
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
Consumer signal booster user manual Content What is included ............................................................................ 4 1 HOW IT WORKS ..................................................................................... 4 2 TOOL REQUIRED .................................................................................... 4 3 HOW TO INSTALL YOUR NEW CELLULAR BOOSTER .............................. 5 3.1 Overview ...................................................................................... 5 3.2 Plan the layout of your system .................................................... 7 3.3 Check for Signal Strength ............................................................. 7 3.4 Run coaxial cable.......................................................................... 8 3.5 Install the Donor (Outdoor) antenna ........................................... 9 3.6 Install the Server (Indoor) antenna ............................................. 9 3.7 Install your cellular booster ...................................................... 10 3.8 Power up your cellular booster ................................................ 10 3.9 Check the Cellular Booster Status ............................................. 11 4 UNDERSTAND THE PORTS, MGC DIP SWITCH, LED STATUS ............... 12 4.1 Repeater ports .......................................................................... 12 4.2 Manual gain control (MGC) ...................................................... 12 4.3 LED status .................................................................................. 13 5 UNDERSTAND THE ANTENNA ............................................................ 14 5.1 Donor (Outdoor) antenna ......................................................... 14 5.2 Server (Indoor) antenna ........................................................... 14 5.3 Antenna Kitting Options .............. Error! Bookmark not defined. 6 TROUBLESHOOTING ........................................................................... 15 7 FREQUENTLY ASKED QUESTIONS ....................................................... 19 8 FCC RF Exposure Statement ............................................................... 20 9 Warning .............................................................................................. 21 10 Specification .................................................................................... 21 WHAT IS INCLUDED 1. Booster F15G‐CP 2. Outdoor Yagi 9dbi Antenna & 30' SIG5D Coaxial Cable 3. Indoor Panel 10dbi Antenna & 3' SIG5D Coaxial Cable 4. AC/DC Power Adapter 1 HOW IT WORKS The cellular booster provides reliable two‐way cellular coverage by improving signal strength in homes, buildings, offices, and other areas where cellular reception is weak or unreliable. The system amplifies the signal from the nearest cellular tower and retransmits at a higher power level within a local area. This manual provides simple installation instructions that will have your cellular booster kit running in record time. 2 TOOL REQUIRED Phillips Screwdriver Drill Cellular Phone (to check signal strength) 3 HOW TO INSTALL YOUR NEW CELLULAR BOOSTER 3.1 Overview This guide will help you properly install your cellular booster kit. It is important to read through all of the installation steps before installing your equipment. Thoroughly read through the instructions, visualize where all the equipment will need to be installed and do a soft installation before mounting any equipment. 1 •BOOSTER – select location •Install the booster in an area that is protected from the weather, properly ventilated and is away from excessive heat and moisture. 2 •DONOR ANTENNA (OUTDOOR)‐select location •Mount the signal (outdoor) antenna in an elevated outdoor location so that it points towards the cellular tower and away from where the inside antenna will be located. 3 •OUTDOOR COAXIAL CABLE ‐select location •The outdoor coaxial cable is used to connect the donor (outdoor) antenna to the booster. 4 •INDOOR COAXIAL CABLE‐(if used) •The indoor coaxial cable is used to connect the server (indoor) antenna to the booster. 5 •SERVER ANTENNA (indoor) •The ideal location for the distribution antenna will be the area of your property where you need to improve the signal most. •NOTE:The signal strength will be strongest closest to the antenna. •IMPORTANT: The signal antenna (outdoor)should always be separated from the distribution antenna (indoor)by at least 20 vertical feet including the separation of a thick barrier such as a roof or a wall. Depending on the strength of your outdoor signal, the weaker the signal the less separation distance is required. 7 •LIGHTNING SURGE PROTECTOR‐(SOLD SEPARATELY) •The lightning surge protector connects in between the signal antenna and the booster. •IMPORTANT: Lightning surge protector must be grounded. 8 • COMMISSIONING THE SYSTEM ! 3.2 Plan the layout of your system Before you get started you will need to plan the layout of your system. This involves checking signal strength for signals coming from the cellular tower, as well as antenna, booster and cable placement. 3.3 Check for Signal Strength Select a location on the roof of the building to install the signal antenna, by monitoring your cellular phone’s signal strength (signal bars) to find the strongest signal from your carrier’s cellular tower. Mark that area as the installation location for the Donor (outdoor) IMPORTANT: Confirm that you have at least 20 feet of vertical distance between the marked antenna location and the location where you will place the Server (indoor) antenna. To prevent the system from oscillation (feedback) you want to ensure that there is enough separation between the distribution and signal antenna or that they are shielded from each other to ensure the distribution antenna does not send a signal back into the signal antenna. If you cannot achieve these separations, either choose an alternate location for the donor (outdoo…
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Outside Antenna Kit Options: Uplink Frequency(MHz) 824‐849 1850‐1910 Uplink Output Power(dBm) 20.69 20.03 1. Yagi 11dbi UNI‐367 UNI‐367 with 30' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 8.9 9.4 Final Output Power (dBm EIRP) 29.59 29.7 2. Yagi 11dbi UNI‐367 with 30' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 8.3 8.3 Final Output Power (dBm EIRP) 28.99 28.6 3. Yagi 11dbi UNI‐367 with 50' 400 N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 8 8 Final Output Power (dBm EIRP) 28.69 28.3 4. Yagi 11dbi UNI‐367 with 50' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 7.2 7.2 Final Output Power (dBm EIRP) 27.89 27.5 5. Yagi 11dbi UNI‐367 with 75' 400 N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 7 6 Final Output Power (dBm EIRP) 27.69 26.3 6. Yagi 11dbi UNI‐367 with 100' 400 N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 6.1 4.8 Final Output Power (dBm EIRP) 26.79 25.1 7. Yagi 11dbi UNI‐367 with 75' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 5.8 5.3 Final Output Power (dBm EIRP) 26.49 25.6 8. Yagi 11dbi UNI‐367 with 100' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 5 3 Final Output Power (dBm EIRP) 25.69 23.3 9. Panel 10dbi UNI‐363 with 30' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 5.4 7.8 Final Output Power (dBm EIRP) 26.09 28.1 10. Panel 10dbi UNI‐363 with 30' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 4.8 6.7 Final Output Power (dBm EIRP) 25.49 27 11. Panel 10dbi UNI‐363 with 50' 400 N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 4.5 6.4 Final Output Power (dBm EIRP) 25.19 26.7 12. Panel 10dbi UNI‐363 with 50' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 3.7 5.6 Final Output Power (dBm EIRP) 24.39 25.9 Panel 10dbi UNI‐363 with 75' 400 N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 3.5 4.4 Final Output Power (dBm EIRP) 24.19 24.7 13. Panel 10dbi UNI‐363 with 100' 400 N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 2.6 3.2 Final Output Power (dBm EIRP) 23.29 23.5 14. Panel 10dbi UNI‐363 with 75' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 2.3 3.7 Final Output Power (dBm EIRP) 22.99 24 15. Panel 10dbi UNI‐363 with 100' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 1.5 1.4 Final Output Power (dBm EIRP) 22.19 21.7 16. Yagi 9db UNI‐366 with 30' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 6.9 7.9 Final Output Power (dBm EIRP) 27.59 28.2 17. Yagi 9db UNI‐366 with 30' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 6.3 6.8 Final Output Power (dBm EIRP) 26.99 27.1 18. Yagi 9db UNI‐366 with 50' 400 N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 6 6.5 Final Output Power (dBm EIRP) 26.69 26.8 19. Yagi 9db UNI‐366 with 50' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 5.2 5.7 Final Output Power (dBm EIRP) 25.89 26 20. Yagi 9db UNI‐366 with 75' 400 N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 5 4.5 Final Output Power (dBm EIRP) 25.69 24.8 21. Yagi 9db UNI‐366 with 100' 400 N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 4.1 3.3 Final Output Power (dBm EIRP) 24.79 23.6 22. Yagi 9db UNI‐366 with 75' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 3.8 3.8 Final Output Power (dBm EIRP) 24.49 24.1 23. Yagi 9db UNI‐366 with 100' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 3 1.5 Final Output Power (dBm EIRP) 23.69 21.8 24. Omni 5dbi with 30' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 3.9 3.4 Final Output Power (dBm EIRP) 24.59 23.7 25. Omni 5dbi with 30' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 3.3 2.3 Final Output Power (dBm EIRP) 23.99 22.6 26. Omni 5dbi with 50' 400 N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 3 2 Final Output Power (dBm EIRP) 23.69 22.3 27. Omni 5dbi with 50' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 2.2 1.2 Final Output Power (dBm EIRP) 22.89 21.5 28. Omni 5dbi with 75' 400 N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 2 0 Final Output Power (dBm EIRP) 22.69 20.3 29. Omni 5dbi with 100' 400 N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 1.1 ‐1.2 Final Output Power (dBm EIRP) 21.79 19.1 30. Omni 5dbi with 75' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 0.8 ‐0.7 Final Output Power (dBm EIRP) 21.49 19.6 31. Omni 5dbi with 100' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 0 ‐3 Final Output Power (dBm EIRP) 20.69 17.3 Inside Antenna Kit Options: Uplink Frequency(MHz) 824‐869 1850‐1910 Measured Uplink Gain(dB) 61.1 70.5 MSCL Minimun (dB) 30.2 36.8 6' Separation Distance Path Loss (dB) 36.16 43.21 Polarity Loss (dB) 3 3 Max Antenna Gain with Coax Loss 8.96 9.41 (dB) 1. Whip 5dbi SIG‐373 Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 0 0 Final Gain Less Loss (dB) 5 5 Margin (dB) ‐3.96 ‐4.41 2. Panel 10dbi UNI‐363 with 3' 5D N Male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 0.2 0.3 Final Gain Less Loss (dB) 7.8 9.2 Margin (dB) ‐1.16 ‐0.21 3. Panel 10dbi UNI‐363 with 15' 5D N male…
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MSCL CALCULATION RESULT Model: F20E‐CP (dual band,70db) FCC ID: OWWF15G‐CP The MSCL for all three types of our repeater are the same: Frequency 836.5MHz 1880MHz Path Loss (dB) 36.1 43.2 Polarity Loss (dB) 3 3 Antenna Gain w/ Coax Loss (dB) 1.5 2.5 MSCL (dB) 37.6 43.7
Outside Antenna Kit Options: Uplink Frequency(MHz) 824‐849 1850‐1910 Uplink Output Power(dBm) 20.69 20.03 1. Yagi 11dbi UNI‐367 UNI‐367 with 30' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 8.9 9.4 Final Output Power (dBm EIRP) 29.59 29.7 2. Yagi 11dbi UNI‐367 with 30' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 8.3 8.3 Final Output Power (dBm EIRP) 28.99 28.6 3. Yagi 11dbi UNI‐367 with 50' 400 N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 8 8 Final Output Power (dBm EIRP) 28.69 28.3 4. Yagi 11dbi UNI‐367 with 50' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 7.2 7.2 Final Output Power (dBm EIRP) 27.89 27.5 5. Yagi 11dbi UNI‐367 with 75' 400 N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 7 6 Final Output Power (dBm EIRP) 27.69 26.3 6. Yagi 11dbi UNI‐367 with 100' 400 N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 6.1 4.8 Final Output Power (dBm EIRP) 26.79 25.1 7. Yagi 11dbi UNI‐367 with 75' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 5.8 5.3 Final Output Power (dBm EIRP) 26.49 25.6 8. Yagi 11dbi UNI‐367 with 100' 5D N male Antenna Gain (dBi) 10 11 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 5 3 Final Output Power (dBm EIRP) 25.69 23.3 9. Panel 10dbi UNI‐363 with 30' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 5.4 7.8 Final Output Power (dBm EIRP) 26.09 28.1 10. Panel 10dbi UNI‐363 with 30' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 4.8 6.7 Final Output Power (dBm EIRP) 25.49 27 11. Panel 10dbi UNI‐363 with 50' 400 N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 4.5 6.4 Final Output Power (dBm EIRP) 25.19 26.7 12. Panel 10dbi UNI‐363 with 50' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 3.7 5.6 Final Output Power (dBm EIRP) 24.39 25.9 Panel 10dbi UNI‐363 with 75' 400 N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 3.5 4.4 Final Output Power (dBm EIRP) 24.19 24.7 13. Panel 10dbi UNI‐363 with 100' 400 N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 2.6 3.2 Final Output Power (dBm EIRP) 23.29 23.5 14. Panel 10dbi UNI‐363 with 75' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 2.3 3.7 Final Output Power (dBm EIRP) 22.99 24 15. Panel 10dbi UNI‐363 with 100' 5D N male Antenna Gain (dBi) 6.5 9.4 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 1.5 1.4 Final Output Power (dBm EIRP) 22.19 21.7 16. Yagi 9db UNI‐366 with 30' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 6.9 7.9 Final Output Power (dBm EIRP) 27.59 28.2 17. Yagi 9db UNI‐366 with 30' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 6.3 6.8 Final Output Power (dBm EIRP) 26.99 27.1 18. Yagi 9db UNI‐366 with 50' 400 N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 6 6.5 Final Output Power (dBm EIRP) 26.69 26.8 19. Yagi 9db UNI‐366 with 50' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 5.2 5.7 Final Output Power (dBm EIRP) 25.89 26 20. Yagi 9db UNI‐366 with 75' 400 N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 5 4.5 Final Output Power (dBm EIRP) 25.69 24.8 21. Yagi 9db UNI‐366 with 100' 400 N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 4.1 3.3 Final Output Power (dBm EIRP) 24.79 23.6 22. Yagi 9db UNI‐366 with 75' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 3.8 3.8 Final Output Power (dBm EIRP) 24.49 24.1 23. Yagi 9db UNI‐366 with 100' 5D N male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 3 1.5 Final Output Power (dBm EIRP) 23.69 21.8 24. Omni 5dbi with 30' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 1.1 1.6 Final Gain Less Loss (dB) 3.9 3.4 Final Output Power (dBm EIRP) 24.59 23.7 25. Omni 5dbi with 30' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 1.7 2.7 Final Gain Less Loss (dB) 3.3 2.3 Final Output Power (dBm EIRP) 23.99 22.6 26. Omni 5dbi with 50' 400 N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 2 3 Final Gain Less Loss (dB) 3 2 Final Output Power (dBm EIRP) 23.69 22.3 27. Omni 5dbi with 50' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 2.8 3.8 Final Gain Less Loss (dB) 2.2 1.2 Final Output Power (dBm EIRP) 22.89 21.5 28. Omni 5dbi with 75' 400 N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 3 5 Final Gain Less Loss (dB) 2 0 Final Output Power (dBm EIRP) 22.69 20.3 29. Omni 5dbi with 100' 400 N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 3.9 6.2 Final Gain Less Loss (dB) 1.1 ‐1.2 Final Output Power (dBm EIRP) 21.79 19.1 30. Omni 5dbi with 75' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 4.2 5.7 Final Gain Less Loss (dB) 0.8 ‐0.7 Final Output Power (dBm EIRP) 21.49 19.6 31. Omni 5dbi with 100' 5D N male Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 5 8 Final Gain Less Loss (dB) 0 ‐3 Final Output Power (dBm EIRP) 20.69 17.3 Inside Antenna Kit Options: Uplink Frequency(MHz) 824‐869 1850‐1910 Measured Uplink Gain(dB) 61.1 70.5 MSCL Minimun (dB) 30.2 36.8 6' Separation Distance Path Loss (dB) 36.16 43.21 Polarity Loss (dB) 3 3 Max Antenna Gain with Coax Loss 8.96 9.41 (dB) 1. Whip 5dbi SIG‐373 Antenna Gain (dBi) 5 5 Coax Cable Loss (dB) 0 0 Final Gain Less Loss (dB) 5 5 Margin (dB) ‐3.96 ‐4.41 2. Panel 10dbi UNI‐363 with 3' 5D N Male Antenna Gain (dBi) 8 9.5 Coax Cable Loss (dB) 0.2 0.3 Final Gain Less Loss (dB) 7.8 9.2 Margin (dB) ‐1.16 ‐0.21 3. Panel 10dbi UNI‐363 with 15' 5D N male…
Text truncated - open the document above for the full version.
MSCL CALCULATION RESULT Model: F20E‐CP (dual band,70db) FCC ID: OWWF15G‐CP The MSCL for all three types of our repeater are the same: Frequency 836.5MHz 1880MHz Path Loss (dB) 36.1 43.2 Polarity Loss (dB) 3 3 Antenna Gain w/ Coax Loss (dB) 1.5 2.5 MSCL (dB) 37.6 43.7
MPE Calculations for a fixed consumer booster. model F15G: 800 MHz band: 1. Fixed Outside Antenna: TDL‐0627‐11 2. Inside Antenna: TDW0627‐7 1900 MHz band: 1. Fixed Outside Antenna: TDL‐0627‐11 2. Inside Antenna: TDW0627‐7 Calculate Power Density a. Calculated Power Density = 1000*EIRP (Watts)/(4*π*(Distance from Antenna (cm) 2 )) b. Calculated Power Density (S) = Output Power (P)*Antenna Gain(G)/ (4*π*(Distance from Antenna (r) 2 )) c. S=P*G/(4*π*r 2 ) i. S = Calculated Power Density ii. G = Numeric antenna gain 1. Add the Antenna gain (dBi) + Cable Loss (dB) and convert to a numeric value, this information should come from the antenna kitting information and if multiple antenna kits are provided, the worst case values need to be used. 2. G= POWER(10,(Ant Gain+Cable loss)/10)) iii. P=Conducted Output Power in mw iv. r = Distance from antenna in cm Gain Band Uplink FrequencySig Gen PowerOutput Power Fixed ( use formula) MHz dBmdBmdB 824 - 849 MHz Pulsed CW 833.38 -40.420.6961.1 824 - 849 MHz AWGN 833.38 -43.718.4962.2 1850 - 1910 MHz Pulsed CW 1884.10 -43.620.0363.6 1850 - 1910 MHz AWGN 1884.10 -46.618.1964.8 Gain Band Downlink FrequencySig gen powerOutput Power Fixed ( use formula) MHz dBmdBmdB 869 - 894 MHz Pulsed CW 881.63 -70.2-9.7760.4 869 - 894 MHz AWGN 881.63 -71.8-11.5160.3 1930 - 1990 MHz Pulsed CW 1957.60 -70.6-5.2865.3 1930 - 1990 MHz AWGN 1957.60 -73.2-7.8365.4 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 824 Pout Watts 0.12 Duty Cicuit Percent 100% Ant. Gain dBi 10 Coax Loss dB 1.1 Distance From Antenna In cm 20.3 Results Of Calculations Ant.Gain less Coax Loss dBi 8.9 Distance From Antenna In Inches 8 EIRP (Watts) 0.9099 FCC Power Density Limit (mw/cm2) 0.55 Calculated Power Density (mw/cm2) 0.18 Reference Data Pout dBm 20.69 Antenna Gain (non‐log) 10.0000 Coax Loss(non‐log) 0.78 General FCC Limit (mw/cm2) f/1500 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 869 Pout Watts 0.00 Duty Cicuit Percent 100% Ant. Gain dBi 10 Coax Loss dB 1.2 Distance From Antenna In cm 20.69 Results Of Calculations Ant.Gain less Coax Loss dBi 8.8 Distance From Antenna In Inches 8 EIRP (Watts) 0.01 FCC Power Density Limit (mw/cm2) 0.58 Calculated Power Density (mw/cm2) 0.0001 Reference Data Pout dBm ‐9.77 Antenna Gain (non‐log) 10 Coax Loss(non‐log) 0.76 General FCC Limit (mw/cm2) f/1500 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 1850 Pout Watts 0.10 Duty Cicuit Percent 100% Ant. Gain dBi 11 Coax Loss dB 1.6 Distance From Antenna In cm 20.69 Results Of Calculations Ant.Gain less Coax Loss dBi 9.4 Distance From Antenna In Inches 8 EIRP (Watts) 0.01 FCC Power Density Limit (mw/cm2) 1.00 Calculated Power Density (mw/cm2) 0.16 Reference Data Pout dBm 20.03 Antenna Gain (non‐log) 12.58925412 Coax Loss(non‐log) 0.69 General FCC Limit (mw/cm2) 1 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 1930 Pout Watts 0.000296483 Duty Cicuit Percent 100% Ant. Gain dBi 11 Coax Loss dB 1.8 Distance From Antenna In cm 20.69 Results Of Calculations Ant.Gain less Coax Loss dBi 9.2 Distance From Antenna In Inches 8 EIRP (Watts) 0.008317638 FCC Power Density Limit (mw/cm2) 1.00 Calculated Power Density (mw/cm2) 0.000458658 Reference Data Pout dBm ‐5.28 Antenna Gain (non‐log) 12.58925412 Coax Loss(non‐log) 0.66 General FCC Limit (mw/cm2) 1
MPE Calculations for a fixed consumer booster. model F15G: 800 MHz band: 1. Fixed Outside Antenna: TDL‐0627‐11 2. Inside Antenna: TDW0627‐7 1900 MHz band: 1. Fixed Outside Antenna: TDL‐0627‐11 2. Inside Antenna: TDW0627‐7 Calculate Power Density a. Calculated Power Density = 1000*EIRP (Watts)/(4*π*(Distance from Antenna (cm) 2 )) b. Calculated Power Density (S) = Output Power (P)*Antenna Gain(G)/ (4*π*(Distance from Antenna (r) 2 )) c. S=P*G/(4*π*r 2 ) i. S = Calculated Power Density ii. G = Numeric antenna gain 1. Add the Antenna gain (dBi) + Cable Loss (dB) and convert to a numeric value, this information should come from the antenna kitting information and if multiple antenna kits are provided, the worst case values need to be used. 2. G= POWER(10,(Ant Gain+Cable loss)/10)) iii. P=Conducted Output Power in mw iv. r = Distance from antenna in cm Gain Band Uplink FrequencySig Gen PowerOutput Power Fixed ( use formula) MHz dBmdBmdB 824 - 849 MHz Pulsed CW 833.38 -40.420.6961.1 824 - 849 MHz AWGN 833.38 -43.718.4962.2 1850 - 1910 MHz Pulsed CW 1884.10 -43.620.0363.6 1850 - 1910 MHz AWGN 1884.10 -46.618.1964.8 Gain Band Downlink FrequencySig gen powerOutput Power Fixed ( use formula) MHz dBmdBmdB 869 - 894 MHz Pulsed CW 881.63 -70.2-9.7760.4 869 - 894 MHz AWGN 881.63 -71.8-11.5160.3 1930 - 1990 MHz Pulsed CW 1957.60 -70.6-5.2865.3 1930 - 1990 MHz AWGN 1957.60 -73.2-7.8365.4 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 824 Pout Watts 0.12 Duty Cicuit Percent 100% Ant. Gain dBi 10 Coax Loss dB 1.1 Distance From Antenna In cm 20.3 Results Of Calculations Ant.Gain less Coax Loss dBi 8.9 Distance From Antenna In Inches 8 EIRP (Watts) 0.9099 FCC Power Density Limit (mw/cm2) 0.55 Calculated Power Density (mw/cm2) 0.18 Reference Data Pout dBm 20.69 Antenna Gain (non‐log) 10.0000 Coax Loss(non‐log) 0.78 General FCC Limit (mw/cm2) f/1500 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 869 Pout Watts 0.00 Duty Cicuit Percent 100% Ant. Gain dBi 10 Coax Loss dB 1.2 Distance From Antenna In cm 20.69 Results Of Calculations Ant.Gain less Coax Loss dBi 8.8 Distance From Antenna In Inches 8 EIRP (Watts) 0.01 FCC Power Density Limit (mw/cm2) 0.58 Calculated Power Density (mw/cm2) 0.0001 Reference Data Pout dBm ‐9.77 Antenna Gain (non‐log) 10 Coax Loss(non‐log) 0.76 General FCC Limit (mw/cm2) f/1500 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 1850 Pout Watts 0.10 Duty Cicuit Percent 100% Ant. Gain dBi 11 Coax Loss dB 1.6 Distance From Antenna In cm 20.69 Results Of Calculations Ant.Gain less Coax Loss dBi 9.4 Distance From Antenna In Inches 8 EIRP (Watts) 0.01 FCC Power Density Limit (mw/cm2) 1.00 Calculated Power Density (mw/cm2) 0.16 Reference Data Pout dBm 20.03 Antenna Gain (non‐log) 12.58925412 Coax Loss(non‐log) 0.69 General FCC Limit (mw/cm2) 1 LPDA Antenna TDL‐0627‐11 & U5D NM‐NM 9M Input Data Frequency MHz 1930 Pout Watts 0.000296483 Duty Cicuit Percent 100% Ant. Gain dBi 11 Coax Loss dB 1.8 Distance From Antenna In cm 20.69 Results Of Calculations Ant.Gain less Coax Loss dBi 9.2 Distance From Antenna In Inches 8 EIRP (Watts) 0.008317638 FCC Power Density Limit (mw/cm2) 1.00 Calculated Power Density (mw/cm2) 0.000458658 Reference Data Pout dBm ‐5.28 Antenna Gain (non‐log) 12.58925412 Coax Loss(non‐log) 0.66 General FCC Limit (mw/cm2) 1
p1470015_FCC_Part 20_Rev 1.0 Page 1 of 74 Test Report Prepared for: Shenzhen Huaptec Co., Ltd. Model: F15G-CP Description: Dual Band, 65db Serial Number: F15G-CP140805002 FCC ID: OWWF15G-CP To FCC Part 20 Date of Issue: September 18, 2014 On the behalf of the applicant: Shenzhen Huaptec Co., Ltd. 5 th FL, E BLDG, Sogood Science Park Hangkong Road Xixiang, Bao'an Shenzhen 518102 China To the attention of: Yanwei Wang, General Manager Ph: 86-755-61196866 Email: [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: p1470015 Mike Graffeo 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. p1470015_FCC_Part 20_Rev 1.0 Page 2 of 74 Test Report Revision History Revision Date Revised By Reason for Revision 1.0 September 5, 2014 Mike Graffeo Original Document p1470015_FCC_Part 20_Rev 1.0 Page 3 of 74 Table of Contents Description Page Standard Test Conditions and Engineering Practices 5 Test Result Summary 6 Authorized Frequency Band 7 Maximum Power and Gain 10 Intermodulation 12 Out-of-Band Emissions 15 Conducted Spurious Emissions 29 Noise Limits 38 Uplink Inactivity 45 Variable Gain 47 Occupied Bandwidth 50 Oscillation Detection 63 Radiated Spurious 71 Test Equipment Utilized 74 p1470015_FCC_Part 20_Rev 1.0 Page 4 of 74 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 p1470015_FCC_Part 20_Rev 1.0 Page 5 of 74 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 – 28.7 37.9 – 51.3 963.9 – 971.3 Measurement results, unless otherwise noted, are worst-case measurements. EUT Description Model: F15G-CP Description: Dual Band, 65db Serial Number: F15G-CP140805002 Additional Information: The EUT is an In-Building 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 824 - 849 1850 - 1910 Downlink 869 - 894 1930 - 1990 Modulation Type GSM, CDMA, EDGE, HSPA. EVDO, LTE 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. p1470015_FCC_Part 20_Rev 1.0 Page 6 of 74 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) 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) 20.21(e)(8)(i)(C)(2)(i) (Fixed) Variable Gain Pass 2.1049 Occupied Bandwidth Pass 20.21(e)(8)(ii)(…
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| # | Rule Parts | Frequency Range | Power Output | Emission |
|---|---|---|---|---|
| 16 | 24E | 1.93 GHz - 1.99 GHz | 66.00 mW | GXW |

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