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AZD162WLAN Module

Canon Inc.
WLAN Module - FCC ID AZD162 - Canon Inc.
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Application Details

Equipment Class
DTS - Digital Transmission System
Date of Grant
Feb 07, 2010
Application Purpose
Original Equipment
Date of Application
Feb 07, 2010
Equipment Note
WLAN Module
Frequency Range
5745.00000000 - 5825.00000000
Company
Canon Inc.
Country
Japan

Documents & Files

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Users Manual

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Cover Letter(s)

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External Photos

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ID Label/Location Info

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Internal Photos

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RF Exposure Info

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Test Report

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Test Setup Photos

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Document Text

Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.

Users Manual

User’s Manual WLAN Module Model No.: CH9-1161 There is no User’s Manual because this equipment will not be sold to end- user directly.

Users Manual

61 Linked Shooting With linked shooting, up to 10 slave cameras can be linked in a wireless network (via IEEE 802.11g in ad hoc mode) to the master camera on which you will release the shutter. Any cameras compatible with linked shooting, when they have WFT series transmitters attached, can be used as slave cameras, regardless of model. Note that there will be a slight delay after you release the master camera shutter before the slave cameras shoot. Movie shooting is not supported. Master camera Slave camera 62 First, establish a connection from the slave cameras to the master camera. Because linked shooting utilizes a wireless connection via IEEE 802.11g in ad hoc mode, it is not available over wired LANs. 1 Display the transmitter menu. On the camera, press the <7> button. On the [7] tab, select [WFT settings] and press <0>. [WFT settings] is added to the tab after you attach the transmitter. 2 Select [Connection wizard]. 3 Select [LinkedShot]. 4 Set up the slave cameras. Select [Slave]. XThe slave cameras are now ready, with the following screen displayed. When using multiple slave cameras, set up all slave cameras to slave state. Once the settings are complete, slaves cannot be added or removed. You must repeat the setup process from step 1. Setting Up Linked Shooting 63 Setting Up Linked Shooting 5 Set up the master camera. Configure the settings on the master camera following steps 1-3 on the previous page, and then select [Master]. XThe following screen is displayed. 6 At this point, switch to setting up the slave cameras. On the slave cameras, select [OK]. 7 Check the number of slave cameras. XOn the master camera LCD monitor, the number of slave cameras detected is displayed. 8 Establish the connection. On the master camera and all slave cameras, select [OK]. XA screen is displayed as the connection is tested. The information you specified is stored on the cameras. It is not stored on the transmitters. 64 Arrange the slave cameras in clear view of the master camera, without objects between them. You can arrange master camera in an overall circumference of up to approximately 100 m / 328 ft. However, the distance supported for linked shooting may be shorter depending on the wireless communication conditions, which are affected by how the cameras are arranged, the environment of use, and weather conditions. Pressing the shutter button halfway on the master camera puts slave cameras in the same state, as if the shutter buttons were pressed halfway. Similarly, fully pressing the shutter button on the master camera has the same effect on slave cameras, which respond as if the shutter buttons were fully pressed. There will be a slight delay after you release the master camera shutter until the slave camera shutters are released. (Simultaneous capture is not possible.) Arranging the Slave Cameras Master camera Slave camera Slave cameraSlave camera Slave camera During linked shooting, when you press the AE lock or depth-of-field preview button, the camera focuses and meters as if you had pressed the shutter button halfway. Once you have established a connection between the master camera and slave cameras, the settings are retained even after you replace the batteries. If you will no longer use a slave camera in linked shooting, set [Communication mode] to [Disconnect] on that slave camera. Any cameras compatible with linked shooting, when they have WFT series transmitters attached, can be used as slave cameras, regardless of model. 65 Managing Settings Information 66 Check the network settings as follows. 1 In [WFT settings], select [Set up]. 2 Select [Confirm settings]. XThe settings are displayed. Checking Settings Example of FTP transfer and wired LAN settingsExample of FTP transfer and wireless LAN settings 67 Settings originally completed using the connection wizard can be changed as follows. You can also change IP security settings (IPsec) not completed using the connection wizard, as well as other settings, such as the setting that determines what happens if an image of the same file name as an existing file is sent to the FTP server. (p.68) 1 In [WFT settings], select [Set up]. 2 Select [LAN settings]. 3 Select the settings number. Here, select the settings number that identifies the LAN settings. 4 Select [Change]. After selecting [Change settings name], you can rename the settings. 5 Select the item to change. Select the desired item from [LAN type], [TCP/IP], [FTP server], or [Wireless LAN] and change the setting. Changing Settings 68 Changing Settings Configured in [TCP/IP]  [Security]. IPsec is a set of standards for encrypted communication over the Internet. It provides effective security for both wireless and wired LANs. To use this function, you must enable IPsec in the network settings of your computer. When IPsec is employed, only transport mode is supported, and DES encryption and SHA1 authentication are used. Note that the IP address of the computer for communication with the transmitter must be entered in [Destination address] on the settings screen. Configured in [FTP server]  [Directory structure]. Selecting [Camera] automatically creates a folder structure matching that of the camera’s (such as A/DCIM/100EOS1D) in the server’s root folder for image storage. If you have created a subfolder in the root folder by changing the [Target folder] setting, a folder structure such as A/ DCIM/100EOS1D is automatically created in that folder for image storage. Selecting [Default] will use the root folder for image storage. If you have created a subfolder in the root folder by changing the [Target folder] setting, images are saved in that folder. Configured in [FTP server]  [Overwrite same file]. When the transmitter is configured to prevent overwriting If there is already a file of the same name in the target folder on the FTP server, the new file is saved with an extension consisting of an underline and a number, as in IMG_0003_1.JPG. When you resend images if initial tr…

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External Photos

External Photo Following is external photo of host device, which is a transmitter(single host) used with digital camera.

Internal Photos

Photo Canon Inc. Wireless LAN Module [Model: CH9-1161] Front Rear Photo Canon Inc. Wireless LAN Module [Model: CH9-1161] Internal

Internal Photos

Internal and Position of Antenna Photo Antenna WLAN Part Overview

RF Exposure Info

Test report No. : 29KE0214-HO-01-E Page : 2 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CONTENTS PAGE SECTION 1: Customer information ..................................................................................................... 4 SECTION 2: Equipment under test (E.U.T.)........................................................................................ 4 2.1 Identification of E.U.T. ............................................................................................... 4 2.2 Product Description.................................................................................................... 4 SECTION 3 : Test standard information.............................................................................................. 5 3.1 Requirements for compliance testing defined by the FCC................................................... 5 3.2 Procedure and result................................................................................................... 6 3.3 Exposure limit ........................................................................................................... 7 3.4 Test Location............................................................................................................ 8 3.5 Confirmation before SAR testing.................................................................................. 8 3.6 Confirmation after SAR testing ................................................................................... 10 3.7 Measurement procedure............................................................................................ 11 3.8 Test setup of EUT.................................................................................................... 12 SECTION 4 : Operation of E.U.T. during testing .............................................................................. 13 4.1 Operating modes for SAR testing................................................................................ 13 SECTION 5 : Test surrounding ........................................................................................................... 14 5.1 Measurement uncertainty ........................................................................................... 14 SECTION 6 : Confirmation before testing ......................................................................................... 15 6.1 Correlation of Output Power between EMC and SAR tests ............................................... 15 6.2 Average power for SAR testing................................................................................... 17 SECTION 7 : Measurement results ..................................................................................................... 20 7.1 BODY SAR 5180-5320MHz...................................................................................... 20 7.2 BODY SAR 5500-5700MHz...................................................................................... 21 7.3 BODY SAR 5745-5825MHz...................................................................................... 22 7.4 BODY SAR 2450MHz.............................................................................................. 23 Test report No. : 29KE0214-HO-01-E Page : 3 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 APPENDIX 1 : Photographs of test setup .........................................................................................................................24 1. Photograph of EUT......................................................................................................................... 25 2. Photograph of Host device.............................................................................................................. 28 3. Position of antenna ......................................................................................................................... 29 4. Body-worn configuration................................................................................................................ 30 5. Photograph of test setup.................................................................................................................. 31 APPENDIX 2 : SAR Measurement data ...........................................................................................................................38 1. Evaluation procedure ...................................................................................................................... 39 2. Measurement data (Body SAR 5180-5320MHz band) ................................................................... 40 3. Measurement data (Body SAR 5500-5700MHz band) ................................................................... 50 4. Measurement data (Body SAR 5740-5825MHz band) ................................................................... 62 5. Measurement data (Body SAR 2412-2462MHz band) ................................................................... 71 APPENDIX 3 : Test instruments .......................................................................................................................................82 1. Equipment used .............................................................................................................................. 83 2. Dosimetry assessment setup ........................................................................................................... 84 3. Configuration and peripherals ........................................................................................................ 85 4. System components ....................................................................................................…

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RF Exposure Info

Test report No. : 29KE0214-HO-01-E Page : 38 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 APPENDIX 2 : SAR Measurement data Test report No. : 29KE0214-HO-01-E Page : 39 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 1. Evaluation procedure The evaluation was performed with the following procedure: Step 1: Measurement of the E-field at a fixed location above the ear point or central position of flat phantom was used as a reference value for assessing the power drop. Step 2: The SAR distribution at the exposed side of head or body position was measured at a distance of each device from the inner surface of the shell. The area covered the entire dimension of the antenna of EUT and the horizontal grid spacing was 15 mm x 15 mm . Based on these data, the area of the maximum absorption was determined by spline interpolation. Step 3: Around this point found in the Step 2 (area scan), a volume of 28mm x 28mm x 22.5mm was assessed by measuring 8 x 8 x 10 points for IEEE802.11a(5G) and a volume of 30mm x 30mm x 30mm was assessed by measuring 7 x 7 x 7 points for IEEE802.11b (2.4G) And for any secondary peaks found in the Step2 which are within 2dB of maximum peak (level more than ambient noise (> 0.012 W/kg)) and not with this Step3 (Zoom scan) is repeated. On the basis of this data set, the spatial peak SAR value was evaluated under the following procedure: (1). The data at the surface were extrapolated, since the center of the dipoles is 1mm away from the tip of the probe and the distance between the surface and the lowest measuring point is 1mm. Therefore minimum distance of probe sensor from surface was set to the 2mm. The extrapolation was based on a least square algorithm [4]. A polynomial of the fourth order was calculated through the points in z-axes. This polynomial was then used to evaluate the points between the surface and the probe tip. (2). The maximum interpolated value was searched with a straightforward algorithm. Around this maximum the SAR values averaged over the spatial volumes (1 g or 10 g) were computed by the 3D-Spline interpolation algorithm. The 3D-Spline is composed of three one-dimensional splines with the “Not a knot"-condition (in x, y and z-directions) [4], [5]. The volume was integrated with the trapezoidal-algorithm. One thousand points (10 x 10 x 10) were interpolated to calculate the average. (3). All neighboring volumes were evaluated until no neighboring volume with a higher average value was found. Step 4: Re-measurement of the E-field at the same location as in Step 1. Test report No. : 29KE0214-HO-01-E Page : 40 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 2. Measurement data (Body SAR 5180-5320MHz band) CH9-1161/Body/Side/11a BPSK6Mbps/5240MHz Crest factor:1 Medium: M5800 Medium parameters used: f = 5200 MHz; σ = 5.38 mho/m; ε r = 48.5; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(4.58, 4.58, 4.58); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (61x81x1): Measurement grid: dx=10mm, dy=10mm Maximum value of SAR (interpolated) = 1.63 mW/g Zoom Scan (8x8x10)/Cube 0: Measurement grid: dx=4mm, dy=4mm, dz=2.5mm Reference Value = 12.6 V/m; Power Drift = -0.089 dB Peak SAR (extrapolated) = 2.96 W/kg SAR(1 g) = 0.762 mW/g; SAR(10 g) = 0.218 mW/g Maximum value of SAR (measured) = 1.50 mW/g Test Date = 11/09/09 Ambient Temperature = 24.5 degree.c Liquid Temperature = Before 23.5degree.C , After 23.5 degree.C Test report No. : 29KE0214-HO-01-E Page : 41 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CH9-1161/Body/Side/11a QPSK18Mbps/5240MHz Crest factor:1 Medium: M5800 Medium parameters used: f = 5200 MHz; σ = 5.38 mho/m; ε r = 48.5; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(4.58, 4.58, 4.58); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (61x81x1): Measurement grid: dx=10mm, dy=10mm Maximum value of SAR (interpolated) = 1.63 mW/g Zoom Scan (8x8x10)/Cube 0: Measurement grid: dx=4mm, dy=4mm, dz=2.5mm Reference Value = 12.9 V/m; Power Drift = -0.184 dB Peak SAR (extrapolated) = 3.14 W/kg SAR(1 g) = 0.794 mW/g; SAR(10 g) = 0.223 mW/g Maximum value of SAR (measured) = 1.56 mW/g Test Date = 11/09/09 Ambient Temperature = 24.5 degree.c Liquid Temperature = Before 23.5degree.C , After 23.5 degree.C Test report No. : 29KE0214-HO-01-E Page : 42 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CH9-1161/Body/Top/11a QPSK18Mbps/5240MHz Crest factor:1 Medium: M5800 Medium parameters used: f = 5200 MHz; σ = 5.38 mho/m; ε r = 48.5; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(4.58, 4.58, 4.58); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (61x81x1): Measurement grid: dx=10mm, dy=10mm Maximum value of SAR (interpolated) = 0.…

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RF Exposure Info

Test report No. : 29KE0214-HO-01-E Page : 71 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 5. Measurement data (Body SAR 2412-2462MHz band) CH9-1161/Body/Side/11b DBPSK 1Mbps/2437MHz Crest factor: 1 Medium: M2450 Medium parameters used: f = 2450 MHz; σ = 1.95 mho/m; ε r = 50.2; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(7.68, 7.68, 7.68); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (51x61x1): Measurement grid: dx=15mm, dy=15mm Maximum value of SAR (interpolated) = 0.352 mW/g Zoom Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 9.83 V/m; Power Drift = -0.077 dB Peak SAR (extrapolated) = 0.487 W/kg SAR(1 g) = 0.228 mW/g; SAR(10 g) = 0.107 mW/g Maximum value of SAR (measured) = 0.354 mW/g Zoom Scan (7x7x7)/Cube 1: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 9.83 V/m; Power Drift = -0.077 dB Peak SAR (extrapolated) = 0.298 W/kg SAR(1 g) = 0.178 mW/g; SAR(10 g) = 0.091 mW/g Maximum value of SAR (measured) = 0.244 mW/g Test Date = 11/13/09 Ambient Temperature = 24.5 degree.c Liquid Temperature = Before 24.0degree.C , After 24.0 degree.C Test report No. : 29KE0214-HO-01-E Page : 72 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CH9-1161/Body/Side/11b DQPSK 2Mbps/2437MHz Crest factor: 1 Medium: M2450 Medium parameters used: f = 2450 MHz; σ = 1.95 mho/m; ε r = 50.2; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(7.68, 7.68, 7.68); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (51x91x1): Measurement grid: dx=15mm, dy=15mm Maximum value of SAR (interpolated) = 0.327 mW/g Zoom Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 11.0 V/m; Power Drift = -0.171 dB Peak SAR (extrapolated) = 0.375 W/kg SAR(1 g) = 0.189 mW/g; SAR(10 g) = 0.095 mW/g Maximum value of SAR (measured) = 0.280 mW/g Zoom Scan (7x7x7)/Cube 1: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 11.0 V/m; Power Drift = -0.171 dB Peak SAR (extrapolated) = 0.292 W/kg SAR(1 g) = 0.181 mW/g; SAR(10 g) = 0.093 mW/g Maximum value of SAR (measured) = 0.239 mW/g Test Date = 11/13/09 Ambient Temperature = 24.5 degree.c Liquid Temperature = Before 24.0degree.C , After 24.0 degree.C Test report No. : 29KE0214-HO-01-E Page : 73 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CH9-1161/Body/Front/11b DBPSK 1Mbps/2437MHz Crest factor: 1 Medium: M2450 Medium parameters used: f = 2450 MHz; σ = 1.95 mho/m; ε r = 50.2; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(7.68, 7.68, 7.68); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (91x121x1): Measurement grid: dx=15mm, dy=15mm Maximum value of SAR (interpolated) = 0.009 mW/g Zoom Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 1.66 V/m; Power Drift = 0.167 dB Peak SAR (extrapolated) = 0.011 W/kg SAR(1 g) = 0.00746 mW/g; SAR(10 g) = 0.00558 mW/g Maximum value of SAR (measured) = 0.009 mW/g Test Date = 11/13/09 Ambient Temperature = 24.5 degree.c Liquid Temperature = Before 24.0degree.C , After 24.0 degree.C Test report No. : 29KE0214-HO-01-E Page : 74 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CH9-1161/Body/Rear/11b DBPSK 1Mbps/2437MHz Crest factor: 1 Medium: M2450 Medium parameters used: f = 2450 MHz; σ = 1.95 mho/m; ε r = 50.2; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(7.68, 7.68, 7.68); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical Surface Detection) - Phantom: Flat Phantom ELI4.0 - Measurement SW: DASY4, V4.7 Build 71; Postprocessing SW: SEMCAD, V1.8 Build 184 Area Scan (91x121x1): Measurement grid: dx=15mm, dy=15mm Maximum value of SAR (interpolated) = 0.091 mW/g Zoom Scan (7x7x7)/Cube 0: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 5.10 V/m; Power Drift = -0.037 dB Peak SAR (extrapolated) = 0.111 W/kg SAR(1 g) = 0.059 mW/g; SAR(10 g) = 0.033 mW/g Maximum value of SAR (measured) = 0.082 mW/g Zoom Scan (7x7x7)/Cube 1: Measurement grid: dx=5mm, dy=5mm, dz=5mm Reference Value = 5.10 V/m; Power Drift = -0.037 dB Peak SAR (extrapolated) = 0.079 W/kg SAR(1 g) = 0.046 mW/g; SAR(10 g) = 0.027 mW/g Maximum value of SAR (measured) = 0.062 mW/g Test Date = 11/13/09 Ambient Temperature = 24.5 degree.c Liquid Temperature = Before 24.0degree.C , After 24.0 degree.C Test report No. : 29KE0214-HO-01-E Page : 75 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 CH9-1161/Body/Top/11b DBPSK 1Mbps/2437MHz Crest factor: 1 Medium: M2450 Medium parameters used: f = 2450 MHz; σ = 1.95 mho/m; ε r = 50.2; ρ = 1000 kg/m 3 Phantom section: Flat Section DASY4 Configuration: - Probe: EX3DV3 - SN3507; ConvF(7.68, 7.68, 7.68); Calibrated: 2009/02/12 - Sensor-Surface: 2mm (Mechanical…

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RF Exposure Info

Test report No. : 29KE0214-HO-01-E Page : 82 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 APPENDIX 3 : Test instruments Test report No. : 29KE0214-HO-01-E Page : 83 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 1. Equipment used Control No. Instrument Manufacturer Model No Serial No Test Item Calibration Date * Interval(month) MAT-22 Attenuator(10dB) DC- 18GHz Orient Microwave BX10-0476-00 - Power Measurement 2009/03/24 * 12 MAT-20 Attenuator(10dB)(above 1GHz) HIROSE ELECTRIC CO.,LTD. AT-110 - Power Measurement 2009/01/16 * 12 MPM-09 Power Meter Anritsu ML2495A 6K00003348 Power Measurement 2009/09/09 * 12 MPSE-12 Power sensor Anritsu MA2411B 011598 Power Measurement 2009/09/09 * 12 MOS-04 Digital Humidity Indicator N.T NT-1800 MOS04 Power Measurement 2009/02/04 * 12 MPM-01 Power Meter Agilent E4417A GB41290639 SAR 2009/02/17 * 12 MPSE-01 Power Sensor Agilent E9300B US40010300 SAR 2009/02/17 * 12 MPSE-03 Power sensor Agilent E9327A US40440576 SAR 2009/02/17 * 12 MAT-15 Attenuator(30dB) Agilent 8498A US40010300 SAR 2009/02/24 * 12 MSG-10 Signal Generator Agilent N5181A MY47421098 SAR 2009/06/30 * 12 MRFA-08 Pre Amplifier TSJ TCBP0206 - SAR 2009/03/25 * 12 MHDC-12 Dual Directional Coupler Hewlett Packard 772D 2839A0016 SAR - MNA-01 Network Analyzer Agilent/HP E8358A US41080381 SAR 2009/08/28 * 12 MDPK-01 Dielectric probe kit Agilent 85070D - SAR Pre Check MNCK-01 Type N Calibration Kit Agilent 85032F MY41495257 SAR 2009/08/28 * 12 MPB-03 Dosimetric E-Field Probe Schmid&Partner Engineering AG EX3DV3 3507 SAR 2009/02/12 * 12 MDAE-01 Data Acquisition Electronics Schmid&Partner Engineering AG DAE3 V1 509 SAR 2009/07/08* 12 COTS-MSTW-16 DASY4 Schmid&Partner Engineering AG DASY4 V4.7 Build71 - SAR - COTS-MSTW-17 S-Parameter Network Analyzer Agilent - - SAR - MDA-08 Dipole Antenna Schmid&Partner Engineering AG D5GHzV2 1020 SAR 2009/08/19 * 24 MDA-07 Dipole Antenna Schmid&Partner Engineering AG D2450V2 713 SAR 2008/09/08 * 24 MPF-02 2mmOval Flat Phantom ERI 4.0 Schmid&Partner Engineering AG QD VA 001B (ERI4.0) 1045 SAR - MOS-05 Thermo-Hygrometer Custom CTH-190 810201 SAR 2009/04/28 * 12 MOS-10 Digtal thermometer HANNA Checktemp-2 MOS-10 SAR 2009/01/15 * 12 MBM-13 Barometer Sunoh SBR121 873 SAR 2007/12/27 * 36 Muscle 2450MHz Daily check Target value ± 5% Muscle 5800MHz Daily check Target value ± 5 to 10% SAR room Daily check Ambient Noise<0.012W/kg The expiration date of the calibration is the end of the expired month. As for some calibrations performed after the tested dates, those test equipment have been controlled by means of an unbroken chains of calibrations Test report No. : 29KE0214-HO-01-E Page : 84 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 2. Dosimetry assessment setup These measurements were performed with the automated near-field scanning system DASY4 from Schmid & Partner Engineering AG (SPEAG). The system is based on a high precision robot (working range greater than 0.9 m), which positions the probes with a positional repeatability of better than +/- 0.02 mm. Special E- and H-field probes have been developed for measurements close to material discontinuity, the sensors of which are directly loaded with a Schottky diode and connected via highly resistive lines to the data acquisition unit. The SAR measurements were conducted with the dosimetry probe EX3DV3, SN: 3507(manufactured by SPEAG), designed in the classical triangular configuration and optimized for dosimetric evaluation. The probe has been calibrated according to the procedure described in [2] with accuracy of better than +/-10%. The spherical isotropy was evaluated with the procedure described in [3] and found to be better than +/-0.25 dB. The phantom used was the SAM Twin Phantom as described in FCC supplement C, IEEE P1528 and CENELEC EN50361. Test report No. : 29KE0214-HO-01-E Page : 85 of 131 Issued date : December 18, 2009 FCC ID : AZD162 UL Japan, Inc. Head Office EMC Lab. 4383-326 Asama-cho, Ise-shi, Mie-ken 516-0021 JAPAN Telephone : +81 596 24 8116 Facsimile : +81 596 24 8124 3. Configuration and peripherals The DASY4 system for performing compliance tests consist of the following items: 1. A standard high precision 6-axis robot (Stäubli RX family) with controller and software. An arm extension for accommodating the data acquisition electronics (DAE). 2. A dosimetric probe, i.e., an isotropic E-field probe optimized and calibrated for usage in tissue simulating liquid. The probe is equipped with an optical surface detector system. 3. A data acquisition electronic (DAE), which performs the signal amplification, signal multiplexing, AD-conversion, offset measurements, mechanical surface detection, collision detection, etc. The unit is battery powered with standard or rechargeable batteries. The signal is optically transmitted to the EOC. 4. The Electro-optical converter (EOC) performs the conversion between optical and electrical of the signals for the digital communication to the DAE and for the analog signal from the optical surface detection. The EOC is connected to the measurement server. 5. The function of the measureme…

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Contact Information

Applicant

Yoshihiro Funamizu(General Manager)
[email protected]81-44-330-6070Fax: 81-44-844-3938

Test Firm

UL Japan, Inc. Head office EMC Lab.Tetsuya Hashimoto
[email protected]+81-596-24-8116Fax: +81-596-24-8095

Technical Specifications

#Rule PartsFrequency RangePower Output
215C5.75 GHz - 5.83 GHz172.00 mW
Modular Type
Limited Single Modular Approval
Confidentiality
Long Term
Grant Notes
Power Output listed is Conducted. Limited Modular Approval.This transmitter has been tested and meets the FCC RF exposure guidelines when used with the Canon camera platform or one having similar construction and size as shown in the filing. The antenna(s) used for this transmitter must not be co-located or operating in conjunction with any other antenna. The highest reported SAR value is:0.855 W/kg.

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