I18Z61178-SEM01_SAR_Rev0 - 0816_4

FCC ID: 2ACCJH093

RF Exposure Info

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FCCID_4041392

6J
DASY5 Validation Report for Body TSL



Test Laboratory: SPEAG, Zurich, Switzerland

DUT: Dipole 750 MHz; Type: D750V3; Serial: D750V3 — SN:1017
                                                                                      Date: 19.07.2017




Communication System: UID 0 — CW; Frequency: 750 MHz
Medium parameters used: f = 750 MHz; o = 0.99 $/m; & = 55; p = 1000 kg/m*
Phantom section: Flat Section
Measurement Standard: DASY5 (IEEE/IEC/ANSI C63.19—2011)

DASY52 Configuration:

   *    Probe: EX3DV4 — SN7349; ConvF(10.35, 10.35, 10.35); Calibrated: 31.05.2017;

   e    Sensor—Surface: 1.4mm (Mechanical Surface Detection)

   *    Electronics: DAE4 Sn601; Calibrated: 28.03.2017

   *    Phantom: Flat Phantom 4.9 (Back); Type: QD OOR P49 AA; Serial: 1005

   «_   DASY52 52.10.0(1446); SEMCAD X 14.6.10(7417)


Dipole Calibration for Body Tissue/Pin=250 mW, d=15mm/Zoom Scan (7x7x7)/Cube 0:
Measurement grid: dx=5mm, dy=5mm, dz=5mm
Reference Value = 57.67 V/m; Power Drift = —0.03 dB
Peak SAR (extrapolated) = 3.34 W/kg
SAR(1 g) = 2.22 W/kg; SAR(10 g) = 1.45 W/kg
Maximum value of SAR (measured) = 2.96 W/kg


        dB
         0

        —2.20

        —4.40

        —6.60

        —8.80

        —11.00
                   0 dB = 2.96 W/kg =4.71 dBW/kg




Certificate No: D750V3—1017_Jul17               Page 7 of 8


3)S
(IIII
        Impedance Measurement Plot for Body TSL




                                                                       19 Jul 2017    14:53:13
                        §11    1 U FS          1149.266 a —3.4219 n 62.015 pF        750.000 000 MHz
                                                         .e l_—   ~—.




                 Av
                 16 *


                 H1d

                  CH2




                  Ca




                  Av
                  15°



                              START 550.000 000 MHz                          STOP 950.000 000 MHz




        Certificate No: D750V3—1017_Jul17                    Page 8 of 8


@TTL


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    Calibration Laboratory of                                           uym                                    S       Schweizerischer Kalibrierdienst




                                                               )§6
    Schmid & Partner                                                                                           C       Service suisse d‘étalonnage
      Engineering AG                                                                                                   Servizio svizzero di taratura
                                                                                                               S




                                                                                 /
    Zeughausstrasse 43, 8004 Zurich, Switzerland                        PAm¥®                                          Swiss Calibration Service




                                                                      N
                                                                        Ynlotes®

    Accredited by the Swiss Accreditation Service (SAS)                                                         Accreditation No.: SCS 0108
    The Swiss Accreditation Service is one of the signatories to the EA
    Multilateral Agreementfor the recognition of calibration certificates

    Client      CTTL—BJ (Auden)                                                                    Certificate No: D835V2—4d069_Jul17

    CALIBRATION CERTIFICATE
     Object                               D835V2 — SN:4d069


     Calibration procedure(s)             QA CAL—05.v9
                                          Calibration procedure for dipole validation kits above 700 MHz



     Calibration date:                    July 19, 2017


     This calibration certificate documents the traceability to national standards, which realize the physical units of measurements (S1).
     The measurements and the uncertainties with confidence probability are given on the following pages and are part of the certificate.


     All calibrations have been conducted in the closed laboratory facility: environment temperature (22 + 3)°C and humidity < 70%.


     Calibration Equipment used (M&TE critical forcalibration)


     Primary Standards                      ID #                      Cal Date (Certificate No.)                            Scheduled Calibration
     Power meter NRP                        SN: 104778                04—Apr—17 (No. 217—02521/02522)                       Apr—18
     Power sensor NRP—Z91                   SN: 103244                04—Apr—17 (No. 217—02521)                             Apr—18
     Power sensor NRP—Z91                   SN: 103245                04—Apr—17 (No. 217—02522)                             Apr—18
     Reference 20 dB Attenuator             SN: 5058 (20k)            07—Apr—17 (No. 217—02528)                             Apr—18
     Type—N mismatch combination            SN: 5047.2 / 06327        07—Apr—17 (No. 217—02529)                             Apr—18
     Reference Probe EX3DV4                 SN: 7349                  31—May—17 (No. EX3—7349_May17)                        May—18
     DAE4                                   SN: 601                   28—Mar—17 (No. DAE4—601_Mar17)                        Mar—18


     Secondary Standards                    ID #                      Check Date (in house)                                 Scheduled Check
     Power meter EPM—442A                   SN: GB37480704            07—Oct—15 (in house check Oct—16)                     In house check: Oct—18
     Power sensor HP 8481A                  SN: US37292783            07—Oct—15 (in house check Oct—16)                     In house check: Oct—18
     Power sensor HP 8481A                  SN: MY41092317            07—Oct—15 (in house check Oct—16)                     In house check: Oct—18
     RF generator R&S SMT—06                SN: 100972                15—Jun—15 (in house check Oct—16)                     In house check: Oct—18
     Network Analyzer HP 8753E              SN: US37390585            18—Oct—01 (in house check Oct—16)                     In house check: Oct—17


                                            Name                                   Function                                  Signature
     Calibrated by:                         Johannes Kurikka                       Laboratory Technician                      ]      s l



     Approved by:                           Katia Pokovic                          Technical Manager

                                                                                                                                         is
                                                                                                                            Issued: July 20, 2017
     This calibration certificate shall not be reproduced except in full without written approval of the laboratory.


    Certificate No: D835V2—44069_Jul17                                    Page 1 of 8




                                                                                                           Rseprg ie esn n ce regreee e n n ny


@TTL                                                                                       |


)
_




 Calibration
       A     Laboratory of                                                           S    Schweizerischer Kalibrierdienst
 Schmid & Partner                                                                    c    Service suisse d‘étalonnage
   Engineering AG                                                                         Servizio svizzero di taratura
 Zeughausstrasse 43, 8004 Zurich, Switzerland                                        S    Swiss Calibration Service



 Accredited by the Swiss Accreditation Service (SAS)                                  Accreditation No.: SCS 0108
 The Swiss Accreditation Service is one of the signatories to the EA
 Multilateral Agreement for the recognition of calibration certificates

 Glossary:
 TSL                          tissue simulating liquid
 ConvF                        sensitivity in TSL / NORM x,y,z
 N/A                          not applicable or not measured

 Calibration is Performed According to the Following Standards:
    a) IEEE Std 1528—2013, "IEEE Recommended Practice for Determining the Peak Spatial—
       Averaged Specific Absorption Rate (SAR) in the Human Head from Wireless
          Communications Devices: Measurement Techniques", June 2013
     b) IEC 62209—1, "Measurement procedure for the assessment of Specific Absorption Rate
        (SAR) from hand—held and body—mounted devices used next to the ear (frequency range of
        300 MHz to 6 GHz)", July 2016
     c) IEC 62209—2, "Procedure to determine the Specific Absorption Rate (SAR) for wireless
        communication devices used in close proximity to the human body (frequency range of 30
        MHz to 6 GHz)", March 2010
     d) KDB 865664, "SAR Measurement Requirements for 100 MHz to 6 GHz"

 Additional Documentation:
    e) DASY4/5 System Handbook

 Methods Applied and Interpretation of Parameters:
    e Measurement Conditions: Further details are available from the Validation Report at the end
      of the certificate. All figures stated in the certificate are valid at the frequency indicated.
    e Antenna Parameters with TSL: The dipole is mounted with the spacer to position its feed
      point exactly below the center marking of the flat phantom section, with the arms oriented
      parallel to the body axis.
    e Feed Point Impedance and Return Loss: These parameters are measured with the dipole
      positioned under the liquid filled phantom. The impedance stated is transformed from the
      measurement at the SMA connector to the feed point. The Return Loss ensures low
      reflected power. No uncertainty required.
    e Electrical Delay: One—way delay between the SMA connector and the antenna feed point.
      No uncertainty required.
    e SAR measured: SAR measured at the stated antenna input power.
    e SAR normalized: SAR as measured, normalized to an input power of 1 W at the antenna
           connector.
      *    SAR for nominal TSL parameters: The measured TSL parameters are used to calculate the
           nominal SAR result.
   The reported uncertainty of measurement is stated as the standard uncertainty of measurement
   multiplied by the coverage factor k=2, which for a normal distribution corresponds to a coverage
   probability of approximately 95%.




 Certificate No: D835V2—40069_Jul17                               Page 2 of 8




                                                                                Ns veperg n sn en n mn n nnee n e e nc n n y   >


(llélll,
           Measurement Conditions
              DASY system configuration, as far as not given on page 1.
               DASY Version                                             DASY5                                  V52.10.0
                Extrapolation                                   Advanced Extrapolation
                Phantom                                          Modular Flat Phantom
                Distance Dipole Center — TSL                              15 mm                              with Spacer
                Zoom Scan Resolution                              dx, dy, dz =5 mm

                Frequency                                          835 MHz x 1 MHz


           Head TSL parameters
              The following parameters and calculations were applied.
                                                                          Temperature        Permittivity           Conductivity
                Nominal Head TSL parameters                                  22.0 °C             41.5                0.90 mho/m
                Measured Head TSL parameters                              (22.0 + 0.2) °C     40.8 #6 %           0.91 mho/m + 6 %
                Head TSL temperature change during test                      <0.5 °C                                       ~——

           SAR result with Head TSL

                SAR averaged over 1 cm* (1 g) of Head TSL                  Condition
                SAR measured                                        250 mW input power                      2.37 W/kg
                SAR for nominal Head TSL parameters                     normalized to 1W           9.37 W/kg a 17.0 % (k=2)


                SAR averaged over 10 cm* (10 g) of Head TSL                 condition
                SAR measured                                        250 mW input power                      1.53 W/kg
                SAR for nominal Head TSL parameters                     normalized to 1W           6.06 Wikg + 16.5 % (k=2)


           Body TSL parameters
              The following parameters and calculations were applied.
                                                                          Temperature        Permittivity            Conductivity
                 Nominal Body TSL parameters                                 22.0 °C              55.2                0.97 mho/m
                 Measured Body TSL parameters                             (22.0 1 0.2) °C     54.8 £ 6 %          1.01 mho/m +6 %
                 Body TSL temperature change during test                     <0.5 °C               ——

           SAR result with Body TSL

                 SAR averaged over 1 cm* (1 g) of Body TSL                  Condition
                 SAR measured                                       250 mW input power                      243 W/kg
                 SAR for nominal Body TSL parameters                    normalized to 1W           9.41 W/kg + 17.0 % (k=2)

                 SAR averaged over 10 cm‘ (10 g) of Body TSL                condition
                 SAR measured                                       250 mW input power                    1.57 Wikg
                 SAR for nominal Body TSL parameters                    normalized to 1W           6.12 W/kg * 16.5 % (k=2)



           Certificate No: D835V2—40069_Jul17                    Page 3 of 8




                                                                                            nevvmu en n e n mm n ng ce n c n n >


(“ém,
        Appendix (Additional assessments outside the scope of SCS 0108)

        Antenna Parameters with Head TSL

              Impedance, transformed to feed point                                           52.1 Q —1.2 jQ
              Return Loss                                                                       — 82.4 dB



        Antenna Parameters with Body TSL

              Impedance, transformed to feed point                                           47.9 Q — $.9 jQ
              Return Loss                                                                      — 26.9 dB




        General Antenna Parameters and Design

            I Electrical Delay (one direction)                                                  1.392 ns


        After long term use with 100W radiated power, only a slight warming of the dipole near the feedpoint can be measured.

        The dipole is made of standard semirigid coaxial cable. The center conductor of the feeding line is directly connected to the
        second arm of the dipole. The antenna is therefore short—circuited for DC—signals. On some of the dipoles, small end caps
        are added to the dipole arms in order to improve matching when loaded according to the position as explained in the
        "Measurement Conditions" paragraph. The SAR data are not affected by this change. The overall dipole length is still
        according to the Standard.
        No excessive force must be applied to the dipole arms, because they might bend or the soldered connections near the
        feedpoint may be damaged.



        Additional EUT Data

              Manufactured by                                                                    SPEAG
              Manufactured on                                                              November 09, 2007




        Certificate No: D835V2—40069_Jul17                        Page 4 of 8




                                                                                            ~nivmua n nc ce n n n ogn   ns


DASY5 Validation Report for Head TSL

                                                                                         Date: 19.07.2017
Test Laboratory: SPEAG, Zurich, Switzerland

DUT: Dipole 835 MHz; Type: D835V2; Serial: D835V2 — SN:4d069

Communication System: UID 0 — CW; Frequency: 835 MHz
Medium parameters used: f = 835 MHz; 0 = 0.91 $/m; & = 40.8; p = 1000 kg/m*
Phantom section: Flat Section
Measurement Standard: DASY5 (IEEE/IEC/ANSI C63.19—2011)

DASY52 Configuration:

   e   Probe: EX3DV4 — SN7349; ConvF(10.07, 10.07, 10.07); Calibrated: 31.05.2017;

   *   Sensor—Surface: 1.4mm (Mechanical Surface Detection)

   e   Electronics: DAE4 Sn601; Calibrated: 28.03.2017

   *   Phantom: Flat Phantom 4.9 (front); Type: QD OOL P49 AA; Serial: 1001

   e    DASY52 52.10.0(1446); SEMCAD X 14.6.10(7417)


Dipole Calibration for Head Tissue/Pin=250 mW, d=15mm/Zoom Scan (7x7x7)/Cube 0:
Measurement grid: dx=5mm, dy=5mm, dz=5mm
Reference Value = 62.08 V/m; Power Drift = —0.02 dB
Peak SAR (extrapolated) = 3.65 W/kg
SAR(1 g) = 2.37 W/kg; SAR(10 g) = 1.53 W/kg
Maximum value of SAR (measured) = 3.21 W/kg


       dB
        0

        —2.20

        ~4.40

        —6.60

        —8.80


        —11.00
                   0 dB =3.21 W/kg = 5.07 dBW/kg




Certificate No: D835V2—40069_Jul17             Page 5 of 8




                                                                    Nnpeg n n en n en n en n n n ns n n n   ny   >


®
Impedance Measurement Plot for Head TSL




                                                             19 Jul 2017 og:s4:25
         CH] sin      4 ouors        1: 52145 a   —14758 e 16244 pF      a35.000 aco MHz
                                                  ==1>

         Del

         Ca




         Avg
         16


         H1d

          CH2




          Ca




          Av
          16°

          H1d

                    START 635.000 000 MHz                           STOP 1 035.000 000 MHz




Certificate No: D835V2—4d069_Jul17                  Page 6 of 8




                                                                           Nn y rg nn m nge>


DASY5 Validation Report for Body TSL

                                                                                           Date: 19.07.2017

Test Laboratory: SPEAG, Zurich, Switzerland

DUT: Dipole 835 MHz; Type: D835V2; Serial: D835V2 — SN:4d069

Communication System: UID 0 — CW; Frequency: 835 MHz
Medium parameters used: f = 835 MHz; 0 = 1.01 S/m; & = 54.8; p = 1000 kg/m*
Phantom section: Flat Section
Measurement Standard: DASYS (IEEE/IEC/ANSI C63.19—2011)

DASY52 Configuration:

   *    Probe: EX3DV4 — SN7349; ConvF(10.2, 10.2, 10.2); Calibrated: 31.05.2017;

   *    Sensor—Surface: 1.4mm (Mechanical Surface Detection)

   e    Electronics: DAE4 Sn601; Calibrated: 28.03.2017

   *    Phantom: Flat Phantom 4.9 (Back); Type: QD OOR P49 AA; Serial: 1005

   «_   DASY52 52.10.0(1446); SEMCAD X 14.6.10(7417)


Dipole Calibration for Body Tissue/Pin=250 mW, d=15mm/Zoom Scan (7x7x7)/Cube 0:
Measurement grid: dx=5mm, dy=5mm, dz=5mm
Reference Value = 59.35 V/m; Power Drift = —0.03 dB
Peak SAR (extrapolated) = 3.67 W/kg
SAR(1 g) = 243 W/kg; SAR(10 g) = 1.57 W/kg
Maximum value of SAR (measured) = 3.22 W/kg

        dB
         0

        —2,20

        —4.40

        —6.60

        —8.80


        —11.00
                   0 dB = 3.22 W/kg = 5.08 dBW/kg




Certificate No: D835V2—40069_Jul17             Page 7 of 8




                                                                     Nnpeg n n en n en n en n n n ns n n n   ny   >


Impedance Measurement Plot for Body TSL




                                                               19 Jul 2017    @9:16:58
         CHI) sii     1 U FS         1:47.896 a   —3.6926 n 48.966 pF
                                                  *
                                                                             835.000 000 MHz




         fAvq
         16


         H1d

          CH2




         Ca




          Av
          16°

          H1d

                    START 635.000 000 MHz                            STOP 1 035.000 000 MHz




Certificate No: D835V2—40069_Jul17                   Page 8 of 8




                                                                             Ns epgrge es


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             s      e                                                       uo
        cahb':a"on Laboratory of                                         S\\\t\-////?”                            S       Schweizerischer Kalibrierdienst
        Schm[d & I?artner                                               ili‘
                                                                           VE”E—H’_                               c Service suisse d‘étalonnage
          Engmeerlng AG                                                  Lrorne                                           Servizio svizzero di taratura
        Zeughausstrasse 43, 8004 Zurich, Switzerland                     {',,///-\\\‘\v‘                          S       gwiss Calibration Service
                                                                              Ailals

        Accredited by the Swiss Accreditation Service (SAS)                                                        Accreditation No.: SCS 0108
        The Swiss Accreditation Service is one of the signatories to the EA
        Multilateral Agreementfor the recognition of calibration certificates

        Client       CTTL—BJ (Auden)                                                                  Certificate No: D1750V2—1003_Jul17

        CALIBRATION CERTIFICATE
         Object                               D1750V2 — SN:10083


         Calibration procedure(s)             QA CAL—05.v9
                                              Calibration procedure for dipole validation kits above 700 MHz



         Calibration date:                    July 21, 2017


         This calibration certificate documents the traceability to national standards, which realize the physicalunits of measurements (S1).
         The measurements and the uncertainties with confidence probability are given on the following pages and are part of the certificate.


         All calibrations have been conducted in the closed laboratory facility: environment temperature (22 + 3)°C and humidity < 70%.


         Calibration Equipment used (M&TE critical for calibration)


         Primary Standards                     ID #                      Cal Date (Certificate No.)                            Scheduled Calibration
         Power meter NRP                       SN: 104778                04—Apr—17 (No. 217—02521/02522)                       Apr—18
         Power sensor NRP—Z91                  SN: 103244                04—Apr—17 (No. 217—02521)                             Apr—18
         Power sensor NRP—Z91                  SN: 103245                04—Apr—17 (No. 217—02522)                             Apr—18
         Reference 20 dB Attenuator            SN: 5058 (20k)            07—Apr—17 (No. 217—02528)                             Apr—18
         Type—N mismatch combination           SN: 5047.2 / 06327        07—Apr—17 (No. 217—02529)                             Apr—18
         Reference Probe EX3DV4                SN: 7349                  31—May—17 (No. EX3—7349_May17)                        May—18
         DAE4                                  SN: 601                   28—Mar—17 (No. DAE4—601_Mar17)                        Mar—18


         Secondary Standards                   ID #                      Check Date (in house)                                 Scheduled Check
         Power meter EPM—442A                  SN: GB37480704            07—Oct—15 (in house check Oct—16)                     In house check: Oct—18
         Power sensor HP 8481A                 SN: US37202783            07—Oct—15 (in house check Oct—16)                     In house check: Oct—18
         Power sensor HP 8481A                  SN: MY41092317           07—Oct—15 (in house check Oct—16)                     In house check: Oct—18
         RF generator R&S SMT—06                SN: 100972                15—Jun—15 (in house check Oct—16)                    In house check: Oct—18
         Network Analyzer HP 8753E              SN: US37390585            18—Oct—01 (in house check Oct—16)                    In house check: Oct—17


                                                Name                                   Function                                 Signature
         Calibrated by:                        Michael Weber                           Laboratory Technician                   %—



         Approved by:                          Katja Pokovic                          Technical Manager                    W



                                                                                                                               Issued: July 24, 2017
         This calibration certificate shall not be reproduced exceptin full without written approval of the laboratory.


        Certificate No: D1750V2—1003_Jul17                                    Page 1 of 8




                                                                                                               ~~oruancgim c o           y


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                                                                                                    C


   a    s                                                     you 1
Callbratlon Laboratory of                                   s\‘\t\_////‘/,;             S     Schweizerischer Kalibrierdienst
Schm[d & Partner                                           m                            c     Service suisse d‘étalonnage
  Engmeenng AG                                             T ong                              Servizio svizzero di taratura
Zeughausstrasse 43, 8004 Zurich, Switzerland                {f/,,/I//_\\\\‘\\‘}         S     Swiss Calibration Service
                                                                rhiitabe

Accredited by the Swiss Accreditation Service (SAS)                                      Accreditation No.: SCS 0108
The Swiss Accreditation Service is one of the signatories to the EA
Multilateral Agreementfor the recognition of calibration certificates

Glossary:
TSL                          tissue simulating liquid
ConvF                        sensitivity in TSL / NORM x,y,z
N/A                          not applicable or not measured

Calibration is Performed According to the Following Standards:
   a) IEEE Std 1528—2013, "IEEE Recommended Practice for Determining the Peak Spatial—
      Averaged Specific Absorption Rate (SAR) in the Human Head from Wireless
      Communications Devices: Measurement Techniques", June 2013
   b) IEC 62209—1, "Measurement procedure for the assessment of Specific Absorption Rate
      (SAR) from hand—held and body—mounted devices used next to the ear (frequency range of
         300 MHz to 6 GHz)", July 2016
    c) IEC 62209—2, "Procedure to determine the Specific Absorption Rate (SAR) for wireless
       communication devices used in close proximity to the human body (frequency range of 30
       MHz to 6 GHz)", March 2010
    d) KDB 865664, "SAR Measurement Requirements for 100 MHz to 6 GHz"

Additional Documentation:
   e) DASY4/5 System Handbook

Methods Applied and Interpretation of Parameters:
     Measurement Conditions: Further details are available from the Validation Report at the end
     of the certificate. All figures stated in the certificate are valid at the frequency indicated.
     Antenna Parameters with TSL: The dipole is mounted with the spacer to position its feed
     point exactly below the center marking of the flat phantom section, with the arms oriented
     paralle! to the body axis.
     Feed Point Impedance and Return Loss: These parameters are measured with the dipole
     positioned under the liquid filled phantom. The impedance stated is transformed from the
     measurement at the SMA connector to the feed point. The Return Loss ensures low
     reflected power. No uncertainty required.
     Electrical Delay: One—way delay between the SMA connector and the antenna feed point.
     No uncertainty required.
     SAR measured: SAR measured at the stated antenna input power.
     SAR normalized: SAR as measured, normalized to an input power of 1 W at the antenna
         connector.
         SAR for nominal TSL parameters: The measured TSL parameters are used to calculate the
         nominal SAR result.
  The reported uncertainty of measurement is stated as the standard uncertainty of measurement
  multiplied by the coverage factor k=2, which for a normal distribution corresponds to a coverage
  probability of approximately 95%.




Certificate No: D1750V2—1003_Jul17                               Page 2 of 8




                                                                                  Ns veperg n ragn en n en n en en n e n n n   y >


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 Measurement Conditions
    DASY system configuration, as far as not given on page 1.
      DASY Version                                              DASY5                               V52.10.0
      Extrapolation                                   Advanced Extrapolation
      Phantom                                         Modular Flat Phantom

      Distance Dipole Center — TSL                              10 mm                              with Spacer
      Zoom Scan Resolution                              dx, dy, dz =5 mm
      Frequency                                         1750 MHz & 1 MHz



 Head TSL parameters
    The following parameters and calculations were applied.
                                                                Temperature        Permittivity         Conductivity
      Nominal Head TSL parameters                                  22.0 °C             40.1              1.37 mho/m

      Measured Head TSL parameters                              (22.0 + 0.2) °C     39.0 + 6 %        1.35 mho/m £ 6 %

      Head TSL temperature change during test                      <0.5 °C                                     ———

 SAR result with Head TSL

      SAR averaged over 1 cm‘ (1 g) of Head TSL                  Condition
      SAR measured                                        250 mW input power                      9.15 W/kg
      SAR for nominal Head TSL parameters                     normalized to 1W          36.7 Wikg * 17.0 % (k=2)

      SAR averaged over 10 cm* (10 g) of Head TSL                 condition
      SAR measured                                        250 mW input power                      4.84 Wikg
      SAR for nominal Head TSL parameters                     normalized to 1W          19.4 Wikg £ 16.5 % (k=2)


 Body TSL parameters
    The following parameters and calculations were applied.
                                                                Temperature        Permittivity         Conductivity

       Nominal Body TSL parameters                                 22.0 °C             58.4              1.49 mho/m
       Measured Body TSL parameters                             (22.0 £ 0.2) °C     53.3 26 %         1.49 mho/m £ 6 %
       Body TSL temperature change during test                     <0.5 °C                                     ———

 SAR result with Body TSL

       SAR averaged over 1 cm* (1 g) of Body TSL                  Condition
       SAR measured                                       250 mW input power                      9.29 W/kg
       SAR for nominal Body TSL parameters                    normalized to 1W          37.1 Wikg + 17.0 % (k=2)

       SAR averaged over 10 cm* (10 g) of Body TSL                condition
       SAR measured                                       250 mW input power                   4.94 Wikg
       SAR for nominal Body TSL parameters                    normalized to 1W          19.8 Wikg * 16.5 % (k=2)



 Certificate No: D1750V2—1003_Juf17                    Page 3 of 8




                                                                                  Nn epeg n n en n n n en c ++ >


(fléN)
        Appendix (Additional assessments outside the scope of SCS 0108)

        Antenna Parameters with Head TSL

              Impedance, transformed to feed point                                          50.9 Q + 1.1 jQ
              Return Loss                                                                      —37.1 dB


        Antenna Parameters with Body TSL

              Impedance, transformed to feed point                                          47.0 Q + 0.1 jQ
              Return Loss                                                                      — 30.2 dB




        General Antenna Parameters and Design

            | Electrical Delay (one direction)                                                  1.213 ns
        After long term use with 100W radiated power, only a slight warming of the dipole near the feedpoint can be measured.

        The dipole is made of standard semirigid coaxial cable. The center conductorof the feeding line is directly connected to the
        second arm of the dipole. The antenna is therefore short—circuited for DC—signals. On some of the dipoles, small end caps
        are added to the dipole arms in order to improve matching when loaded according to the position as explained in the
        "Measurement Conditions" paragraph. The SAR data are not affected by this change. The overall dipole length is still
        according to the Standard.
        No excessive force must be applied to the dipole arms, because they might bend or the soldered connections near the
        feedpoint may be damaged.



        Additional EUT Data

              Manufactured by                                                                    SPEAG
              Manufactured on                                                                July 30, 2008




        Certificate No: D1750V2—1003_Jul17                       Page 4 of 8




                                                                                            ~nnmuan n n en c n c ogn on >


DASY5 Validation Report for Head TSL

                                                                                        Date: 21.07.2017
Test Laboratory: SPEAG, Zurich, Switzerland

DUT: Dipole 1750 MHz; Type: D1750V2; Serial: D1750V2 — SN: 1003

Communication System: UID 0 — CW; Frequency: 1750 MHz
Medium parameters used: f= 1750 MHz; 0 = 1.35 S/m; & = 39; p = 1000 kg/m‘
Phantom section: Flat Section
Measurement Standard: DASY5 (IEEE/IEC/ANSI €63.19—2011)

DASY52 Configuration:

   *    Probe: EX3DV4 — SN7349; ConvF(8.73, 8.73, 8.73); Calibrated: 31.05.2017;

   *    Sensor—Surface: 1.4mm (Mechanical Surface Detection)

   e    Electronics: DAE4 Sn601; Calibrated: 28.03.2017

   *    Phantom: Flat Phantom 5.0 (front); Type: QD 000 P50 AA; Serial: 1001

   «_   DASY52 52.10.0(1446); SEMCAD X 14.6.10(7417)


Dipole Calibration for Head Tissue/Pin=250 mW, d=10mm/Zoom Scan (7x7x7)/Cube 0:
Measurement grid: dx=5mm, dy=5mm, dz=5mm
Reference Value = 104.4 V/m; Power Drift = —0.05 dB
Peak SAR (extrapolated) = 17.0 W/kg
SAR(1 g) = 9.15 W/kg; SAR(10 g) = 4.84 W/kg
Maximum value of SAR (measured) = 14.0 W/kg


        dB


        —3.60
        —£.20
        —10.80
        —14.40
        —18.00
                   0 dB = 14.0 W/kg = 11.46 dBW/kg




Certificate No: D1750V2—1003_Jul17              Page 5 of 8




                                                                     Nspeg n snn n n n en n n n e n en   ny   >


Impedance Measurement Plot for Head TSL




                                                                    21 Jul 2017 11:01:47?
          CHI) sii     i u Fs          1: 50.939 a    1.0566 a   96.097 pH      1 750.000 0oo MHz
                                               ,"/‘              ‘\‘-




          Av
          16 *


          H1d

          CH2




          Ca




          Av
          16°

          H1d

                     START 1 550.000 @00 MHz                              STOP 1 950.000 000 MHz




Certificate No: D1750V2—1003_Jul17                      Page 6 of 8




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Document Created: 2018-10-17 16:38:51
Document Modified: 2018-10-17 16:38:51

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