
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
Intel(R) PRO/Wireless 2200BG User's Guide Your Intel(R) PRO/Wireless 2200BG Network Connection adapter works with either 802.11b or 802.11g wireless standard. Operating at 2.4 GHz frequency at speeds of up to 54 Mbps you can now connect your computer to high-capacity existing 802.11b networks using multiple access points within large or small environments, and also to high-speed 802.11g networks. Your wireless adapter maintains automatic data rate control according to access point location to achieve the fastest possible connection. All your wireless client connections can be easily managed by the Intel(R) PROSet for Wireless utility. Using the Intel(R) PROSet for Wireless Profile Wizard, you can create profiles automatically to suite your specific connection requirements. Enhanced security measures using 802.1x, WPA encryption and authentication, and 128-bit WEP encryption is standard for both 802.11b and 802.11g. Introduction to Wireless Networking Software Installation Using Intel(R) PROSet for Wireless Connecting to a Network Security Overview Setting up Connection Security Troubleshooting Specifications Glossary Customer Support Safety and Regulatory Notices Warranty Adapter Registration Information in this document is subject to change without notice. (c) 2000–2003 Intel Corporation. All rights reserved. Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497 USA The copying or reproducing of any material in this document in any manner whatsoever without the written permission of Intel Corporation is strictly forbidden. Intel(R) is a trademark or registered trademark of Intel Corporation or its subsidiaries in the United States and other countries. Other trademarks and trade names may be used in this document to refer to either the entities claiming the marks and names or their products. Intel disclaims any proprietary interest in trademarks and trade names other than its own. Microsoft and Windows are registered trademarks of Microsoft Corporation. *Other names and brands may be claimed as the property of others. Intel Corporation assumes no responsibility for errors or omissions in this document. Nor does Intel make any commitment to update the information contained herein. September 2003 Back to Contents Page Wireless LAN Overview: Intel(R) PRO/Wireless 2200BG User's Guide About Wireless LAN Technology l Choosing a WLAN l Configuring a WLAN l Identifying a WLAN l Surveying the Site of Your WLAN l Factors Affecting Range A wireless network connects computers without using network cables. Computers use radio communications to send data between each other. You can communicate directly with other wireless computers, or connect to an existing network through a wireless access point. When you set up your wireless adapter, you select the operating mode for the kind of wireless network you want. You can use your wireless adapter to connect to other similar wireless devices that comply with the 802.11 standard for wireless networking. Choosing a Wireless LAN Wireless LANs can operate with or without access points, depending on the number of users in the network. Infrastructure mode uses access points to allow wireless computers to send and receive information. Wireless computers transmit to the access point, the access point receives the information and rebroadcasts it to other computers. The access point can also connect to a wired network or to the Internet. Multiple access points can work together to provide coverage over a wide area. Peer-to-Peer mode, also called Ad Hoc mode, works without access points and allows wireless computers to send information directly to other wireless computers. Ad Hoc Mode is only supported in 802.11b and 802.11g networks. You can use Peer-to-Peer mode to network computers in a home or small office or to set up a temporary wireless network for a meeting. Configuring a Wireless LAN There are three basic components that must be configured for an 802.11 wireless LAN to operate properly: l Network Name: Each wireless network uses a unique Network Name to identify the network. This name is called the Service Set Identifier (SSID). When you set up your wireless adapter, you specify the SSID. If you want to connect to an existing network, you must use the name for that network. If you are setting up your own network you can make up your own name and use it on each computer. The name can be up to 32 characters long and contain letters and numbers. l Profiles: When you set up your computer to access a wireless network, the wireless client manager creates a profile for the wireless settings that you specify. If you want to connect to another network, you can scan for existing networks and make a temporary connection, or create a new profile for that network. After you create profiles, your computer will automatically connect when you change locations. l Security: The 802.11 wireless networks use encryption to help protect your data. Wired equivalent privacy (WEP) uses a 64-bit or 128-bit shared encryption key to scramble data. Before a computer transmits data, it scrambles the data using the secret encryption key. The receiving computer uses this same key to unscramble the data. If you are connecting to an existing network, use the encryption key provided by the administrator of the wireless network. If you are setting up your own network you can make up your own key and use it on each computer. m Wi-Fi Protected Access (WPA) is a security enhancement that strongly increases the level of data protection and access control to a WLAN. WPA mode enforces 802.1x authentication and key-exchange to strengthen data encryption. WPA utilizes its Temporal Key Integrity Protocol (TKIP). TKIP provides important data encryption enhancements that include a per-packet key mixing function, a message integrity check (MIC) named "Michael", an extended initialization vector (IV) with sequencing rules, and a also re-keying mechanism. Using these improvement enhanceme…
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January 30, 2004 Applicant: QUANTA COMPUTER INC. FCC ID# HFSZW9WM3B2200BG The responses are as follows: The Test Report shows Channel 1 in OFDM mode is 5dB below the other reported powers for the mid and high channels. We do not see this same drop in power on Channel 1 when the equipment is in CCK mode. Please advise. Is the equipment working properly? Was the test equipment and cables operating properly. Response: That’s because the bandedge which we tested for Channel 1, will be high emission level. So we have to reduce our power setting for OFDM.
FCC ID: HFSZW9WM3B2200BG Report No.RF921231R03 Modular Approval Request Letter Advance Data Technology Jan. 16, 2004 Dear Application Examiner, Quanta Computer Inc.’s Laptop PC with FCC ID: HFSZW9WM3B2200BG, would like to have your authorization as a limited modular approval for the mini-pci card (Intel, WM3B2200BG) specific to the Laptop PC which brand is Quanta and the model is ZW9. The requirements of Public Notice DA00-1407 have been met and shown on the following statements. 1. “The modular transmitter must have its own RF shielding.”: The radio portion of this module has been shielded, please see exhibition External Photo. 2. “The modular transmitter must have buffered modulation/data inputs.” The EUT has buffered data inputs, it is integrated in chip82531ME. 3. “The modular transmitter must have its own power supply regulation.” The chips IF converter and RF/IF converter which will influence the frequency radiation, have to be 1.8Vdc powered. The mini-pci interface provides 3.3VDC, so there are regulators in front of these chips, the part number of this regulator is LP2992. 4. “The modular transmitter must comply with the antenna requirements of section 15.203 and 15.204(C).” The EUT meets the FCC antenna requirements. The spurious emission, unique antenna connector and photo of antennas are shown in the test report. 5. “The modular transmitter must be tested in a stand-alone configuration” Due to the mini-pci card with brand Intel, and the model name WM3B2200BG is specified to the Laptop PC, the EUT is tested in full system configuration. Please see section Photographs of Test Configuration in the test report. 6. “The modular transmitter must be labeled with its own FCC ID number.” Please see exhibition Label Sample for the FCC ID of this module. And also in the exhibition Users Manual, there are instructions given to the OEM on how to label the end product. FCC ID: HFSZW9WM3B2200BG Report No.RF921231R03 7. “The modular transmitter must comply with any specific rule or operating requirements applicable to the transmitter and the manufacturer must provide adequate instructions along with the module to explain any such requirements.” The EUT is compliant with all applicable FCC rules. Detail instructions for maintaining compliance are given in the Users Manual. 8. “The modular transmitter must comply with any applicable RF exposure requirements.” The EUT is compliant with all applicable RF exposure requirements. RF Exposure is addressed in the RF exposure exhibition. Please contact me if you have any further questions. Thanks for your attention. Best Regards, Ellis Wu / Manager Advance Data Technology
American Telecommunications Certification Body Inc. 6731 Whittier Ave, McLean, VA 22101 January 21, 2004 RE: Quantra Computer FCC ID: HFSZW9WM3B2200BG I have a few comments on this Application. This filing is very confusing. If you desire to file using a Limited Modular Approval (LMA) under DA 00-1407 then the original FCC ID (Intel) associated with the mini-PCI card must be used.. If the Applicant (Quantra) desires to file under their own FCC ID, the entire notebook computer with mini-PCI WLAN card must be considered. More discussion is listed below. 1.) The Block Diagram does not meet the requirements of 2.1033(b)(5). Please revise. 2.) The Label contains two FCC IDs. This is contrary to FCC rules, and potentially confusing. Please revise. 3.) Since this FCC ID will apply to the entire model ZW9 product line only, a Limited Modular Approval (LMA) is not appropriate for this filing. In addition, since no Declaration of Conformity information is provided, this device will be recorded as a Composite application. Two Grants will be generated – one for the Intentional Radiator located inside the ZW9 chassis under Part 15C, and a second for the Unintentional Radiator using Part 15B. 4.) Section 4.7.2 of the Test Report lists only one antenna, while Section 3.1 lists two. The SAR report also lists two antennas. Please explain and correct. 5.) The Test Report shows Channel 1 in OFDM mode is 5dB below the other reported powers for the mid and high channels. We do not see this same drop in power on Channel 1 when the equipment is in CCK mode. Please advise. Is the equipment working properly? Was the test equipment and cables operating properly? 6.) The Operational Description refers to just a single antenna only. Please resolve this discrepancy. 7.) The Manual only addresses the mini-PCI 802.11g transmitter only. Since the new ID refers to the entire product, may I suggest a Manual for the entire notebook computer with the WLAN card installed? 8.) Page 72 of the Users Manual has an error for the US available frequency range. Please correct. 9.) The highlighted sections of the Manual on pp. 89 of 94 are redundant and unnecessary. 10.) There are several references within the manual to FCC ID: PD9WM3B2200BG which is not needed. These must be removed. William H. Graff President and Director of Engineering mailto: [email protected] The items indicated above must be submitted before processing can continue on the above referenced application. Failure to provide the requested information may result in application termination. Correspondence should be considered part of the permanent submission and may be viewed from the Internet after a Grant of Equipment Authorization is issued. Please do not respond to this correspondence using the email reply button. In order for your response to be processed expeditiously, you must submit your documents through the AmericanTCB.com website. Also, please note that partial responses increase processing time and should not be submitted. Any questions about the content of this correspondence should be directed to the sender.
Page 1 CONSTRUCTION PHOTOS OF EUT Page 2 Page 3 Page 4 Page 5 Page 6 Page 7 Page 8 Page 9
LABEL LOCATION
FCC ID: HFSZW9WM3B2200BG IC: 1787B-ZW9200BG
Page 10 Page 11 Page 12 Page 13 Page 14 Page 15 Page 16 Page 17 Page 18 Page 19
FCC ID: HFSZW9WM3B2200BG Report No.RF921231R03 Operational Description This device is a NoteBook with mini PCI card (Model: WM3B2200BG, Brand: Intel), which operates in the 2.4GHz frequency spectrum with throughput of up to 54Mbps which OFDM technique will be applied. If the signal to noise radio is too poor which could not support 54Mbps, the 11Mbps data rate with CCK technique will be applied. The transmitter of the EUT is powered by host equipment via a mini-pci interface. The antenna is Monopole antenna with UFL antenna connector. The other instruction, please have a look at the users manual.
FCC ID: HFSZW9WM3B2200BG Report No.: SA921231R031Issued: Jan. 15, 2004 SAR TEST REPORT REPORT NO.: SA921231R03 MODEL NO.: ZW9 RECEIVED: Dec. 31, 2003 TESTED: Jan. 14, 2004 APPLICANT: Quanta Computer Inc. ADDRESS: 7F, 116, Hou Kang St., Shih Lin, Taipei, Taiwan, R.O.C. ISSUED BY: Advance Data Technology Corporation LAB LOCATION: 47 14th Lin, Chiapau Tsun, Linko, Taipei, Taiwan, R.O.C. This test report consists of 34 pages in total except Appendix. It may be duplicated completely for legal use with the approval of the applicant. It should not be reproduced except in full, without the written approval of our laboratory. The client should not use it to claim product endorsement by CNAL or any government agencies. The test results in the report only apply to the tested sample. 0528 ILAC MRA FCC ID: HFSZW9WM3B2200BG Report No.: SA921231R032Issued: Jan. 15, 2004 Table of Contents 1.CERTIFICATION........................................................................................................................ 3 2.GENERAL INFORMATION........................................................................................................ 4 2.1GENERAL DESCRIPTION OF EUT.......................................................................................... 4 2.2GENERAL DESCRIPTION OF APPLIED STANDARDS ........................................................... 5 2.3GENERAL INOFRMATION OF THE SAR SYSTEM ................................................................. 5 2.4GENERAL DESCRIPTION OF THE SPATIAL PEAK SAR EVALUATION ............................... 9 3.DESCRIPTION OF TEST MODES AND CONFIGURATIONS................................................ 13 4.DESCRIPTION OF SUPPORT UNITS .................................................................................... 15 5.TEST RESULTS ...................................................................................................................... 16 5.1TEST PROCEDURES .............................................................................................................16 5.2MEASURED SAR RESULT ..................................................................................................... 17 5.3SAR LIMITS ............................................................................................................................. 20 5.4RECIPES FOR TISSUE SIMULATING LIQUIDS .................................................................... 21 5.5TEST EQUIPMENT FOR TISSUE PROPERTY...................................................................... 23 6.SYSTEM VALIDATION ............................................................................................................24 6.1TEST EQUIPMENT ................................................................................................................. 24 6.2TEST PROCEDURE................................................................................................................ 24 6.3VALIDATION RESULT............................................................................................................. 26 6.4SYSTEM VALIDATION UNCERTAINTIES .............................................................................. 27 7.MEASUREMENT SAR PROCEDURE UNCERTAINTIES ...................................................... 28 7.1PROBE CALIBRATION UNCERTAINTY ................................................................................. 28 7.2ISOTROPY UNCERTAINTY .................................................................................................... 28 7.3BOUNDARY EFFECT UNCERTAINTY ................................................................................... 29 7.4PROBE LINEARITY UNCERTAINTY ...................................................................................... 29 7.5READOUT ELECTRONICS UNCERTAINTY .......................................................................... 29 7.6RESPONSE TIME UNCERTAINTY ......................................................................................... 30 7.7INTEGRATION TIME UNCERTAINTY .................................................................................... 31 7.8PROBE POSITIONER MECHANICAL TOLERANCE ............................................................. 31 7.9PROBE POSITIONING............................................................................................................32 7.10 PHANTOM UNCERTAINTY..................................................................................................... 32 7.11 DASY4 UNCERTAINTY BUDGET........................................................................................... 33 8.INFORMATION ON THE TESTING LABORATORIES............................................................ 34 APPENDIX A: TEST CONFIGURATIONS AND TEST DATA APPENDIX B: ADT SAR MEASUREMENT SYSTEM APPENDIX C: PHOTOGRAPHS OF SYSTEM VALIDATION APPENDIX D: SYSTEM CERTIFICATE & CALIBRATION FCC ID: HFSZW9WM3B2200BG Report No.: SA921231R033Issued: Jan. 15, 2004 1. CERTIFICATION PRODUCT : NoteBook MODEL NO. : ZW9 BRAND : Quanta APPLICANT : Quanta Computer Inc. TEST ITEM : R&D Sample STANDARDS : FCC Part 2 (Section 2.1093), FCC OET Bulletin 65, Supplement C (01-01), RSS-102 We, Advance Data Technology Corporation, hereby certify that one sample of the designation has been tested in our facility on Jan. 14, 2004. The test record, data evaluation and Equipment Under Test (EUT) configurations represented herein are true and accurate, and it was tested according to the standards listed above. This device was found to be in compliance with the Specific Absorption Rate (SAR) requirement specified in FCC part 2.1093 under General Population / Uncontrolled Exposure condition. PREPARED BY:, DATE: January 15, 2004 APPROVED BY: Stacy Hsueh , DATE:January 15, 2004 Ellis Wu / Manager FCC ID: HFSZW9WM3B2200BG Report No.: SA921231R034Issued: Jan. 15, 2004 2. GENERAL INFORMATION 2.1 GENERAL DESCRIPTION OF EUT PRODUCT NoteBook MODEL NO. ZW9 POWER SUPPLY 19Vdc from AC ad…
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Page 7 Mode 7 Main Antenna The front side of the EUT to the flat phantom distance 0mm Page 8 Mode 8 Auxiliary Antenna The front side of the EUT to the flat phantom distance 0mm Page 9 EUT Photo Page 10 Liquid Level Photo 2450MHz D=155mm Date/Time: 01/14/04 11:59:18 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 1 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2412 MHz Communication System: 802.11b ; Frequency: 2412 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.946 mho/m, ε r = 50.8632, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The front of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 1/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 21.9 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.851 mW/g Channel 1/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 2.15 W/kg SAR(1 g) = 0.69 mW/g; SAR(10 g) = 0.243 mW/g Reference Value = 21.9 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.786 mW/g Date/Time: 01/14/04 12:20:54 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 1 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2437 MHz Communication System: 802.11b ; Frequency: 2437 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.968 mho/m, ε r = 50.5459, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The front of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 6/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 19.8 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.715 mW/g Channel 6/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 1.97 W/kg SAR(1 g) = 0.634 mW/g; SAR(10 g) = 0.225 mW/g Reference Value = 19.8 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.718 mW/g Date/Time: 01/14/04 12:47:18 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 1 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2462 MHz Communication System: 802.11b ; Frequency: 2462 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 2.01 mho/m, ε r = 50.4886, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The front of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 11/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 16.9 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.548 mW/g Channel 11/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 1.55 W/kg SAR(1 g) = 0.496 mW/g; SAR(10 g) = 0.177 mW/g Reference Value = 16.9 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.554 mW/g Date/Time: 01/14/04 14:28:22 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 2 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2412 MHz Communication System: 802.11b ; Frequency: 2412 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.946 mho/m, ε r = 50.8632, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The bottom of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21 degrees ; Liquid temp. : 21 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; Calibrated: 6/2/2003 - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 1/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 1.58 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.0449 mW/g Channel 1/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 0.143 W/kg SAR(1 g) = 0.0542 mW/g; SAR(10 g) = 0.0228 mW/g Reference Value = 1.58 V/m Power Drift = -0.2 dB Maximum value of SAR = 0.058 mW/g Date/Time: 01/14/04 14:48:52 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 2 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2437 MHz Communication System: 802.11b ; Frequency: 2437 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.968 mho/m, ε r = 50.5459, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The bottom of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21 degrees ; Liquid temp. : 21 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; Calibrated: 6/2/2003 - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1…
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Date/Time: 01/14/04 15:38:06 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 3 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2412 MHz Communication System: 802.11b ; Frequency: 2412 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.946 mho/m, ε r = 50.8632, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The tip of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 1/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 14 V/m Power Drift = -0.1 dB Maximum value of SAR = 0.616 mW/g Channel 1/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 1.13 W/kg SAR(1 g) = 0.566 mW/g; SAR(10 g) = 0.367 mW/g Reference Value = 14 V/m Power Drift = -0.1 dB Maximum value of SAR = 0.614 mW/g Date/Time: 01/14/04 15:57:12 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 3 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2437 MHz Communication System: 802.11b ; Frequency: 2437 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.968 mho/m, ε r = 50.5459, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The tip of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 6/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 12.3 V/m Power Drift = 0.06 dB Maximum value of SAR = 0.593 mW/g Channel 6/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 1.15 W/kg SAR(1 g) = 0.539 mW/g; SAR(10 g) = 0.345 mW/g Reference Value = 12.3 V/m Power Drift = 0.06 dB Maximum value of SAR = 0.584 mW/g Date/Time: 01/14/04 16:17:06 Test Laboratory: Advance Data Technology ZW9 11.b MAIN ANTENNA Mode 3 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2462 MHz Communication System: 802.11b ; Frequency: 2462 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 2.01 mho/m, ε r = 50.4886, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The tip of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 11/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 12 V/m Power Drift = -0.06 dB Maximum value of SAR = 0.522 mW/g Channel 11/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 1.79 W/kg SAR(1 g) = 0.54 mW/g; SAR(10 g) = 0.34 mW/g Reference Value = 12 V/m Power Drift = -0.06 dB Maximum value of SAR = 0.54 mW/g Date/Time: 01/14/04 19:05:10 Test Laboratory: Advance Data Technology ZW9 11.b Auxiliary ANTENNA Mode 4 DUT: Notebook ; Type: ZW9 ; Test Channel Frequency: 2412 MHz Communication System: 802.11b ; Frequency: 2412 MHz; Duty Cycle: 1:1; Modulation type: CCK Medium: MSL2450 (σ = 1.946 mho/m, ε r = 50.8632, ρ = 1000 kg/m 3 ) ; Liquid level : 155mm Phantom section: Flat Section ; Separation distance : 0mm(The front of the EUT to the Phantom) Antenna type : Internal Antenna ; Air temp. : 21.0 degrees ; Liquid temp. : 21.0 degrees DASY4 Configuration: - Probe: ET3DV6 - SN1686; ConvF(4.5, 4.5, 4.5); Calibrated: 6/18/2003 - Sensor-Surface: 4mm (Mechanical Surface Detection) - Electronics: DAE3 Sn510; - Phantom: SAM Twin Phantom V4.0; Type: QD 000 P40 CA; Serial: TP-1150 - Measurement SW: DASY4, V4.1 Build 47; Postprocessing SW: SEMCAD, V1.6 Build 115 Channel 1/Area Scan (71x51x1): Measurement grid: dx=15mm, dy=15mm Reference Value = 10.4 V/m Power Drift = -0.04 dB Maximum value of SAR = 0.342 mW/g Channel 1/Zoon Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Peak SAR (extrapolated) = 1.78 W/kg SAR(1 g) = 0.565 mW/g; SAR(10 g) = 0…
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13-1, Lane 19, WenShan 3rd St · Taoyuan · Taiwan
| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15C | 2.41 GHz - 2.46 GHz | 41.00 mW |
Mini
Equipment Class
DTS - Digital Transmission SystemTelematics Module
Equipment Class
PCB - PCS Licensed TransmitterQOCA ecg1202
Equipment Class
DTS - Digital Transmission System
Telematics Module
Equipment Class
PCB - PCS Licensed TransmitterClover Flex Pocket
Equipment Class
NII - Unlicensed National Information Infrastructure TX