EN 301 893 v1.3.1 (2005-08) TEST REPORT FOR 802.11a/b/g/n PCIExpress Minicard MODEL NUMBER: AR5BXB72 REPORT NUMBER: 06U10365-7 ISSUE DATE: JULY 1, 2006 Prepared for ATHEROS COMMUNICATIONS, INC. 5480 GREAT AMERICA PARKWAY SANTA CLARA, CA 95054, USA Prepared by COMPLIANCE CERTIFICATION SERVICES 561F MONTEREY ROAD MORGAN HILL, CA 95037, USA TEL: (408) 463-0885 FAX: (408) 463-0888
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EN 301 893 v1.3.1 (2005-08)
TEST REPORT
FOR
802.11a/b/g/n PCIExpress Minicard
MODEL NUMBER: AR5BXB72
REPORT NUMBER: 06U10365-7
ISSUE DATE: JULY 1, 2006
Prepared for ATHEROS COMMUNICATIONS, INC.
5480 GREAT AMERICA PARKWAY SANTA CLARA, CA 95054, USA
COMPLIANCE CERTIFICATION SERVICES DOCUMENT NO: CCSUP4031A 561F MONTEREY ROAD, MORGAN HILL, CA 95037 USA TEL: (408) 463-0885 FAX: (408) 463-0888 This report shall not be reproduced except in full, without the written approval of CCS.
COMPLIANCE CERTIFICATION SERVICES DOCUMENT NO: CCSUP4031A 561F MONTEREY ROAD, MORGAN HILL, CA 95037 USA TEL: (408) 463-0885 FAX: (408) 463-0888 This report shall not be reproduced except in full, without the written approval of CCS.
TABLE OF CONTENTS
1. ATTESTATION OF TEST RESULTS............................................................................................. 5
2. TEST METHODOLOGY .................................................................................................................. 6
3. FACILITIES AND ACCREDITATION .......................................................................................... 6
5. EQUIPMENT UNDER TEST............................................................................................................ 7 5.1. DESCRIPTION OF EUT .............................................................................................................. 7 5.2. DESCRIPTION OF AVAILABLE ANTENNAS ............................................................................. 7 5.3. MAXIMUM OUTPUT POWER WITH SPECIFIED ANTENNAS ................................................ 7 5.4. MINIMUM OUTPUT POWER ..................................................................................................... 7 5.5. OUTPUT POWER WITH REDUCED GAIN ANTENNAS ........................................................... 8 5.6. SOFTWARE AND FIRMWARE .................................................................................................... 9 5.7. WORST-CASE CONFIGURATION AND MODE......................................................................... 9
6. DESCRIPTION OF TEST SETUP ................................................................................................... 9
7. TEST AND MEASUREMENT EQUIPMENT .............................................................................. 11
8. EN 301 893 REQUIREMENTS ....................................................................................................... 12 8.1. NORMAL AND EXTREME CONDITIONS ................................................................................ 12 8.2. CARRIER FREQUENCIES AND CHANNELIZATION.............................................................. 13 8.3. RF OUTPUT POWER, TPC, AND POWER DENSITY .............................................................. 16
8.3.1. DUTY CYCLE ................................................................................................................... 16 8.3.2. RF OUTPUT POWER AND TPC ...................................................................................... 16 8.3.3. POWER DENSITY AT THE HIGHEST POWER LEVEL............................................... 20
8.4. TRANSMITTER UNWANTED EMISSIONS OUTSIDE THE 5 GHz RLAN BANDS.................. 26 8.5. TRANSMITTER UNWANTED EMISSIONS WITHIN THE 5 GHz RLAN BANDS..................... 39 8.6. RECEIVER SPURIOUS EMISSIONS ......................................................................................... 48 8.7. DYNAMIC FREQUENCY SELECTION ..................................................................................... 61
8.7.1. DFS LIMITS AND PROCEDURE..................................................................................... 61 8.7.2. TEST AND MEASUREMENT SYSTEM ......................................................................... 62 8.7.3. DESCRIPTION AND SETUP OF EUT AND SUPPORT EQUIPMENT......................... 65 8.7.4. SYSTEM NOISE, RADAR WAVEFORM, AND WLAN TRAFFIC............................... 67 8.7.5. CHANNEL MOVE TIME AND CHANNEL CLOSING TRANSMISSION TIME RESULTS ........................................................................................................................................... 70
COMPLIANCE CERTIFICATION SERVICES DOCUMENT NO: CCSUP4031A 561F MONTEREY ROAD, MORGAN HILL, CA 95037 USA TEL: (408) 463-0885 FAX: (408) 463-0888 This report shall not be reproduced except in full, without the written approval of CCS.
9. TEST RESULTS AT OUTPUT POWER WITH REDUCED GAIN ANTENNAS.................... 72 9.1. RF OUTPUT POWER................................................................................................................. 72 9.2. TRANSMITTER UNWANTED EMISSIONS WITHIN THE 5 GHz RLAN BANDS..................... 73 9.3. TRANSMITTER UNWANTED EMISSIONS OUTSIDE THE 5 GHz RLAN BANDS.................. 77
COMPLIANCE CERTIFICATION SERVICES DOCUMENT NO: CCSUP4031A 561F MONTEREY ROAD, MORGAN HILL, CA 95037 USA TEL: (408) 463-0885 FAX: (408) 463-0888 This report shall not be reproduced except in full, without the written approval of CCS.
1. ATTESTATION OF TEST RESULTS COMPANY NAME: ATHEROS COMMUNICATIONS, INC.
5480 Great America Parkway Santa Clara, CA 95054, USA
EUT DESCRIPTION: 802.11a/b/g/n PCIExpress Minicard MODEL: AR5BXB72 SERIAL NUMBER: XB72-060-L0416 DATE TESTED: JUNE 15-30, 2006
APPLICABLE STANDARDS
STANDARD TEST RESULTS
EN 301 893 v1.3.1 NO NON-COMPLIANCE NOTED
Compliance Certification Services, Inc. tested the above equipment in accordance with the requirements set forth in the above standards. The test results show that the equipment tested is capable of demonstrating compliance with the requirements as documented in this report. Note: The results documented in this report apply only to the tested sample, under the conditions and modes of operation as described herein. This document may not be altered or revised in any way unless done so by Compliance Certification Services and all revisions are duly noted in the revisions section. Any alteration of this document not carried out by Compliance Certification Services will constitute fraud and shall nullify the document. Approved & Released For CCS By: Tested By:
MIKE HECKROTTE CHIN PANG ENGINEERING MANAGER EMC ENGINEER COMPLIANCE CERTIFICATION SERVICES COMPLIANCE CERTIFICATION SERVICES
COMPLIANCE CERTIFICATION SERVICES DOCUMENT NO: CCSUP4031A 561F MONTEREY ROAD, MORGAN HILL, CA 95037 USA TEL: (408) 463-0885 FAX: (408) 463-0888 This report shall not be reproduced except in full, without the written approval of CCS.
2. TEST METHODOLOGY All tests were performed in accordance with the procedures documented in EN 301 893 v1.3.1 (2005-08), except that DFS tests were performed with deviations as noted below in the section “DFS Limits And Procedure”.
3. FACILITIES AND ACCREDITATION The test sites and measurement facilities used to collect data are located at 561F Monterey Road, Morgan Hill, California, USA. The sites are constructed in conformance with the requirements of ANSI C63.4, ANSI C63.7 and CISPR Publication 22. All receiving equipment conforms to CISPR Publication 16-1, “Radio Interference Measuring Apparatus and Measurement Methods.” CCS is accredited by NVLAP, Laboratory Code 200065-0. The full scope of accreditation can be viewed at http://www.ccsemc.com.
4. CALIBRATION AND UNCERTAINTY
4.1. MEASURING INSTRUMENT CALIBRATION The measuring equipment utilized to perform the tests documented in this report has been calibrated in accordance with the manufacturer's recommendations, and is traceable to recognized national standards.
4.2. MEASUREMENT UNCERTAINTY Where relevant, the following measurement uncertainty levels have been estimated for tests performed on the apparatus:
PARAMETER UNCERTAINTY
RF frequency 2.0 x 10^(-7) RF power conducted 0.71 dB RF power radiated 5.5 dB Spurious emissions, conducted 2.8 dB Spurious emissions, radiated 5.5 dB Humidity 4 % RH Temperature 0.8 deg C Time 0.01 %
Uncertainty figures are valid to confidence level of 95% and follow ETR 028.
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5. EQUIPMENT UNDER TEST
5.1. DESCRIPTION OF EUT The AR5BXB72 is designed for 802.11a/b/g/n applications using the AR541X/51XX chipset with a PCIExpress Minicard interface. It has three receive chains and two transmit chains (2x3 configuration). The 2x3 configuration is implemented with two outside chains (Chain 0 and 2) as Tx/Rx and the middle chain (chain 1) as Rx only. A 2x2 configuration is implemented by depopulating the middle receive chain; in this configuration the transmit chains are identical to the 2x3 configuration. The 2x2 version, when marketed, will have a unique model ID to differentiate it from the fully configured version.
5.2. DESCRIPTION OF AVAILABLE ANTENNAS The 2x3 configuration utilizes a set of three identical PIFA antennas (maximum gain is 6.5dBi in the 5.2 GHz band and 7.5dBi in the 5.5 GHz band).
5.3. MAXIMUM OUTPUT POWER WITH SPECIFIED ANTENNAS The highest average combined conducted output power under normal environmental conditions in each frequency range is as follows:
5.4. MINIMUM OUTPUT POWER The lowest average combined output power level under normal environmental conditions is 8 dBm for all modes.
Frequency Range Output Power Output Power(MHz) (dBm) (mW)
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5.5. OUTPUT POWER WITH REDUCED GAIN ANTENNAS The maximum conducted power level for antenna assemblies with lower gains than specified above is determined by the EIRP limit minus the antenna assembly gain minus correction factors that account for environmental and other limiting factors, subject to a maximum conducted level above which the EUT is unable to comply with the In-band mask and Out-of-band spurious requirements. Preliminary test results demonstrate that there is a maximum power level above which the EUT will not meet In-band mask. Final tests were performed with the Mid Channel set to the maximum power at which the EUT continues to comply with the In-band mask. Preliminary test results demonstrate that the cabinet radiation shows only insignificant changes as a function of power level, over the range of power levels documented in this report. Final conducted spurious emissions were measured with the Mid Channel set to the maximum power level at which the EUT complies with the In-band mask. Results show that the EUT complies with the Out-of-band spurious limit at this power level. The equation describing the relationship between output power and antenna assembly gain in the Lower Band is: Lower Band Maximum Combined Conducted Power at normal environmental conditions = (23 dBm EIRP limit) - Antenna Gain - (2.5 dB due to Power Density limiting factor) No additional correction factor is required for extreme environmental effects since the margin to the EIRP limit is greater than the margin to the Power Density limit. The equation describing the relationship between output power and antenna assembly gain in the Lower Band is: Upper Band Maximum Combined Conducted Power at normal environmental conditions = (23 dBm EIRP limit) - Antenna Gain - (0.4 dB due to extreme environmental effects) No additional correction factor is required for Power Density since the margin to the Power Density limit is greater than the margin to the EIRP limit.
LOWER BAND OUTPUT POWER WITH REDUCED GAIN ANTENNAS Lower Band Combined Average Conducted Power = 20.5 dBm - Antenna Assembly Gain, with a maximum power level of 22.85 dBm.
UPPER BAND OUTPUT POWER WITH REDUCED GAIN ANTENNAS Upper Band Combined Average Conducted Power = 22.6 dBm - Antenna Assembly Gain, with a maximum power level of 22.97 dBm.
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5.6. SOFTWARE AND FIRMWARE The EUT driver software installed in the host support equipment during testing was AR5002, ANWI Diagnostic Kernel Drive. The test utility software used during testing was Art Software Revision 0.3 Build #4 Art 11n
5.7. WORST-CASE CONFIGURATION AND MODE The 2x3 configuration was used for all testing in this report. The 802.11a mode and 802.11n HT20 modes are supported by this device in the 5 GHz bands. The worst-case data rates are determined to be as follows, based on the investigations by measuring the avarage power, peak power and PPSD across all the data rates, bandwidths, modulations and spatial stream modes.
TEST SETUP The EUT is installed in a host laptop computer via a PCIExpress Minicard extender board during the tests. Test software exercised the radio card.
Description Manufacturer Model Serial Number FCC IDLaptop IBM Thindthind R52 L3-GR045 DoCAC Adapter IBM 92P1016 11S92P1016Z1ZAC65C71HZ DoC
PERIPHERAL SUPPORT EQUIPMENT LIST
Cable Port # of Connector Cable Cable RemarksNo. Identical Type Type Length
Ports1 AC 1 230VAC Un-shielded 2m NA2 DC 1 DC Un-shielded 2m NA
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7. TEST AND MEASUREMENT EQUIPMENT The following test and measurement equipment was utilized for the tests documented in this report:
Description Manufacturer Model Serial Number Cal DueTemperature / Humidity Chamber Thermotron SE 600-10-10 8/2/1981 6/10/2007Peak / Average Power Sensor Agilent E9327A US40440755 12/2/07Peak Power Meter Agilent / HP E4416A GB41291160 12/2/07Spectrum Analyzer 3 Hz ~ 44 GHz Agilent / HP E4446A MY43360112 5/3/07Antenna, Bilog 30 MHz ~ 2 Ghz Sunol Sciences JB1 A121003 9/3/06EMI Receiver, 9 kHz ~ 2.9 GHz Agilent / HP 8542E 3942A00286 2/4/07RF Filter Section Agilent / HP 85420E 3705A00256 2/4/07Antenna, Horn 1 ~ 18 GHz EMCO 3115 6717 4/22/07Antenna, Horn 1 ~ 18 GHz EMCO 3115 2238 4/22/07Preamplifier, 1 ~ 26.5 GHz Agilent / HP 8449B 3008A00369 8/17/06Preamplifier, 1300 MHz Agilent / HP 8447D 1937A02062 1/23/07AC Power Source Elgar Corp 1751 1042 CNR
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8. EN 301 893 REQUIREMENTS
8.1. NORMAL AND EXTREME CONDITIONS
LIMITS None; for reporting purposes only.
RESULTS Normal conditions are 25 deg C, 230 VAC. The low temperature condition is 0 deg C. The high temperature condition is 35 deg C. The low voltage condition is 207 VAC. The high voltage condition is 253 VAC.
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8.2. CARRIER FREQUENCIES AND CHANNELIZATION
LIMIT EN 301 893 Clause 4.2.2 The actual carrier center frequency for any given channel given in Clause 1, Table 1 shall be maintained within the range of fc +/- 20 ppm over Normal and Extreme conditions.
TEST PROCEDURE EN 301 893 Clause 5.3.2
RESULTS No non-compliance noted:
NORMAL CONDITION RESULTS
Channel Measured Delta 20 ppm MarginFrequency Frequency Frequency Limit
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LOW TEMPERATURE, LOW VOLTAGE EXTREME CONDITION RESULTS
LOW TEMPERATURE, HIGH VOLTAGE EXTREME CONDITION RESULTS
Channel Measured Delta 20 ppm MarginFrequency Frequency Frequency Limit
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HIGH TEMPERATURE, HIGH VOLTAGE CONDITION RESULTS
HIGH TEMPERATURE, HIGH VOLTAGE CONDITION RESULTS
Channel Measured Delta 20 ppm MarginFrequency Frequency Frequency Limit
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8.3. RF OUTPUT POWER, TPC, AND POWER DENSITY
8.3.1. DUTY CYCLE
LIMITS None; for reporting purposes only.
RESULTS Tx on = 1000 us Tx on + Tx off = 1000us Duty Cycle x = 100 % Duty Cycle Correction Factor = 10 * log (1/x) = 0 dB
8.3.2. RF OUTPUT POWER AND TPC
LIMITS EN 301 893 Clause 4.3.2 RF Output Power at Highest Power Level
Frequency Range Mean EIRP (MHz) (dBm)
5150 to 5350 23 5470 to 5725 30
Note: The EUT does not incorporate a radar detection function, therefore the EIRP limit is 23 dBm in both the lower and upper bands. RF Output Power at Lowest Power Level
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RESULTS No non-compliance noted: Output Power = Test Cable Loss + Duty Cycle Factor + Power Meter Reading EIRP = Output Power + EUT Antenna Gain
LOWER BAND AT HIGHEST POWER
Test Cable Loss (dB) = 20Duty Cycle Factor (dB) = 0EUT Antenna Gain (dBi) = 6.5
5180 MHzNormal -5.67 14.33 20.83 23 -2.17Extreme T low, V low -5.06 14.94 21.44 23 -1.56Extreme T low, V high -5.03 14.97 21.47 23 -1.53Extreme T high V low -5.41 14.59 21.09 23 -1.91Extreme T high, V high -5.37 14.63 21.13 23 -1.87
5320 MHzNormal -5.99 14.01 20.51 23 -2.49Extreme T low, V low -5.19 14.81 21.31 23 -1.69Extreme T low, V high -5.23 14.77 21.27 23 -1.73Extreme T high V low -5.97 14.03 20.53 23 -2.47Extreme T high, V high -6.01 13.99 20.49 23 -2.51
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UPPER BAND AT HIGHEST POWER Note: The EUT does not incorporate a radar detection function, therefore the EIRP limit is 23 dBm.
Test Cable Loss (dB) = 20Duty Cycle Factor (dB) = 0EUT Antenna Gain (dBi) = 7.5
5500 MHzNormal -5.22 14.78 22.28 23 -0.72Extreme T low, V low -4.87 15.13 22.63 23 -0.37Extreme T low, V high -4.83 15.17 22.67 23 -0.33Extreme T high V low -5.32 14.68 22.18 23 -0.82Extreme T high, V high -5.26 14.74 22.24 23 -0.76
5700 MHzNormal -4.81 15.19 22.69 23 -0.31Extreme T low, V low -4.55 15.45 22.95 23 -0.05Extreme T low, V high -4.58 15.42 22.92 23 -0.08Extreme T high V low -4.98 15.02 22.52 23 -0.48Extreme T high, V high -4.97 15.03 22.53 23 -0.47
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LOWER BAND AT LOWEST POWER
UPPER BAND AT LOWEST POWER TPC is not required in the upper band, since the maximum EIRP is less than 27 dBm.
Test Cable Loss (dB) = 20Duty Cycle Factor (dB) = 0EUT Antenna Gain (dBi) = 6.5
5180 MHzNormal -12.27 7.73 14.23 17 -2.77Extreme T low, V low -11.03 8.97 15.47 17 -1.53Extreme T low, V high -11.01 8.99 15.49 17 -1.51Extreme T high V low -12.38 7.62 14.12 17 -2.88Extreme T high, V high -12.31 7.69 14.19 17 -2.81
5320 MHzNormal -12.81 7.19 13.69 17 -3.31Extreme T low, V low -11.16 8.84 15.34 17 -1.66Extreme T low, V high -11.2 8.8 15.30 17 -1.70Extreme T high V low -12.9 7.1 13.60 17 -3.40Extreme T high, V high -12.86 7.14 13.64 17 -3.36
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8.3.3. POWER DENSITY AT THE HIGHEST POWER LEVEL
LIMIT ETSI EN 301 893 Clause 4.3.2.1 Power Density at Highest Power Level
Frequency Range Mean Density Limit (MHz) (dBm/MHz) EIRP
5150 to 5350 10 5470 to 5725 17
TEST PROCEDURE ETSI EN 301 893 Clause 5.3.3.2.1.3 The spectrum analyzer is equipped with a facility to measure power density. The spectrum analyzer facility to measure power density was validated in accordance with CCSUT2802.
RESULTS No non-compliance noted: Power Density (dBm/MHz) EIRP = Measured Power Density (dBm/Hz) + 60 (dB) + Duty Cycle Factor (dB) + EUT Antenna Gain (dBi)
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8.4. TRANSMITTER UNWANTED EMISSIONS OUTSIDE THE 5 GHz RLAN BANDS
LIMIT EN 301 893 Clause 4.4.1.2, Table 4
Frequency Range Maximum Power, ERP Bandwidth (MHz) (dBm) (kHz) 30 to 47 -36 100 47 to 74 -54 100
74 to 87.5 -36 100 87.5 to 118 -54 100 118 to 174 -36 100 174 to 230 -54 100 230 to 470 -36 100 470 to 862 -54 100
862 to 1000 -36 100 Frequency Range Maximum Power, ERP Bandwidth
(GHz) (dBm) (MHz) 1 to 5.15 -30 1
5.35 to 5.47 -30 1 5.725 to 26.5 -30 1
TEST PROTOCOL EN 301 893 Clause 5.3.4.1 The level of unwanted emissions are measured as their power in a specified load (conducted spurious emissions); and their effective radiated power when radiated by the cabinet or structure of the equipment (cabinet radiation).
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CONDUCTED SPURIOUS EMISSIONS, LOWER BAND, HIGH CHANNEL
30 TO 1000 MHz SPURIOUS (Lower Band, High Channel)
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CONDUCTED SPURIOUS EMISSIONS, UPPER BAND, HIGH CHANNEL
30 TO 1000 MHz SPURIOUS (Upper Band, High Channel)
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RADIATED SPURIOUS EMISSIONS BELOW 1 GHz Note: Preliminary tests results demonstrate that emissions only show insignificant variation over the range of power levels documented in this report.
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RADIATED SPURIOUS EMISSIONS BELOW 1 GHz Note: Preliminary tests results demonstrate that emissions only show insignificant variation over the range of power levels documented in this report.
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RADIATED SPURIOUS EMISSIONS, LOWER BAND Note: Preliminary tests results demonstrate that emissions only show insignificant variation over the range of power levels documented in this report.
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RADIATED SPURIOUS EMISSIONS, UPPER BAND Note: Preliminary tests results demonstrate that emissions only show insignificant variation over the range of power levels documented in this report.
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8.5. TRANSMITTER UNWANTED EMISSIONS WITHIN THE 5 GHz RLAN BANDS
LIMIT EN 301 893 Clause 4.4.2.2, Figure 2
TEST PROTOCOL EN 301 893 Clause 5.3.5.1 The level of unwanted emissions are measured as their effective radiated power when radiated by cabinet and antenna.
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IN-BAND SPURIOUS CLOSEUP (Lower Band, High Channel)
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IN-BAND SPURIOUS CLOSEUP (Upper Band, High Channel)
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8.6. RECEIVER SPURIOUS EMISSIONS
LIMIT EN 301 893 Clause 4.5.2, Table 5
Frequency Range Maximum Power Measurement ERP Bandwidth
30 MHz to 1 GHz -57 dBm 100 kHz 1 to 26.5 GHz -47 dBm 1 MHz
TEST PROTOCOL EN 301 893 Clause 5.3.6.1 The level of unwanted emissions are measured as their power in a specified load (conducted spurious emissions); and their effective radiated power when radiated by the cabinet or structure of the equipment (cabinet radiation).
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CONDUCTED SPURIOUS EMISSIONS, UPPER BAND, HIGH CHANNEL
30 TO 1000 MHz SPURIOUS (Upper Band, High Channel)
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RADIATED SPURIOUS EMISSIONS BELOW 1 GHz LOWER BAND
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RADIATED SPURIOUS EMISSIONS BELOW 1 GHz UPPER BAND
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RADIATED SPURIOUS EMISSIONS, ABOVE 1GHZ LOWER BAND
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RADIATED SPURIOUS EMISSIONS, ABOVE 1GHZ UPPER BAND
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8.7. DYNAMIC FREQUENCY SELECTION
8.7.1. DFS LIMITS AND PROCEDURE
APPLICABILITY OF LIMITS EN 301 893 Clause 4.6.1 and Appendix D Table D.2: Interference Threshold Values, Slave
Maximum Transmit Power Value (see note) >= 200 mW (>= 23 dBm) -64 dBm
< 200 mW (< 23 dBm) N/A Note: This is the level at the input of the receiver assuming a 0 dBi receive antenna.
The maximum EIRP of the EUT is less than 200 mW, therefore radar detection is not required. EN 301 893 Clause 4.6.2 The EUT is a Slave without radar detection, therefore only the Channel Shutdown requirements apply.
LIMITS EN 301 893 Clause 4.6.2.3 and Appendix D Table D.1: DFS Requirement Values
Parameter Value Channel Move Time 10 s
Channel Closing Transmission Time 260 ms
TEST PROCEDURE EN 301 893 Clause 5.3.7, with the following deviations: Performance was only evaluated at an active channel frequency of 5300 MHz. The radar test signal level was reduced 14 dB below the required level, hence it provides additional margin to the limit.
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MEASUREMENT SYSTEM FREQUENCY REFERENCE Lock the signal generator and the spectrum analyer to the same reference source as follows: Connect the 10 MHz OUT (SWITCHED) on the spectrum analyer to the 10 MHz IN on the signal generator and set the spectrum analyzer 10 MHz Out to On.
SYSTEM CALIBRATION Adjust the Master Step Attenuator to 40 dB, the Link Step Attenuator to 70 dB, and the Slave Step Attenuator to 70 dB. If required, disconnect the spectrum analyzer, Master Device, and Slave Device from the test system. Terminate the Common port of the Spectrum Analyzer Combiner/Divider, Port 2 of the Master Diversity Combiner/Divider, and Ports 1 and 2 of the Slave Diversity Combiner/Divider. Leave, or connect, the appropriate cable to Port 1 of the Master Diversity Combiner/Divider and connect the free end (Master Device end) of this cable to the spectrum analyzer. Adjust the signal generator and spectrum analyzer to the center frequency of the channel to be measured. Set the signal generator to CW mode. Set the RBW of the spectrum analyzer to 10 kHz and the span to 100 kHz. Adjust the amplitude of the signal generator to yield a measured level of –64 dBm on the spectrum analyzer. Without changing any of the instrument settings, reconnect the spectrum analyer to the Common port of the Spectrum Analyzer Combiner/Divider, then remove the cable from Port 1 of the Master Diversity Combiner/Divider and replace this cable with a termination. Measure the amplitude and calculate the difference from –64 dBm. Adjust the Reference Level Offset of the spectrum analyzer to this difference. Confirm that the signal is displayed at –64 dBm. Readjust the RBW and VBW to 3 MHz, set the span to 10 MHz, and confirm that the signal is still displayed at –64 dBm. This Reference Level Offset setting is used for all tests for which the Master Step Attenuator is set to 20 dB. The spectrum analyzer displays the level of the signal generator as received at the antenna ports of the Master Device. The interference detection threshold may be varied from the calibrated value of –64 dBm and the spectrum analyzer will still indicate the level as received by the Master Device. The Link Step Attenuator and Slave Step Attenuator settings may be changed without affecting the System Calibration. The System Calibration process must be repeated for different settings of the Master Step Attenuator to determine the Reference Level Offset associated with each Master Step Attenuator setting.
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INTERFERENCE DETECTION THRESHOLD ADJUSTMENT Set the signal generator to produce the specified radar waveform, trigger a burst manually and measure the amplitude on the spectrum analyzer. Readjust the amplitude of the signal generator as required so that the peak level of the waveform is at a displayed level equal to the required or desired interference detection threshold.
ADJUSTMENT OF DISPLAYED TRAFFIC LEVEL Establish a link between the Master and Slave, adjusting the Link Step Attenuator as needed to provide an adequate RSS level at the Master and Slave devices. Stream the video test file to generate WLAN traffic. Adjust the Slave Step Attenuator so that the WLAN traffic level from the Slave, as displayed on the spectrum analyzer, is at lower amplitude than the radar detection threshold. Confirm that the displayed traffic is from the Slave Device by changing the setting of the Slave Step Attenuator and verifying that the displayed traffic level changes accordingly. Confirm that the displayed traffic does not include Master Device traffic by changing the setting of the Master Step Attenuator and the Link Step Attenuator and verifying that the displayed traffic level does not change. Reset all Step Attenuators to their previous settings. If the above conditions cannot be met, use a different setting of the Master Step Attenuator, performing a new System Calibration and Interference Detection Threshold Adjsutment as required for the new Master Step Attenuator setting.
TEST AND MEASUREMENT EQUIPMENT The following test and measurement equipment was utilized for the tests documented in this report:
Description Manufacturer Model Serial Number Cal DueSpectrum Analyzer 3 Hz ~ 44 GHz Agilent / HP E4446A US42070220 7/29/2006Vector Signal Generator 250kHz-20GHz Agilent / HP E8267C US43320336 11/2/2007
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8.7.3. DESCRIPTION AND SETUP OF EUT AND SUPPORT EQUIPMENT
OVERVIEW WITH RESPECT TO DFS REQUIREMENTS The EUT is a Slave Device. The highest power level within the 5250-5350 MHz and 5470-5725 MHz bands is less than 23 dBm EIRP therefore a radar detection function is not required. The rated output power of the ancillary Master unit is > 23dBm (EIRP). Therefore the required interference threshold level is –64 dBm. After correction for antenna gain and procedural adjustments, the required conducted threshold at the antenna port is –64 + 4 + 10 = –50 dBm. The calibrated conducted DFS Detection Threshold level is set to –64 dBm. The tested level is lower than the required level hence it provides margin to the limit. WLAN traffic is generated by streaming the video file TestFile.mp2 “6 ½ Magic Hours” from the Master to the Slave in full motion video mode using the media player with the V2.61 Codec package. This provides approximately 50% channel loading.
SUPPORT EQUIPMENT
I/O CABLES
Description Manufacturer Model Serial NumberAC Adapter CUI DSA-0151A 4403Access Point Atheros AP 30 AP 30-50-D7323
Laptop IBM Thinkpad T42 ZZ-27004AC Adapter IBM 08K8204 85910TF
Laptop IBM Thinkpad T42p ZZ-27259AC Adapter IBM 02K6746 28106J
PERIPHERAL SUPPORT EQUIPMENT LIST
Cable Port # of Connector Cable CableNo. Identical Type Type Length
Ports1 AC 1 US 115V Direct Plug 0m2 DC 1 DC Un-shielded 2m3 AC 1 US 115V Un-shielded 1m4 DC 1 DC Un-shielded 2m5 Ethernet 1 RJ45 Un-shielded 2m6 Serial 1 USB to DIN Shielded 2.5m7 AC 1 US 115V Un-shielded 2m8 DC 1 DC Un-shielded 2m
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TEST SETUP
Host Computer
Master Device (Ancillary Support)
AC MAINS
1
4
5
Tx Rx TxRx Only Rx
Slave Device (EUT)
AC Adapter
PC Controller and Server
AC Adapter
AC Adapter
2
3
6
7
8
Antenna Port RF Connections to Test Instrument Setup
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8.7.4. SYSTEM NOISE, RADAR WAVEFORM, AND WLAN TRAFFIC
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8.7.5. CHANNEL MOVE TIME AND CHANNEL CLOSING TRANSMISSION TIME RESULTS
REPORTING NOTES The reference marker is set at the end of last radar pulse. The delta marker is set at the end of the last WLAN transmission following the radar pulse. This delta is the channel move time. The aggregate channel closing transmission time is calculated as follows: Aggregate Transmission Time = (Number of analyzer bins showing transmission) * (dwell time per bin)
RESULTS No non-compliance noted:
CHANNEL MOVE TIME RESULTS
CHANNEL CLOSING TRANSMISSION TIME RESULTS
Radar Channel Move Time LimitType (s) (s)
1 0.236 10
Dwell per Bin (ms) = 2
Radar Number Aggregate Closing Limit MarginType of Bins Transmission Time
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9. TEST RESULTS AT OUTPUT POWER WITH REDUCED GAIN ANTENNAS
9.1. RF OUTPUT POWER
LOWER BAND, MID CHANNEL
UPPER BAND, MID CHANNEL
Test Cable Loss (dB) = 20Duty Cycle Factor (dB) = 0EUT Antenna Gain (dBi) = -1
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9.2. TRANSMITTER UNWANTED EMISSIONS WITHIN THE 5 GHz RLAN BANDS
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9.3. TRANSMITTER UNWANTED EMISSIONS OUTSIDE THE 5 GHz RLAN BANDS
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RF CONDUCTED MEASUREMENT OVER NORMAL AND EXTREME CONDITIONS
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