LG Electronics Inc.

Notebook Computer

F240353

LG

Test Report DFS Rev01-240924

LG Electronics USA, Inc. NT-16Z90TS BEJNT-16Z90TS BEJNT16Z90TS nt 16z90ts

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Audix Technology Corp. No. 491, Zhongfu Rd., Linkou Dist., New Taipei City244,Taiwan

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FCC 15.407 NII DFS Test Report
for
LG Electronics Inc.
222, LG-ro, Jinwi-myeon Pyeongtaek-Si, Gyeonggi-Do, 17709 Republic of Korea

Product Name Model Name
Brand FCC ID

: Notebook Computer : (1)16Z90TS (2)16ZD90TS
(3)16ZG90TS (4)16ZB90TS : LG : BEJNT-16Z90TS

TESTING NVLAP LAB CODE 200077-0
The test report is based on a single evaluation of one sample of the above-mentioned products. It does not imply an assessment of the whole production and does not permit the use of the test lab logo. The report must not be used by the client to claim product certification, approval, or endorsement by NVLAP, NIST, or any agency of the U.S. Government.

File Number: C1M2407254

Report Number: EM-F240353

This test report may be reproduced in full only. The document may only be updated by Audix Technology

Corp. personnel. Any changes will be noted in the Document History section of the report.

Audix Technology Corp. No. 491, Zhongfu Rd., Linkou Dist., New Taipei City244,Taiwan

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TABLE OF CONTENTS

Description

Page

TEST REPORT................................................................................................................................... 4
1. REVISION RECORD OF TEST REPORT ............................................................................ 4
2. SUMMARY OF TEST RESULTS ........................................................................................... 5
3. GENERAL INFORMATION ................................................................................................... 6
3.1. Description of Application .............................................................................................................. 6 3.2. Description of EUT ......................................................................................................................... 7 3.3. Reference Test Guidance................................................................................................................. 8 3.4. Antenna Information ....................................................................................................................... 8 3.5. EUT Specifications Assessed in Current Report ............................................................................. 9 3.6. Description of Key Components ................................................................................................... 10 3.7. Test Configuration......................................................................................................................... 12 3.8. Output Power Setting .................................................................................................................... 12 3.9. Description of Test Facility ........................................................................................................... 12 3.10. Measurement Uncertainty ............................................................................................................. 12
4. MEASUREMENT EQUIPMENTLIST................................................................................. 13
5. WORKING MODES AND REQUIREMENT TEST ITEM ............................................... 14
5.1. Applicability of DFS Requirements Prior to Use of a Channel..................................................... 14 5.2. Applicability of DFS Requirements during Normal Operation..................................................... 14
6. DFS DETECTION THRESHOLOS AND RADAR TEST WAVEFORMS ...................... 15
6.1. Interference Threshold Value, Master or Client Incorporating In-Service Monitoring................. 15 6.2. Radar Test Waveform Minimum Step........................................................................................... 15 6.3. Short Pulse Radar Test Waveforms............................................................................................... 16 6.4. Long Pulse Radar Test Waveforms ............................................................................................... 17 6.5. Frequency Hopping Pulse Radar Test Waveforms........................................................................ 19 6.6. Conducted Calibration Setup......................................................................................................... 21 6.7. Radar Waveform Calibration Procedure ....................................................................................... 21 6.8. Calibration Deviation .................................................................................................................... 21 6.9. Radar Waveform Calibration Result ............................................................................................. 22
7. TEST SETUP AND TEST RESULT ..................................................................................... 23
7.1. Test Setup ...................................................................................................................................... 23 7.2. Channel Move Time, Channel Closing Transmission Time, Non-Occupancy Period, Non-Associated Client Beacon Measurement ......................................................................................... 25

APPENDIX A TEST PHOTOGRAPHS

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Report Number: EM-F240353

This test report may be reproduced in full only. The document may only be updated by Audix Technology

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Audix Technology Corp. No. 491, Zhongfu Rd., Linkou Dist., New Taipei City244,Taiwan

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TEST REPORT

Applicant Manufacturer Factory EUT Description
(1) Product (2) Model (3) Brand (4) Power Supply

: LG Electronics Inc. : LG Electronics Inc. : LG Electronics Nanjing New Technology Co., Ltd.
: Notebook Computer : (1)16Z90TS (2)16ZD90TS (3)16ZG90TS (4)16ZB90TS : LG : DC 20V, 3.25A

Applicable Standards:
47 CFR FCC Part 15 Subpart E
Audix Technology Corp. tested the equipment mentioned in accordance with the requirements set forth in the above standards. Test results indicate that the equipment tested is capable of demonstrating compliance with the requirements as documented within this report. Audix Technology Corp. does not assume responsibility for any conclusions and generalizations drawn from the test results with regard to other specimens and samples.

Date of Report:

2024. 08. 28

__________________________

Reviewed by: __________________________ (Sabrina Wang/Administrator)

Approved by: __________________________ (Johnny Hsueh/Section Manager)

File Number: C1M2407254

Report Number: EM-F240353

This test report may be reproduced in full only. The document may only be updated by Audix Technology

Corp. personnel. Any changes will be noted in the Document History section of the report.

Audix Technology Corp. No. 491, Zhongfu Rd., Linkou Dist., New Taipei City244,Taiwan

1. REVISION RECORD OF TEST REPORT

Edition No Issued Date

Revision Summary

0

2024. 08. 28 Original Report

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Report Number EM-F240353

File Number: C1M2407254

Report Number: EM-F240353

This test report may be reproduced in full only. The document may only be updated by Audix Technology

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Audix Technology Corp. No. 491, Zhongfu Rd., Linkou Dist., New Taipei City244,Taiwan

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2. SUMMARY OF TEST RESULTS

Description

Results

Channel Availability Check Time

N/A

Channel Move Time

PASS

Non-Occupancy Period

PASS

Non-Associated Client Beacon

PASS

Channel Closing Transmission Time

PASS

U-NII Detection Bandwidth

N/A

N/A is an abbreviation for Not Applicable, sine the product is client without radar detection function
Note: The uncertainties value is not used in determining the result.

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Audix Technology Corp. No. 491, Zhongfu Rd., Linkou Dist., New Taipei City244,Taiwan

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3. GENERAL INFORMATION

3.1. Description of Application

Applicant Manufacturer Factory Product Model Brand

LG Electronics Inc. 222, LG-ro, Jinwi-myeon Pyeongtaek-Si, Gyeonggi-Do, 17709 Republic of Korea LG Electronics Inc. 222, LG-ro, Jinwi-myeon Pyeongtaek-Si, Gyeonggi-Do, 17709 Republic of Korea LG Electronics Nanjing New Technology Co., Ltd. No.346,Yaoxin Road, Economic & Technical Development Zone, Nanjing, China.
Notebook Computer
(1)16Z90TS (2)16ZD90TS (3)16ZG90TS (4)16ZB90TS The difference between all models is different in the sales customers and color difference.
LG

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3.2. Description of EUT

Test Model Serial Number Power Rating

16Z90TS N/A DC 20V, 3.25A

Software Version RF Features
Transmit Type
Device Category

XY (X, Y can be 0 to 9 for different SW version not influence RF parameter)

WLAN:802.11 a/b/g/n/ac/ax/be Bluetooth: BT and BLE (BT5.4)
2.4 GHz Bands 802.11b 802.11g 802.11n-HT20/40 802.11ax-HE20/40 802.11be-EHT20/40 BT/BLE

1T1R 1T1R 2T2R 2T2R 2T2R 1T1R

U-NII Bands 802.11a 802.11n-HT20/40 802.11ac-VHT20/40/80/160 802.11ax-HE20/40/80/160 802.11be-EHT20/40/80/160

1T1R 2T2R 2T2R 2T2R 2T2R

WLAN 6E Bands

802.11ax-HE20/40/80/160

2T2R

802.11be-EHT20/40/80/160/320

2T2R

The MIMO is uncorrelated and supported SDM (Spatial Division Multiplexing) mode only. This radio device doesn't support beamforming and Cyclic Delay Diversity (CDD).

Outdoor Access Point

Fixed point-to-point Access Point

Indoor Access Point

Mobile and Portable client device

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Sample Status Test Sample

Trial sample
Sample No. 01

Test Item DFS

Firmware N/A

Date of Receipt

2024. 06. 26

Date of Test

2024. 08. 17

Interface Ports of EUT Accessories Supplied

 One HDMI Port  Two USB Type C Ports  One Earphone Port  Two USB 3.0 Ports
 AC Adapter  USB C Cable  LAN Gender

Note: Pursuant ISO 17025:2017 section 7.8.2, Audix Technology Corp. does not assume responsibility for all EUT's information including RF features, transmit type, antenna information...etc are provided by customer.

3.3. Reference Test Guidance
KDB 905462 D02 U-NII DFS Compliance Procedures New Rules v02 KDB 905462 D03 U-NII Clients Without Radar Detection New Rules v01r02

3.4. Antenna Information

No. Antenna Part Number Manufacturer

Antenna Type

Frequency (MHz)

2400-2500

1. WA-P-LALB-04-011

INPAQ

Mono-Pole 5150-5895

5925-7125
According to KDB 662911 D01 d) ii), transmit signals are completely uncorrelated, then Directional gain = 10 log[(10G1 /10 + 10G2 /10 + ... + 10GN /10)/NANT] dBi Note 1. 2400-2500MHz Directional gain = 10 log[(102.0/10 +102.1/10)/2]= 2.05dBi Note 2. 5150-5895MHz Directional gain = 10 log[(100.1/10 +102.1/10)/2]= 1.21dBi Note 3. 5925-7125MHz Directional gain = 10 log[(103.6/10 +103.3/10)/2]= 3.45dBi

Max Gain(dBi)

Aux Main

2.0

2.1

0.1

2.1

3.6

3.3

Directional Gain 2.05 1.21 3.45

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3.5. EUT Specifications Assessed in Current Report

Mode

U-NII Band

Fundamental Range (MHz)

Channel Number

2A 802.11a
2C

5260-5320

4

5500-5720

12

802.11n-HT20 802.11ac-VHT20

2A

802.11ax-HE20

802.11be-EHT20

2C

5260-5320

4

5500-5720

12

802.11n-HT40 802.11ac-VHT40

2A

802.11ax-HE40

802.11be-EHT40

2C

5270-5310

2

5510-5710

6

802.11ac-VHT80

2A

802.11ax-HE80

802.11be-EHT80

2C

5290

1

5530-5690

3

802.11ac-VHT160

2A

802.11ax-HE160

802.11be-EHT160

2C

5250

1

5570

1

Remark: 1. U-NII Band 2A and 2C (DFS Function, Slave/no In service monitor, no Ad-Hoc mode) 2. 802.11ax/be channel puncturing is not implemented.

Mode

Modulation

Data Rate (Mbps)

802.11a 802.11n-HT20 802.11n-HT40

OFDM (BPSK/QPSK/16QAM/64QAM)

Up to 54 Up to 144.4 Up to 300

802.11ac-VHT20

Up to 173.3

802.11ac-VHT40 802.11ac-VHT80

OFDM (BPSK/QPSK/16QAM/64QAM/256QAM)

Up to 400 Up to 866.7

802.11ac-VHT160

Up to 1733.3

802.11ax-HE20

Up to 287

802.11ax-HE40 802.11ax-HE80

OFDMA (BPSK/ QPSK/ 16QAM/ 64QAM/ 256QAM/ 1024QAM)

Up to 574 Up to 1201

802.11ax-HE160

Up to 2402

802.11be-EHT20

Up to 344

802.11be-EHT40

OFDMA

Up to 688

802.11be-EHT80 (BPSK/ QPSK/ 16QAM/ 64QAM/ 256QAM/ 1024QAM/ 4096QAM) Up to 1441

802.11be-EHT160

Up to 2882

File Number: C1M2407254

Report Number: EM-F240353

This test report may be reproduced in full only. The document may only be updated by Audix Technology

Corp. personnel. Any changes will be noted in the Document History section of the report.

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3.6. Description of Key Components

3.6.1. For the All Component Lists

Item

Supplier

Model / Type

Character

System Main Board SUB Board

Microsoft LG LG Intel

Win10 Home / Pro Win11 Home / Pro 16Z90TS MAIN B/D PCB
16Z90TS/TP SUB B/D Ultra 9 288V (RAM 32GB)

---
---
Manufacturer: #1 Hannstar Board Tech (Jiang Yin) Corp.,Ltd. #2 Elec&Eltek Company (MCO) Limited. Manufacturer: #1 HannstarBoardTech(Jiang Yin)Corp.,Ltd. #2 JiangSuHuaShen Electronic co.,ltd (HXF) #3 Elec&Eltek Company (MCO) Limited.
3.3GHz(RAM 32GBLPDDR5x on CPU RAM)

CPU

Intel

(Socket: BGA2833) Intel

Ultra 7 258V (RAM 32GB) 2.2GHz(RAM 32GB LPDDR5x on CPU RAM) Ultra 7 256V (RAM 16GB) 2.2GHz(RAM 16GB LPDDR5x on CPU RAM)

Intel

Ultra 5 226V (RAM 16GB) 2.1GHz(RAM 16GB LPDDR5x on CPU RAM)

16" LCD Panel

LG Display

LP160WQ2

Resolution: 2560 x 1600, 144Hz

SAMSUNG

---

Storage (SSD)

SK hynix

---

1TB/512GB/256GB 1TB/512GB/256GB

Battery Pack

LG

WLAN Combo Card Intel

WLAN Combo Antenna LG (INPAQ)

LB3122MM BE201D2W
WA-P-LBLB-04-111 22L2P

77Wh, DC 15.52V, 4963mAh
WLAN and BT, 2x2 PCle M.2 1216-soldered down module FCC ID: PD9BE201D2 IC: 1000M-BE201D2 PCB, Mono-pole Type Main: Black, Aux: Gray
---

Keyboard

TIC

22L2Q

---

22L2R

---

Touch Pad

LITE-ON

SP8B00B31(SG-A0660-00A) ---

Web Camera

Luxvisions

ABG213N3A

---

SUZHOU MEC ELECTRONICS

80-5946-111 80-5946-101

(White) 10/100 Megabit Ethernet (Black) 10/100 Megabit Ethernet

LAN Gender (Type C to LAN)

GD-08MF-36-WH-LP10 ARIN TECH CO. LTD
GD-08MF-36-BK-LP11

HUIZHOU DEHONG 370-50713

TECHNOLOGY

CO.,LTD.

370-50714

Type C to LAN: Shielded, Undetached

(White) 10/100 Megabit Ethernet (Black) 10/100 Megabit Ethernet (White) 10/100 Megabit Ethernet (Black) 10/100 Megabit Ethernet

GD-08MF-50-WH-LP12 ARIN TECH CO. LTD
GD-08MF-50-BK-LP13

(White) 10/100/1000 Megabit Ethernet (Black) 10/100/1000 Megabit Ethernet

Type C to LAN: Shielded, Undetached, 0.12m

AC Adapter

LG (PI ELECTRONICS)

LP65WFC20P-NJ

#1 Type C Cable (3A) #2 Type C Cable (5A)

(B = Black),(W = White) I/P: AC 100-240V, 1.6A, 50-60Hz O/P:DC 5V,3A(15W) or DC 9V, 3A(27W)or DC 15V,3A (45W) or DC 20V,3.25A (65W) US Type, Wall-Mounted: (2C)

Remark: For more detailed features description, please refer to the manufacturer's specifications or the user manual.

File Number: C1M2407254

Report Number: EM-F240353

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3.6.2. The EUT collocates with following worst components, which are used to establish a basic configuration of system during test:

SKU (Mode)

1

Main Board

LG, 16Z90TS MAIN B/D PCB

V

SUB Board

LG, 16Z90TS/TP SUB B/D

V

CPU

Intel, Ultra 9 288V (RAM 32GB)

V

16" LCD Panel

LG Display, LP160WQ2

V

Storage (SSD)

SK hynix, 1TB+256GB

V

Battery Pack

LG, LB3122MM, 77Wh

V

Keyboard

TIC, 22L2P

V

Touch Pad

LITE-ON, SP8B00B31(SG-A0660-00A)

V

Web Camera

Luxvisions, ABG213N3A

V

WLAN Combo Card

Intel, BE201D2W

V

WLAN Combo Antenna

LG (INPAQ), WA-P-LBLB-04-111

V

Type C #1

AC Adapter

LG (PI ELECTRONICS), LP65WFC20P-NJ

V

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3.7. Test Configuration
Item Channel Move Time& Channel Closing Transmission Time Non-Occupancy Period & Non-associated Test

3.8. Output Power Setting

Item AP Server

Manufacturer ASUS

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Bandwidth 160MHz 160MHz

Test Channel 50 50

Model RT-BE96U

Remark FCC ID: MSQ-RTBE6G00

3.9. Description of Test Facility

Name of Test Firm Accreditations Test Facilities

Audix Technology Corporation / EMC Department No. 491, Zhongfu Rd., Linkou Dist., New Taipei City 244, Taiwan
Tel: +886-2-26092133 Fax: +886-2-26099303 Website : www.audixtech.com Contact e-mail: [email protected]
The laboratory is accredited by following organizations under ISO/IEC 17025:2017
(1) NVLAP(USA) NVLAP Lab Code 200077-0
(2) TAF(Taiwan) No. 1724
FCC OET Designation Number under APEC MRA by NCC is : TW1724
(1) RF Test Room

3.10.Measurement Uncertainty
Test Item DFS Measurement Threshold

Uncertainty 0.5ms 0.33dB

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4. MEASUREMENT EQUIPMENTLIST

Item

Type

1. Vector Signal Generation

2. Spectrum Analyzer

3. Atteuator (10dB) X2

4. Atteuator (30dB) X2

5. Digital Thermo-Hygro Meter

Manufacturer R&S R&S
Worken Worken
iMax

Model No. SMU200A
FSV30 WK0602-10 WK0602-30
HTC-1

Serial No.

Cal. Date Cal. Interval

104893

2024.05.31 1 Year

101181

2024.07.13 1 Year

0120A02208001S N.C.R

N.C.R

0120A02208002S N.C.R

N.C.R

RF-03

2024.04.11 1 Year

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5. WORKING MODES AND REQUIREMENT TEST ITEM

5.1. Applicability of DFS Requirements Prior to Use of a Channel

Requirement
Non-Occupancy Period DFS Detection Threshold Channel Availability Check Time U-NII Detection Bandwidth

Master
Yes Yes Yes Yes

Operational Mode

Client Without Radar Client With

Detection

Radar Detection

Not required

Yes

Not required

Yes

Not required

Not required

Not required

Yes

5.2. Applicability of DFS Requirements during Normal Operation

Requirement
DFS Detection Threshold Channel Closing Transmission Time Channel Move Time U-NII Detection Bandwidth

Operational Mode

Master Device or Client with Radar Detection

Client Without Radar Detection

Yes

Not required

Yes

Yes

Yes

Yes

Yes

Not required

Additional requirements for devices with multiple bandwidth modes

Operational Mode

Master Device or Client with Radar Detection

Client Without Radar Detection

U-NII Detection Bandwidth and Statistical Performance Check

All BW modes must be tested

Not required

Channel Move Time and Channel Closing Transmission Time

Test using widest BW mode available

Test using the widest BW mode available for the link

All other tests

Any single BW mode

Not required

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6. DFS DETECTION THRESHOLOS AND RADAR TEST

WAVEFORMS

6.1. Interference Threshold Value, Master or Client Incorporating

In-Service Monitoring

Maximum Transmit Power

Value (See Notes 1 and 2)

 200 milliwatt

-64dBm

< 200 milliwatt

-62dBm

Note 1: This is the level at the input of the receiver assuming a 0 dBi receive antenna.
Note 2: Throughout these test procedures an additional 1 dB has been added to the amplitude of the test transmission waveforms to account for variations in measurement equipment. This will ensure that the test signal is at or above the detection threshold level to trigger a DFS response.

The radar Detection Threshold, lowest antenna gain is the parameter of interference radar DFS detection threshold.

6.2. Radar Test Waveform Minimum Step
Step intervals of 0.1 microsecond for Pulse Width, 1 microsecond for PRI, 1MHz for chirp width and 1 for the number of pulses will be utilized for the random determination of specific test waveforms.

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6.3. Short Pulse Radar Test Waveforms

Radar Pulse Width

Type

(µ sec)

PRI (µ sec)

Number of Pulse

Minimum Percentage of
Successful Detection

Minimum number of
Trials

0

1

1428

18

See Note 1 See Note 1

15 unique PRI

1A

1

in KDB 905462

D02 Table 5a

60%

15

15 unique PRI

within

1B

1

518-3066,

Excluding 1A

PRI

60%

15

2

1-5

150-230

23-29

60%

30

3

6-10

200-500

16-18

60%

30

4

11-20

200-500

12-16

60%

30

Aggregate (Radar Types 1-4)

80%

120

Note 1: Short Pulse Radar Type 0 should be used for the detection bandwidth test, channel move time, and channel closing time tests.

A minimum of 30 unique waveforms are required for each of the short pulse radar types 2 through 4. For short pulse radar type 1, the same waveform is used a minimum of 30 times. If more than 30 waveforms are used for short pulse radar types 2 through 4, then each additional waveform must also be unique and not repeated from the previous waveforms. The aggregate is the average of the percentage of successful detections of short pulse radar types 1-4.

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Used R&S SMU200A (Vector SG with two ARB) B11: Base-band Generator with ARB (16M samples) and Digital Modulation B13: Base-band Main Module B106: frequency range (100 kHz to 6 GHz) For selecting the waveform parameters from within the bounds of the signal type, system was random selection using uniform distribution.

6.4. Long Pulse Radar Test Waveforms

Radar Type

Pulse Width (µ sec)

Chirp Width (MHz)

PRI (µ sec)

Number of Pulse Per Burst

Number of Bursts

Minimum Percentage of
Successful Detection

Minimum of Trials

5

50-100

5-20 1000-2000 1-3

8-20

80%

30

The parameters for this waveform are randomly chosen. Thirty unique waveforms are required for the Long Pulse radar test signal. If more 30 waveforms are used for the Long Pulse radar test signal, then each additional waveform must also be unique and not repeated from the previous waveforms. Each waveform is defined as following:
(1) The transmission period for the Long Pulse Radar test signal is 12 seconds.
(2) There are a total of 8 to 20 Bursts in the 12 second period, with the number of Bursts being randomly chosen. This number is Burst_Count.
(3) Each Burst consists of 1 to 3 pulses, with the number of pulses being randomly chosen. Each Burst within the 12 second sequence may have a different number of pulses.
(4) The pulse width is between 50 and 100 microseconds, with the pulse width being randomly chosen. Each pulse within a Burst will have the some pulse width. Pulses in different Bursts may have different pulse widths.

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(5) Each pulse has a linear FM chirp between 5 and 20MHz, with the chirp width being randomly chosen. Each pulse within a Burst will have the same chirp width. Pulses in different Burst may have different chirp widths. The chirp is centered on the pulse. For example, with a radar frequency of 5300MHz and a 20MHz chirped signal, the chirp starts at 5290MHz and ends at 5310MHz.
(6) If more than one pulse is present in a Burst, the time between the pulses will be between 1000 and 2000 microseconds, with the time being randomly chosen. If three pulses are present in a Burst, the time between the first and second pulses is chosen independently of the time between the second and third pulses.
(7) The 12 second transmission period is divided into even intervals. The number of intervals is equal to Burst_Count. Each interval is of length (12000000/Burst_Count) microseconds. Each interval contains one Burst. The start time for the Burst, relative to the beginning of the interval, is between 1 and [(12000000/Burst_Count)-(Total Burst length)+(One Random PRI interval)] microseconds, with the start time being randomly chosen. The step interval for the start time is 1 microsecond. The start time for each Burst is chosen independently.
A representative example of a Long Pulse radar test waveform:
(1) The total test signal length is 12 seconds.
(2) 8 Bursts are randomly generated for the Burst_Count.
(3) Burst 1 has 2 randomly generated pulses.
(4) The pulse width (for both pulses) is randomly selected to be 75 microseconds.
(5) The PRI is randomly selected to be at 1213 microseconds. (6) Bursts 2 through 8 are generated using steps 3-5. (7) Each Burst is contained in even intervals of 1500000 microseconds. The starting
location for Pulse 1. Burst 1 is randomly generated (1 to 1500000 minus the total Burst 1 length + 1 random PRI interval) at the 325001 microsecond step. Bursts 2 through 8 randomly fall in successive 1500000 microsecond intervals (i.e. Burst 2 falls in the 1500001-3000000 microsecond range).

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Used R&S SMU200A (Vector SG with two ARB) Path A/Path B Two B11: Base-band Generator with ARB (16M samples) and Digital
Modulation B13: Base-band Main Module B106: frequency range (100 kHz to 6 GHz) For selecting the waveform parameters from within the bounds of the signal type, system was random selection using uniform distribution.

6.5. Frequency Hopping Pulse Radar Test Waveforms

Radar Pulse Width Type (µsec)

PRI (µ sec)

Hopping Minimum

Pulses Per Hopping Rate Sequence Percentage of

Hop

(kHz) Length Successful

(ms) Detection

Minimum of Trials

6

1

333

9

0.333

300

70%

30

For the Frequency Hopping Radar Type, the same Burst parameters are used for each waveform. The hopping sequence is different for each waveform and a 100-length segment is selected from the hopping sequence defined by the following algorithm:
The first frequency in a hopping sequence is selected randomly from the group of 475 integer frequencies form 5250-5274MHz. Next, the frequency that was just chosen is removed from the group and a frequency is randomly selected from the remaining 474 frequencies in the group. This process continues until all 475 frequencies are chosen for the set. For selection of random frequency, the frequencies remaining within the group are always treated as equally likely.

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Used R&S SMU200A (Vector SG with two ARB) B11: Base-band Generator with ARB (16M samples) and Digital Modulation B13: Base-band Main Module B106: frequency range (100 kHz to 6 GHz) For selecting the waveform parameters from within the bounds of the signal type, system was random selection using uniform distribution.

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6.6. Conducted Calibration Setup

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Radar Test Signal Generator

EUT (Client)

ATT 10dB ATT 30dB

2-Way Splitter/ Combiner

ATT 10dB

2-Way Splitter/ Combiner

ATT 30dB

Master
Spectrum Analyzer (with 10 dB internal Attenuation)

6.7. Radar Waveform Calibration Procedure
The measured frequency is 5250MHz. The radar signal was the same as transmitted channels, and injected into the antenna port of AP (master) or Client Device with Radar Detection, measured the channel closing transmission time and channel move time. The calibrated conducted detection threshold level is set to -62dBm. The tested level is lower than required level hence it provides margin to the limit.
6.8. Calibration Deviation
There is no deviation with the original standard.

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6.9. Radar Waveform Calibration Result
DFS detection threshold level and the burst of pulses on the Channel frequency

Test Date

2024/08/17

Temp./Hum.

24/58%

160MHz

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7. TEST SETUP AND TEST RESULT

7.1. Test Setup
7.1.1. Test Setup Diagram Following is the test setup for generated the radar waveforms and used to monitor U-NII device.
Master

ATT 30dB

Radar Test Signal Generator

UUT (Client)

ATT 10dB ATT 30dB

2-Way Splitter/ Combiner

ATT 10dB

2-Way Splitter/ Combiner

Spectrum Analyzer (with 10 dB internal Attenuation)

7.1.2. Test Setup Operation
System testing was performed with the designated MPEG test file that streams full motion video from the Access Point to Client in full motion video mode using the media player with the V2.61 Codec package. This file is used by IP and Frame based systems for loading the test channel during the in-service compliance testing of the U-NII device. The waveform parameters from within the bounds of the signal type are selected randomly using uniform distribution. A spectrum analyzer is used as a monitor to verify that the EUT has vacated the Channel within the (Channel Closing Transmission Time and Channel Move Time, and does not transmit on a Channel during the Non-Occupancy Period after the detection and Channel move. It is also used to monitor EUT transmissions during the Channel Availability Check Time.

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7.1.3. Test Setup for Data Traffic Plot

Test Date

2024/08/17

Temp./Hum.

Test Mode: 802.11be, 160MHz TX 5250MHz

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24/58%

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7.2. Channel Move Time, Channel Closing Transmission Time,

Non-Occupancy Period, Non-Associated Client Beacon Measurement
7.2.1. Limit

Parameter

Value

Channel Move Time

10 seconds See Note 1.

Channel Closing Transmission Time

200 milliseconds + an aggregate of 60 milliseconds over remaining 10 second period. See Notes 1 and 2.

Non-Occupancy Period

Non-Occupancy Period time is 30 minute during which a Channel will not be utilized after a Radar Waveform is detected on that Channel

Non-Associated Client Beacon

The non-associated Client Beacon Test is during the 30 minutes observation time. The EUT should not make any transmissions in the DFS band after EUT power up.

Note 1: The instant that the Channel Move Time and the Channel Closing Transmission Time begins is as follows:
a. For the Short Pulse Radar Test Signals this instant is the end of the Burst. b. For the Frequency Hopping radar Test Signal, this instant is the end of the last radar
Burst generated. c. For the Long Pulse Radar Test Signal this instant is the end of the 12 second period
defining the Radar Waveform.
Note 2: The Channel Closing Transmission Time is comprised of 200 milliseconds starting at the beginning of the Channel Move Time plus any additional intermittent control signals required to facilitate a Channel move (an aggregate of 60 milliseconds) during the remainder of the 10 second period. The aggregate duration of control signals will not count quiet periods in between transmissions.

7.2.2. Test Procedures
 When a radar Burst with a level equal to the DFS Detection Threshold + 1dB is generated on the operating channel of the U-NII device. A U-NII device operating as a Client Device will associate with the Master of channel. Stream the MPEG test file from the Master Device to the Client Device on the selected channel for entire period of the test. At time to the radar waveform generator sends a Burst of pulses for each of the radar types at Detection Threshold + 1dB.
 Observe the transmissions of the EUT at the end of the radar Burst on the Operating channel. Measure and record the transmissions from the EUT during the observation time [Channel Move Time, Channel closing Time]. One 12 Second plot need to be reported for short Pulse Radar Types 0.
 Measure the EUT for more than 30 minutes following the channel close/move time to verify that the EUT does not resume only transmissions on this channel.

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7.2.3. Test Result for Channel Closing Transmission Time& Channel Move Time

Test Date Test Mode

2024/08/17 802.11be, 160MHz

Temp./Hum. Frequency Tested By

24/58% TX 5250MHz Harry Huang

Channel Closing Transmission Time

Channel move time < 10 S

Channel Closing Transmission Time Calculated

Sweep Time(S) sec

7

Sweep points (P)

32001

Number of Sweep points in 10 sec (N)

1

Channel Closing Time (C) ms

0.22

Channel closing time is calculated from C=N* dwell; where dwell is the occupancy time per sweep point calculated by the formula: dwell=S/P. N is the number of sweep points indicating transmission after S1; where S1 is the radar signal detected

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7.2.4. Test Result for Non-Occupancy Period, Non-associated Test

Test Date Test Mode

2024/08/17 802.11be, 160MHz

Temp./Hum. Frequency Tested By

24/58% TX 5250MHz Harry Huang

Non-Occupancy Period

Non-associated Test

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APPENDIX A
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APPENDIX A
TEST PHOTOGRAPHS
(Model: 16Z90TS)

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