce the gain on that specific band. The Manufacturer’s rated output power of this equipment …
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December 2, 2015 Attestation For Wilson Signal Booster: FCC ID PWO460032 Each Signal Booster certificated under FCC ID PWO460032 is manufactured and individually tested to ensure FCC compliance: (1) Licensee consent is not required for FCC certification equipment authorization purposes, but licensee consent does remain applicable per 20.21 provisions for both provider specific and wideband boosters. (2) NPS and other compliance/safeguard features have been implemented. (3) NPS and other compliance/safeguard features are defaulted to be “On” (in operation). (4) NPS and other compliance/safeguard features cannot be field reconfigured, disabled, or removed. (5) This consumer booster is not user programmable, does not need fine tuning or adjustment, and does not require professional installation. However, in case booster indicator lights show the need, the gain may be adjusted as described in the User Manual. Such adjustments are “fail safe”, i.e., they will not enable the booster to be non-compliant to NPS or other compliance/safeguard requirements. (6) Future software upgrade will not cause non-compliance. Sincerely, Patrick L. Cook Chief Technology Officer
December 2, 2015 Federal Communications Commission 7435 Oakland Mills Road Columbia, MD 21046 Subject: Data Confidentiality To Whom It May Concern: Wilson Electronics, Inc. respectfully requests confidentiality of certain documentation provided with the submission of our model 460032 Signal Booster under FCC ID: PWO460032 in accordance with sections 0.457 and 0.459 of the Commission’s regulations. We request that the following documents be kept confidential: 1. Schematic Diagram & Parts List 2. Operational Description 3. Block Diagram The above material is confidential and contains proprietary trade secrets and technical data which must be kept from competitors. Public access to these items could result in duplication of our circuitry and/or techniques thereby reducing our competitive advantage and causing us severe damage. Sincerely, Patrick L. Cook Chief Technology Officer
December 2, 2015 Tuning and Adjustment of Wilson Model 460032 Signal Booster There are no external tuning adjustments. The amplifier is factory set to not exceed maximum gains, power levels, and downlink dependent region (RSSI) set points as provided in the test results. Sincerely, Patrick L. Cook Chief Technology Officer
December 9, 2015 Subject: RF MPE EXPOSURE Re: FCC ID: PWO460032 To Whom It May Concern: The MPE calculations for model 460032 signal booster were done for each frequency band: 1700/2100 MHz, 800 MHz, 700 MHz Band 13, 700 MHz Band 12, and 1900 MHz. For each band two calculations were done; these included the worst case scenario for each of the different types of antennas that may be connected to this signal booster: outside and inside antennas. The order of the attached calculations is as follows: 1700/2100 MHz band: 1. Outside Antenna: eqo Antenna 2. Inside Antenna: 311155 800 MHz band: 1. Outside Antenna: eqo Antenna 2. Inside Antenna: 311155‐1150 700 MHz Band 13: 1. Outside Antenna: eqo Antenna 2. Inside Antenna: 311155 700 MHz Band 12: 1. Outside Antenna: eqo Antenna 2. Inside Antenna: 311155 1900 MHz band: 1. Outside Antenna: 311129 2. Inside Antenna: 311155 A booster’s uplink power must not exceed 1 watt equivalent isotropic radiated power (EIRP) for each band of operation. Composite downlink power must not exceed 0.05 watt EIRP for each band of operation ( 20.21(e)(8)(i)(D)). The following formula was used to calculate the equivalent isotropic radiated power: EIRP= Power Out (Watts)*Duty Cycle Percent*Antenna Gain (non‐log)*Coax loss (non‐log) The power density (mW/cm 2 ) is calculated using the following formula: Calculated Power Density=1000*EIRP (Watts)/(4*π*(Distance from Antenna (cm)^2)) Sincerely, Patrick L. Cook Chief Technology Officer Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz1710 Pout Watts0.28510 Duty Cycle Percent100.0% Ant. Gain dBi5.42 Coax Loss dB0.17 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi5.25 Distance From Antenna In Inches7.87 EIRP (Watts)0.9550 FCC Power Density Limit (mw/cm 2 ) 1.00 Calculated Power Density (mw/cm 2 ) 0.1900 REFERENCE DAT A Pout dBm24.55 Antenna Gain (non-log)3.48 Coax loss (non-log)0.96 General FCC Limit (mw/cm 2 ) 1.00 RESULTS OF CALCULATIONS 12/9/2015, 3:32 PM1700 MHz Band 4 UL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz2110 Pout Watts0.01560 Duty Cycle Percent100.0% Ant. Gain dBi6.66 Coax Loss dB3.17 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi3.49 Distance From Antenna In Inches7.87 EIRP (Watts)0.0348 FCC Power Density Limit (mw/cm 2 ) 1.00 Calculated Power Density (mw/cm 2 ) 0.0069 REFERENCE DAT A Pout dBm11.93 Antenna Gain (non-log)4.63 Coax loss (non-log)0.48 General FCC Limit (mw/cm 2 ) 1.00 RESULTS OF CALCULATIONS 12/9/2015, 3:32 PM2100 MHz Band 4 DL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz824 Pout Watts0.22336 Duty Cycle Percent100.0% Ant. Gain dBi5.45 Coax Loss dB0.10 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi5.35 Distance From Antenna In Inches7.87 EIRP (Watts)0.7656 FCC Power Density Limit (mw/cm 2 ) 0.55 Calculated Power Density (mw/cm 2 ) 0.1523 REFERENCE DAT A Pout dBm23.49 Antenna Gain (non-log)3.51 Coax loss (non-log)0.98 General FCC Limit (mw/cm 2 ) f/1500 RESULTS OF CALCULATIONS 12/9/2015, 3:33 PM800 MHz Band 5 UL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz869 Pout Watts0.01614 Duty Cycle Percent100.0% Ant. Gain dBi6.09 Coax Loss dB2.36 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi3.73 Distance From Antenna In Inches7.87 EIRP (Watts)0.0381 FCC Power Density Limit (mw/cm 2 ) 0.58 Calculated Power Density (mw/cm 2 ) 0.0076 REFERENCE DAT A Pout dBm12.08 Antenna Gain (non-log)4.06 Coax loss (non-log)0.58 General FCC Limit (mw/cm 2 ) f/1500 RESULTS OF CALCULATIONS 12/9/2015, 3:33 PM800 MHz Band 5 DL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz776 Pout Watts0.26242 Duty Cycle Percent100.0% Ant. Gain dBi5.19 Coax Loss dB0.09 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi5.10 Distance From Antenna In Inches7.87 EIRP (Watts)0.8492 FCC Power Density Limit (mw/cm 2 ) 0.52 Calculated Power Density (mw/cm 2 ) 0.1689 REFERENCE DAT A Pout dBm24.19 Antenna Gain (non-log)3.30 Coax loss (non-log)0.98 General FCC Limit (mw/cm 2 ) f/1500 RESULTS OF CALCULATIONS 12/9/2015, 3:33 PM700 MHz Band 13 UL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz746 Pout Watts0.01556 Duty Cycle Percent100.0% Ant. Gain dBi4.16 Coax Loss dB0.00 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi4.16 Distance From Antenna In Inches7.87 EIRP (Watts)0.0406 FCC Power Density Limit (mw/cm 2 ) 0.50 Calculated Power Density (mw/cm 2 ) 0.0081 REFERENCE DAT A Pout dBm11.92 Antenna Gain (non-log)2.61 Coax loss (non-log)1.00 General FCC Limit (mw/cm 2 ) f/1500 RESULTS OF CALCULATIONS 12/9/2015, 3:34 PM700 MHz Band 13 DL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz698 Pout Watts0.24774 Duty Cycle Percent100.0% Ant. Gain dBi5.12 Coax Loss dB0.09 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi5.03 Distance From Antenna In Inches7.87 EIRP (Watts)0.7889 FCC Power Density Limit (mw/cm 2 ) 0.47 Calculated Power Density (mw/cm 2 ) 0.1569 REFERENCE DAT A Pout dBm23.94 Antenna Gain (non-log)3.25 Coax loss (non-log)0.98 General FCC Limit (mw/cm 2 ) f/1500 RESULTS OF CALCULATIONS 12/9/2015, 3:34 PM700 MHz Band 12 UL.xlsx Minimum Safe Distance From Antennas Based upon FCC OET Bulletin 65 and other FCC Sources INPUT DATA Frequency MHz728 Pout Watts0.01459 Duty Cycle Percent100.0% Ant. Gain dBi4.16 Coax Loss dB0.00 Distance From Antenna In cm20.0 Ant. Gain less Coax Loss dBi4.16 Distance From Antenna In Inches7.87 EIRP (Watts)0.0380 FCC Power Density Limit (mw/cm 2 ) 0.49 Calculated Power Density (mw/cm 2 ) 0.0076 REFERENCE DAT A Pout dBm11.64 Antenna Gain (non-log)2.61 Coax los…
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p15b0006_FCC_Part 20_Rev 3.0 Page 1 of 164 Test Report Prepared for: Wilson Electronics, Inc. Model: 460032 Description: Quint Band Signal Booster FCC ID: PWO460032 To FCC Part 20 Date of Issue: January 26, 2015 On the behalf of the applicant: Wilson Electronics, Inc. 3301 E Deseret Drive St. George, UT 84790 Attention of: Patrick Cook, Sr Research & Development Engineer Ph: (435) 673-5021 E-Mail: [email protected] Prepared By Compliance Testing, LLC 1724 S. Nevada Way Mesa, AZ 85204 (480) 926-3100 phone / (480) 926-3598 fax www.compliancetesting.com Project No: p15b0006 Greg Corbin Project Test Engineer This report may not be reproduced, except in full, without written permission from Compliance Testing. All results contained herein relate only to the sample tested. p15b0006_FCC_Part 20_Rev 3.0 Page 2 of 164 Test Report Revision History Revision Date Revised By Reason for Revision 1.0 November 23, 2015 Greg Corbin Original Document 2.0 December 17, 2016 Greg Corbin Changed Oscillation Detection to Anti -Oscillation 3.0 January 26, 2016 Greg Corbin Corrected the Limit in the 698 – 716 MHz oscillation mitigation table on page 148 p15b0006_FCC_Part 20_Rev 3.0 Page 3 of 164 Table of Contents Description Page Standard Test Conditions and Engineering Practices 5 Test Result Summary 7 Authorized Frequency Band 8 Maximum Power and Gain 14 Intermodulation 16 Out-of-Band Emissions 22 Conducted Spurious Emissions 56 Noise Limits 79 Uplink Inactivity 90 Variable Gain 94 Occupied Bandwidth 99 Anti-Oscillation 130 Oscillation Mitigation 147 Radiated Spurious 153 Test Equipment Utilized 164 p15b0006_FCC_Part 20_Rev 3.0 Page 4 of 164 ILAC / A2LA Compliance Testing, LLC, has been accredited in accordance with the recognized International Standard ISO/IEC 17025:2005. This accreditation demonstrates technical competence for a defined scope and the operation of a laboratory quality management system (refer to the joint ISO-ILAC-IAF Communiqué dated January 2009). The tests results contained within this test report all fall within our scope of accreditation, unless noted below. Please refer to http://www.compliancetesting.com/labscope.html for current scope of accreditation. Testing Certificate Number: 2152.01 FCC Site Reg. #349717 IC Site Reg. #2044A-2 Non-accredited tests contained in this report: N/A p15b0006_FCC_Part 20_Rev 3.0 Page 5 of 164 Test and Measurement Data Sub-part 2.1033(c)(14): All tests and measurement data shown were performed in accordance with FCC Rules and Regulations, Part 2, Subpart J and the following individual Parts: 20.21 in conjunction with latest version of KDB 935210. Standard Test Conditions and Engineering Practices Except as noted herein, the following conditions and procedures were observed during the testing: In accordance with ANSI/C63.4-2009, and unless otherwise indicated in the specific measurement results, the ambient temperature of the actual EUT was maintained within the range of 10° to 40°C (50° to 104°F), unless the particular equipment requirements specified testing over a different temperature range. Also, unless otherwise indicated, the humidity levels were in the range of 10% to 90% relative humidity. Environmental Conditions Temp (ºC) Humidity (%) Pressure (mbar) 24.9 – 31.0 33.5 – 63.0 985.5 - 943.0 Measurement results, unless otherwise noted, are worst-case measurements. EUT Description Model: 460032 Description: Quint Band Signal Booster Serial Number: N/A p15b0006_FCC_Part 20_Rev 3.0 Page 6 of 164 The EUT is a Fixed Install, bi-directional amplifier for the boosting of cellular phone signals and data communication devices. The following frequency bands and emission types are utilized. Frequency Band (MHz) Uplink 698 - 716 776 - 787 824 - 849 1850 - 1915 1710 – 1755 Downlink 728 - 746 746 - 757 869 - 894 1930 - 1995 2110 - 2155 Modulation Type LTE GSM, CDMA, EDGE, HSPA. EVDO, LTE CDMA, HSPA, LTE, EDGE, EVDO Emission Designators CDMA HSPA LTE EVDO EDGE GSM F9W F9W G7D F9W G7W GXW The modulation types and emission designators listed in the tables represent the modulations that the cell phone providers use for each frequency band. GSM, CDMA, and WCDMA represent all the modulation types (phase and amplitude or a combination thereof) utilized within the industry. EDGE, HSPA, LTE etc. are all protocols or multiplexing techniques using the base modulations. EUT Operation during Tests The EUT was in a normal operating condition. p15b0006_FCC_Part 20_Rev 3.0 Page 7 of 164 Test Result Summary Specification Test Name Pass, Fail, N/A Comments 20.21(e)(3) Authorized Frequency Band Pass 20.21(e)(8)(i)(B) 20.21(e)(8)(i)(C) 20.21(e)(8)(i)(D) Maximum Power and Gain Pass 20.21(e)(8)(i)(F) Intermodulation Pass 20.21(e)(8)(i)(E) Out-of-Band Emissions Pass 2.1051 22.917(a) 24.238((a) 27.53(c) 27.53(e) 27.53(f) 27.53(g) Conducted Spurious Emissions Pass 20.21(e)(8)(i)(A) Noise Limits Pass 20.21(e)(8)(i)(I) Uplink Inactivity Pass 20.21(e)(8)(i)(C)(1) 20.21(e)(8)(i)(H) Choose: 20.21(e)(8)(i)(C)(2)(i) (Fixed) Variable Gain Pass 2.1049 Occupied Bandwidth Pass 20.21(e)(8)(ii)(A) Anti-Oscillation Pass 2.1053 Radiated Spurious Pass 20.21(e)(8)(i)(B) Spectrum Block Filtering N/A This only applies to devices utilizing spectrum block filtering p15b0006_FCC_Part 20_Rev 3.0 Page 8 of 164 Authorized Frequency Band Engineer: Mike Graffeo Test Date: 10/15/14 Test Procedure The EUT was connected to a spectrum analyzer through an attenuator with the losses being input into the spectrum analyzer as a combination of reference level offset and correction factor as needed to ensure accurate readings. A signal generator was utilized to produce a CW input signal tuned to the center channel of the operational band. The RF input level was increased to a point just prior to the AGC being in control of the power. The Signal generator was set to sweep across 2X the operational band of the EUT while the spectrum analyzer was set to MAX HOLD. Two markers were placed at the edges of the operational band an…
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p15b0006_FCC_Part 20_Rev 3.0 Page 55 of 164 2110 - 2155 MHz Band Lower Band Edge Upper Band Edge p15b0006_FCC_Part 20_Rev 3.0 Page 56 of 164 Conducted Spurious Emissions Engineer: Mike Graffeo Test Date: 10/28/14 Test Procedure The EUT was connected to a spectrum analyzer through an attenuator, with the losses being input into the spectrum analyzer as a combination of reference level offset and correction factor as needed to ensure accurate readings. A signal generator was utilized to produce a 4.1 MHz AWGN signal operating at the maximum allowable power. The conducted spurious emissions from 9 kHz to 10 times the highest tunable frequency for each operational band were measured (excluding the band defined by the Out of band emissions test). The emissions were plotted and the highest level was recorded in the summary table. The following formulas are used for calculating the limits. Conducted Spurious Emissions Limit = P1 – (43+ 10Log(P2)) = -13 dBm P1 = power in dBm P2 = power in Watts Test Setup Uplink Test Results Frequency Band (MHz) Measured Frequency (MHz) Measured Level (dBm) Limit (dBm) Result 698 - 716 1754.6 -32.44 -13 Pass 776 - 787 787.1 -19.12 -13 Pass 824 - 849 1880.7 -32.75 -13 Pass 1710 - 1755 1886.2 -33.59 -13 Pass 1850 - 1915 1755.3 -32.10 -13 Pass Downlink Test Results Frequency Band (MHz) Measured Frequency (MHz) Measured Level (dBm) Limit (dBm) Result 728 - 746 1969.0 -31.27 -13 Pass 746 - 757 1970.6 -31.65 -13 Pass 869 - 894 1964.6 -32.64 -13 Pass 1930 - 1995 2154.3 -33.94 -13 Pass 2110 - 2155 1965.6 -32.82 -13 Pass Signal Generator EUT Power Attenuator Spectrum Analyzer p15b0006_FCC_Part 20_Rev 3.0 Page 57 of 164 For the 746 – 758 downlink and 776 – 788 Uplink bands of operation, the following additional spurious emissions requirements apply. FCC 27.53(c) For operations in the 746-758 MHz band and the 776-788 MHz band, the power of any emission outside the licensee's frequency band(s) of operation shall be attenuated below the transmitter power (P) within the licensed band(s) of operation, measured in watts, in accordance with the following: (3) On all frequencies between 763-775 MHz and 793-805MHz, by a factor of not less than 76 + 10 log (P) dB in a 6.25 kHz band segment, for base and fixed stations; The test is performed using a 10 kHz RBW. Since the limit is referenced to a 6.25 kHz BW, the following correction factor is applied to the measured data. BW correction Factor = 10Log B1/B2 BW correction Factor =10Log 6.25 / 10 = - 2.0 dB Final Value (dBm) = conducted measurement +BW correction factor 776 – 787 MHz Uplink Band Spurious Frequency Range (MHz) Measured Frequency (MHz) Measured Value (dBm) Bandwidth Correction Factor (dB) Final Value (dBm) Limit (dBm) Margin (dB) 763 – 775 774.96 -56.80 -2.0 -58.84 -46 -12.84 793 – 805 793 -71.48 -2.0 -73.52 -46 -27.52 746 - 757 MHz Downlink Band Spurious Frequency Range (MHz) Measured Frequency (MHz) Measured Value (dBm) Bandwidth Correction Factor (dB) Final Value (dBm) Limit (dBm) Margin (dB) 763 – 775 772.89 -86.00 -2.0 -88.04 -46 -42.04 793 – 805 794.65 -84.21 -2.0 -86.25 -46 -40.25 p15b0006_FCC_Part 20_Rev 3.0 Page 58 of 164 FCC 27.53(f) For operations in the 746-758 MHz, 775-788 MHz, and 805-806 MHz bands, emissions in the band 1559-1610 MHz shall be limited to −70 dBW/MHz equivalent isotropically radiated power (EIRP) for wideband signals, and −80 dBW EIRP for discrete emissions of less than 700 Hz bandwidth. For the purpose of equipment authorization, a transmitter shall be tested with an antenna that is representative of the type that will be used with the equipment in normal operation. Since the limit is referenced to EIRP, the final data is computed using the Conducted Spurious Emission data and adding the BW correction factor plus the final gain/loss data from the antenna kitting information supplied by the manufacturer. For the Narrowband measurement, the test is performed using a 10 kHz RBW. Since the limit is referenced to a 700 Hz BW, the following correction factor is applied to the measured data. BW correction Factor = 10Log B1/B2 BW correction Factor =10Log 700 / 10000 = -11.55 dB Final Value (dBm) = conducted measurement +BW correction factor + final gain/loss from Antenna Kitting document The Limit for discreet (narrowband) emissions is -80dBW (-50 dBm) in 700 MHz BW. The Limit for (wideband Emissions) is -70 dBW (-40 dBm) in a 1 MHz BW. 776 – 787 MHz Uplink Band Spurious Frequency Range (MHz) Measured Frequency (MHz) Measured Value (dBm) Bandwidth Correction Factor (dB) Gain/Loss from Antenna Kitting Information (dB) Final Value (dBm) Limit (dBm) Margin (dB) 1559 – 1610 (Wideband) 1563.8 -53.8 0 2.13 -51.67 -40 -11.67 1559 – 1610 (Narrowband) 1563.9 -78.32 -11.55 2.13 -87.74 -50 -37.74 746 - 757 MHz Downlink Band Spurious Frequency Range (MHz) Measured Frequency (MHz) Measured Value (dBm) Bandwidth Correction Factor (dB) Gain/Loss from Antenna Kitting information (dB) Final Value (dBm) Limit (dBm) Margin (dB) 1559 – 1610 (Wideband) 1586.8 -59.6 0 2.13 -57.47 -40 -17.47 1559 – 1610 (Narrowband) 1600.1 -83.22 -11.55 2.13 -92.64 -50 -42.64 p15b0006_FCC_Part 20_Rev 3.0 Page 59 of 164 Uplink Test Plots 698 - 716 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 60 of 164 776 - 787 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 61 of 164 824 - 849 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 62 of 164 1710 - 1755 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 63 of 164 1710 - 1755 MHz Band (cont) p15b0006_FCC_Part 20_Rev 3.0 Page 64 of 164 1710 - 1755 MHz Band (cont) 1850 - 1915 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 65 of 164 1850 - 1915 MHz Band (cont) p15b0006_FCC_Part 20_Rev 3.0 Page 66 of 164 1850 - 1915 MHz Band (cont) p15b0006_FCC_Part 20_Rev 3.0 Page 67 of 164 Downlink Test Plots 728 - 746 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 68 of 164 746 - 757 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 69 of 164 869 - 894 MHz Band p15b0006_FCC_Part 20_Rev 3.0 Page 70 of 164 1930 - 1995 MHz Band p15b0006_FCC_Part 20_Re…
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p15b0006_FCC_Part 20_Rev 3.0 Page 109 of 164 2110 - 2155 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 110 of 164 CDMA Uplink Test Plots 698 - 716 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 111 of 164 776 - 787 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 112 of 164 824 - 849 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 113 of 164 1710 - 1755 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 114 of 164 1850 - 1915 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 115 of 164 CDMA Downlink Test Plots 728 - 746 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 116 of 164 746 - 757 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 117 of 164 869 - 894 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 118 of 164 1930 - 1995 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 119 of 164 2110 - 2155 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 120 of 164 WCDMA Uplink Test Plots 698 - 716 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 121 of 164 776 - 787 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 122 of 164 824 - 849 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 123 of 164 1710 - 1755 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 124 of 164 1850 - 1915 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 125 of 164 WCDMA Downlink Test Plots 728 - 746 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 126 of 164 746 - 757 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 127 of 164 869 - 894 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 128 of 164 1930 - 1995 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 129 of 164 2110 - 2155 MHz Band Input Output p15b0006_FCC_Part 20_Rev 3.0 Page 130 of 164 Anti-Oscillation Engineer: Mike Graffeo Test Date: 10/28/14 Test Procedure The EUT was connected to a spectrum analyzer set for 0 Hz operation. The EUT uplink and downlink were fed back upon each other through a selectable band pass filter and variable attenuator. The EUT uplink and downlink were tested to ensure that the presence of oscillation was detected and that the EUT output turned off within 300 mS for the Uplink and 1 second for the Downlink and remained off for 1 minute. A EUT with test software was utilized to ensure that the EUT only had a maximum of 5 attempts at restart from oscillation before permanently shutting off. Test Setup Uplink Detection Time Test Results Frequency Band (MHz) Measured Time (mS) Limit (mS) Result 698 - 716 118.30 300 Pass 776 - 787 52.25 300 Pass 824 - 849 55.00 300 Pass 1710 - 1755 22.00 300 Pass 1850 - 1915 156.80 300 Pass Downlink Detection Time Test Results Frequency Band (MHz) Measured Time (mS) Limit (mS) Result 728 - 746 74.25 1000 Pass 746 - 757 22.00 1000 Pass 869 - 894 195.30 1000 Pass 1930 - 1995 22.00 1000 Pass 2110 - 2155 93.50 1000 Pass EUT Spectrum Analyzer RF Coupler Variable Attenuator / Band Filters p15b0006_FCC_Part 20_Rev 3.0 Page 131 of 164 Uplink Restart Time Test Results Frequency Band (MHz) Measured Time (S) Limit (S) Result 698 - 716 device shut down ≥60 Pass 776 - 787 device shut down ≥60 Pass 824 - 849 device shut down ≥60 Pass 1710 - 1755 device shut down ≥60 Pass 1850 - 1915 69.97 ≥60 Pass Downlink Restart Time Test Results Frequency Band (MHz) Measured Time (S) Limit (S) Result 728 - 746 device shut down ≥60 Pass 746 - 757 device shut down ≥60 Pass 869 - 894 device shut down ≥60 Pass 1930 - 1995 69.52 ≥60 Pass 2110 - 2155 70.2 ≥60 Pass Uplink Restart Count Test Results Frequency Band (MHz) Restarts Limit Result 698 - 716 0 ≤5 Pass 776 - 787…
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| # | Rule Parts | Frequency Range | Power Output | Emission |
|---|---|---|---|---|
| 4 | 27 | 2.11 GHz - 2.15 GHz | 16.00 mW | GXW |
Single Band Bi-Directional Amplifier
Equipment Class
B2W - Part 20 Wideband Consumer Booster (CMRS)5G NR Industrial Signal Booster
Equipment Class
B2I - Part 20 Industrial Booster (CMRS)
Quint Band Signal Booster
Equipment Class
B2W - Part 20 Wideband Consumer Booster (CMRS)
Dual Band Signal Booster
Equipment Class
B2W - Part 20 Wideband Consumer Booster (CMRS)
Quint Band Signal Booster
Equipment Class
B2W - Part 20 Wideband Consumer Booster (CMRS)