
Text extracted from the exhibit documents filed with the FCC. Open a document above to read the original.
EAPro ® ‑Gateway USER MANUAL Page ii Winland Electronics, Inc. Limitations of the Alarm System or Device. While your alarm system or device is reliable and sophisticated, it does not offer guaranteed protection against burglary, fire or other emergencies. Any security product, whether com‑ mercial or residential, is subject to compromise or failure-to-warn for a variety of reasons. These include: • Individuals may gain access through unprotected openings or have the technical sophistication to bypass an alarm sensor or disconnect an alarm warning device. • Monitoring devices will not operate without power. Devices powered by AC will not work if their AC power supply is off for any reason. If the system has battery backup, batter‑ ies that are not maintained can fail to provide the necessary power for devices to function properly. • Alarm warning devices such as sirens, bells, and horns may not alert people or awaken sleepers if they are located on the other side of closed or partly closed doors. If warning devices are on a different level of the residence from the bedrooms, they are less likely to awaken or alert people inside the bedrooms. • Telephone lines needed to transmit alarm signals from a premises to a central monitoring station may be out of service, and are subject to compromise by sophisticated means of attack. • Signals sent by wireless transmitters may be blocked or reflected by metal before they reach the alarm receiver. Even if the signal path has been recently checked during a weekly test, blockage can occur if a metal object is moved into the path. • Even if the system responds to the emergency as intended and is a monitored alarm system, the authorities may not respond appropriately. • This equipment, like other electrical devices, is subject to component failure. • The most common cause of an alarm system not functioning properly is due to inadequate maintenance. Your alarm system should be tested weekly to make sure all de‑ tection devices are operating properly. Your control panel and keypads should be tested as well. Installing an alarm system may make you eligible for lower insurance rates, but an alarm system is not a substitute for insurance. Homeowners, property owners, and renters should continue to insure their lives and property. Page iii Record of Revisions REV NO.DATEDESCRIPTION D-011-0177 Rev ADecember 2022Initial Issue D-011-0177 Rev A.1Janurary 2023Added USB Model to known to work (pg 61) Modified Radiating Power for US Sensor to 11.9 dBm (pg 65) Removed Channel 8 from RF Channels (pg 65) Notice This document will refer to INSIGHT throughout. INSIGHT is a cloud based platform for remote viewing and management of the EA800-ip device and the EAPro ® -Gateway. INSIGHT is sold separately and is not required to use the EAPro ® -Gateway. The EAPro ® -Gateway, plus sensors, can be used in standalone mode, or along with INSIGHT in a connected mode. The EAPro ® -Gateway monitors the environmental conditions detected by connected sensors and provides alarm signals when monitored conditions at any sensor exceeds the user- programmable set points. Winland INSIGHT provides complete real time cloud-based visibility of data from the EAPro ® -Gateway monitored critical condition environments. The system’s detailed and customized response protocols, data logs, and extreme flexibility, provide the fastest resolution of incidents by making the notification immediately actionable. Note: As of firmware 22.12.29, the EAPro ® ‑Gateway sends notifications to INSIGHT, however INSIGHT does not send out notifications to text/emails as this time. Page iv Winland Electronics, Inc. Page Left Blank Page v TABLE OF CONTENTS Foreword 1 Safety Information 1 General Information 4 Overview 4 How to Use This Manual 5 Symbols On the Product or Manual Labeling 6 EAPro ® -Gateway 8 Home Screen 10 Access Control 13 Connections 16 Configuration Parameters 17 Network Toggle 17 Sensor Programming and Parameter Descriptions 23 Relay Operation 25 Data Logs 26 Installation 28 Installation Tools and Supplies 28 Power Requirements 28 Mount the Rear Plate 29 Connecting Power 29 Initial Start-Up Procedure 30 Install Wired Sensors 31 Connect Wired Sensors 31 Install Wireless Sensor 32 Programming 35 Main Menu 35 Configure System 36 Add Sensor 37 Add User 40 Set System Time and Date Format 40 Set Date and Time 41 Set Lock Mode 41 Select RF Channel 42 Relays Trigger Status 42 Configure Relay State 42 Buzzer Triggers 43 Light Triggers 43 Operation 45 Acknowledge sensor reading or clear min/max 45 Clear Alarm or silence alarm 45 View Sensor Details 45 View Notification Log 46 View Event Log 46 View Sensor Logs 46 View User Logs 47 View About 47 Clear Notification Logs 47 Page vi Winland Electronics, Inc. Clear Sensor Logs 48 Export Logs 48 NOTIFICATION Logs 48 Maintenance 49 Edit Sensor 49 Replace Wireless Transmitter 55 Delete Sensor 55 Pause Sensor 55 Test Sensor 56 Edit User 57 Delete User 57 Configure User Mode 57 Sync Users 58 Save System Configuration 58 Edit Network Wi‑Fi 59 Edit Ethernet Settings 60 Update Firmware 61 Factory Reset 62 Reboot System 63 Troubleshooting 64 Winland Technical Support 64 Specifications 65 Warranty and Service Information 68 Page vii LIST OF FIGURES Figure 1: EAPro ® ‑Gateway 4 Figure 2: EAPro ® -Gateway Block Diagram 8 Figure 3: EAPro ® ‑Gateway Front 8 Figure 4: Home Screen Sensor Tile 11 Figure 5: Home Screen Tile Examples 12 Figure 6: Connections 16 Figure 7: Network Toggles 18 Figure 8: Wiring Diagram for 4–20mA Sensor – PWR OUT Supply 21 Figure 9: Wiring Diagram for 4–20mA Sensor – External Power Supply 21 Figure 10: Wired Sensor Connection: Temperature Sensor, WaterBug®, and Dry Contact 31 Figure 11: Wired Sensor Connection: HA‑III+ 32 Figure 12: Wired Sensor Connection: 4–20mA 32 Figure 13: Wireless Models 33 Figure 14: Wireless Sensor MAC Address and ID Location 33 Figure 15: Wireless 4‑20mA & 0‑5V sensors 34 Figure 16: Main Menu Locked 35 Figure 17: Main Menu Unlo…
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424 North Riverfront Drive, Suite 200 • Mankato, MN 56001 • 1-800-635-4269 • www.winland.com October 17, 2022 Federal Communications Commission Subject: Cover Letter for FCC application for Certification of FCC ID: V5SEAPWLSS-0822 TO WHOM IT MAY CONCERN: The model EAPRO-WTS, EAPRO-WHS, EAPRO-WMFT, EAPRO-WMFT-R is a remote wireless accessory device used in conjunction with an EAPRO-GTWY for environmental monitoring. These devices communicate wirelessly via LoRa over the frequency bands 2405MHz to 2479MHz. These wireless devices are used to monitor and communicate temperature (WTS), humidity (WHS), wired sensor data (WMFT), or wired sensor data w/relay control (WMFT-R). NextGen RF Design, Inc. is an engineering services company contracted by Winland Electronics to design and manufacture the EAPro product family, which is inclusive of the gateway and wireless sensors. This also includes facilitating the regulatory testing, documentation, review and approval of test reports, etc. This application is to seek original certification, as compliant with FCC CFR47 Rule Parts 15.247. Sincerely, Kory Meyers NextGen RF Design Inc. Sr. Project Engineer
424 North Riverfront Drive, Suite 200 • Mankato, MN 56001 • 1-800-635-4269 • www.winland.com November 12, 2022 Federal Communications Commission Authorization and Evaluation Division 7435 Oakland Mills Road Columbia, Maryland 21046 Re: Request for confidentiality FCC ID: V5SEAPWLSS-0822 We hereby respectfully request that under the provision of 47 CFR 0.459 and 0.457(d) the documents listed below and attached with this application for certification be provided with confidential status. • Altium BOM – WHS Rev3.xlsx • Altium BOM – WMFT Rev3.xlsx • Altium BOM – WTS Rev3.xlsx • Altium BOM – WMFTR Rev3.xlsx • Winland Sensor Frequency Block Diagram Rev 2.pdf • EAPro Operational Description (Gateway and Sensors) Rev A.docx • Schematic, Wireless Sensor - WHS, Rev 3.pdf • Schematic, Wireless Sensor - WMFT, Rev 3.pdf • Schematic, Wireless Sensor - WTS, Rev 3.pdf • Schematic, Wireless Sensor - WMFTR, Rev 3.pdf Any exhibit / information for which we have requested confidentiality, but which may not be accorded such treatment by the FCC, should be returned to us. The documents listed above contain trade secrets that are treated as confidential by us. Substantial competitive harm to us could result should they be made available to the public Sincerely, Kory M. Meyers NextGen RF Design Inc. Senior Project Engineer
424 North Riverfront Drive, Suite 200 • Mankato, MN 56001 • 1‐800‐635‐4269 • www.winland.com August 22, 2022 To whom it may concern, We, the undersigned, hereby authorize Kory Meyers ([email protected]) of NextGen RF Design to act on our behalf, as our agent, in the following matters related to the FCC and/or Industry Canada approval of our products: report submittal, related correspondence, the signing of all documents relating to these matters, and any other lawful activity necessary to obtain such certification. Any act carried out by Kory Meyers of NextGen RF Design within the scope of this authorization shall have the same effect as our own. This authorization shall expire 12 months from original date. Sincerely, Mark Ubben Director of Technology Winland Electronics, Inc. [email protected]
Winland Wireless Sensor. Photos for Submittal (external) All six sides are the same for all variants Sensor Right Edge Sensor Left Edge Sensor Bottom Edge Sensor Top Edge Sensor Back Temp Sensor Front (EAPRO-WTS) Humidity Sensor Front (EAPRO-WHS) Multi-Function Sensor Front (EAPRO-WMFT) Multi-Function with Relay Front (EAPRO-WMFT-R)
Adhesive label applied directly to housing, label specs & location indicated as follows:
Winland Wireless Sensor. Photos for Submittal (internal) Shield (SH1) is not populated for this product. Temp Sensor Opened, PCB Secondary (EAPRO-WTS) Temp Sensor PCB Primary (EAPRO-WTS) Temp Sensor PCB Primary (EAPRO-WTS) Temp Sensor PCB Secondary (EAPRO-WTS) Humidity Sensor Opened, PCB Secondary (EAPRO-WHS) Humidity Sensor PCB Primary (EAPRO-WHS) Humidity Sensor PCB Primary (EAPRO-WHS) Humidity Sensor PCB Secondary (EAPRO-WHS) Multi-Function Opened, PCB Secondary (EAPRO-WMFT) Multi-Function PCB Primary (EAPRO-WMFT) Multi-Function Sensor PCB Primary (EAPRO-WMFT) Multi-Function Sensor PCB Secondary (EAPRO-WMFT) Multi-Function with Relay Opened, PCB Secondary (EAPRO-WMFT-R) Multi-Function with Relay PCB Primary (EAPRO-WMFT-R) Multi-Function with Relay PCB Primary (EAPRO-WMFT-R) Multi-Function with Relay PCB Secondary (EAPRO-WMFT-R)
This report must not be used to claim product certification, approval, or endorsement by A2LA or any agency of the U.S. Government. This Report shall not be reproduced, except in full without written approval of the laboratory. NextGen RF Design Titan Gateway and Titan Sensor Report: NGRF0059.0, Issue Date: November 22, 2022 REVISION HISTORY 2018.07.17 Revision Number Description Date (yyyy-mm-dd) Page Number 00 None Report No. NGRF00592/30 ACCREDITATIONS AND AUTHORIZATIONS 2021.09.01 United States FCC - Designated by the FCC as a Telecommunications Certification Body (TCB). Certification chambers, Open Area Test Sites, and conducted measurement facilities are listed with the FCC. A2LA - Each laboratory is accredited by A2LA to ISO / IEC 17025, and as a product certifier to ISO / IEC 17065 which allows Element to certify transmitters to FCC and IC specifications. Canada ISED - Recognized by Innovation, Science and Economic Development Canada as a Certification Body (CB) and as a CAB for the acceptance of test data. European Union European Commission – Recognized as an EU Notified Body validated for the EMCD and RED Directives. United Kingdom BEIS – Recognized by the UK as an Approved Body under the UK Radio Equipment and UK EMC Regulations. Australia/New Zealand ACMA - Recognized by ACMA as a CAB for the acceptance of test data. Korea MSIT / RRA - Recognized by KCC’s RRA as a CAB for the acceptance of test data. Japan VCCI - Associate Member of the VCCI. Conducted and radiated measurement facilities are registered. Taiwan BSMI – Recognized by BSMI as a CAB for the acceptance of test data. NCC - Recognized by NCC as a CAB for the acceptance of test data. Singapore IDA – Recognized by IDA as a CAB for the acceptance of test data. Israel MOC – Recognized by MOC as a CAB for the acceptance of test data. Hong Kong OFCA – Recognized by OFCA as a CAB for the acceptance of test data. Vietnam MIC – Recognized by MIC as a CAB for the acceptance of test data. SCOPE For details on the Scopes of our Accreditations, please visit: California Minnesota Oregon Texas Washington Report No. NGRF00593/30 FACILITIES 2020.12.15 California Labs OC01-17 41 Tesla Irvine, CA 92618 (949) 861-8918 Minnesota Labs MN01-11 9349 W Broadway Ave. Brooklyn Park, MN 55445 (612)-638-5136 Oregon Labs EV01-12 6775 NE Evergreen Pkwy #400 Hillsboro, OR 97124 (503) 844-4066 Texas Labs TX01-09 3801 E Plano Pkwy Plano, TX 75074 (469) 304-5255 Washington Labs NC01-05 19201 120 th Ave NE Bothell, WA 98011 (425)984-6600 A2LA Lab Code: 3310.04 Lab Code: 3310.05 Lab Code: 3310.02 Lab Code: 3310.03 Lab Code: 3310.06 Innovation, Science and Economic Development Canada 2834B-1, 2834B-3 2834E-1, 2834E-3 2834D-1 2834G-1 2834F-1 BSMI SL2-IN-E-1154R SL2-IN-E-1152R SL2-IN-E-1017 SL2-IN-E-1158R SL2-IN-E-1153R VCCI A-0029 A-0109 A-0108 A-0201 A-0110 Recognized Phase I CAB for ISED, ACMA, BSMI, IDA, KCC/RRA, MIC, MOC, NCC, OFCA US0158 US0175 US0017 US0191 US0157 Report No. NGRF00594/30 PRODUCT DESCRIPTION 2018-07-17 Client and Equipment under Test (EUT) Information Company Name: NextGen RF Design Address: 2130 Howard Drive West City, State, Zip: North Mankato, MN 56003 Test Requested By: Ross Loven EUT: Titan Gateway and Titan Sensor First Date of Test: November 11, 2022 Last Date of Test: November 11, 2022 Receipt Date of Samples: November 11, 2022 Equipment Design Stage: Preproduction Equipment Condition: No Damage Purchase Authorization: Verified Information Provided by the Party Requesting the Test Functional Description of the EUT: Gateway system containing a 2.4 GHz LoRa and a pre-approved 802.11bgn 20 MHz SISO radio module. Sensors containing a 2.4 GHz LoRa radio. EAPRO-GTWY, ENVIROALERT Professional Gateway, EAPRO- WTS, ENVIROALERT Professional Wireless Temperature Sensor, EAPRO-WHS, ENVIROALERT Professional Wireless Humidity Sensor, EAPRO-WMFT, ENVIROALERT Professional Wireless Multi-Function Transmitter, EAPRO-WMFT-R, ENVIROALERT Professional Wireless Multi-Function Transmitter with Relay Testing Objective: To obtain 2D antenna pattern measurements and calculated antenna performance values. Report No. NGRF00595/30 CONFIGURATIONS 2018-07-17 Configuration NGRF0059- 1 EUT Description Manufacturer Model/Part Number Serial Number Wireless Sensor WINLAND Electronics, Inc Titan Sensor None Configuration NGRF0059- 2 EUT Description Manufacturer Model/Part Number Serial Number Wireless Gateway WINLAND Electronics, Inc Titan Gateway None Report No. NGRF00596/30 MODIFICATIONS 2018-07-17 Equipment Modifications Item Date Test Modification Note Disposition of EUT 1 2022-11-07 2D Polar Plots Tested as delivered to Test Station. No EMI suppression devices were added or modified during this test. Scheduled testing was completed. Report No. NGRF00597/30 2D POLAR PLOTS PSA-ESCI 2022.08.23.0 description PSA-ESCI 2022.08.23.0 MODES OF OPERATION CW - 2440 MHz CONFIGURATIONS INVESTIGATED NGRF0059 - 2 FREQUENCY RANGE INVESTIGATED Start Frequency2440 MHzStop Frequency2440 MHz SAMPLE CALCULATIONS Max Absolute Gain of AUT = G_ref - (E_ref - E_aut) + L_c Where: G_ref = gain of reference antenna (dBi)E_ref = electric field strength in dBuV/m E_aut = electric field strength in dBuV/mL_c = AUT setup loss TEST EQUIPMENT ID EVB AFI AIZ TFU REM AHC TEST DESCRIPTION Testing was performed using the mode(s) of operation and configuration(s) noted within the report. The individuals and/or the organization requesting the test provided the modes, configurations and settings used to complete the evaluation. The actual test parameters are specified in the test data, this includes items such as investigated frequency range (scanned) and test levels. The testing methods and performance specifications, as well as the test site used for the evaluation are indicated in the test data. The test data represents the configuration / operating mode/ model that produced the highest emission levels as compared to the specification limit. DescriptionManufacturerModelLast Cal.Cal. Due Antenna…
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EAPro® Antenna Datasheet REV 3 - REVISED NOVEMBER 2022 1 FEATURES • Integrated PCB monopole antennas (Gateway & Sensor) • Frequency range 2405 MHz – 2492 MHz • Peak Gain (Gateway Antenna 1) = 2.21 dBi • Peak Gain (Gateway Antenna 2) = 1.80 dBi • Peak Gain (Sensor) = 3.16 dBi • No provisions for external antenna, can’t be modified by end-user • Gateway Antenna Dimensions (ANT1/ANT2): Area = 0.155” x 0.580”, total length = 1.06”, trace width = 20mils • Wireless Sensor Dimensions: length = 0.685”, trace width = 20mils • See Report-NGRF0059 for antenna pattern data GENERAL DESCRIPTION The EnviroAlert Professional® Gateway & Wireless sensors contain internal PCB trace antennas for the LoRa® 2.4GHz wireless interface. The antennas are fixed, located internal to the product, making them invisible to the end-user. The antenna structures are simple monopole PCB traces, located near the edges of the PCB. There are no provisions for the antennas to be modified, nor is there any hardware to support adding external antennas. The wireless sensor PCB design is the same board for all model types (EAPRO-WTS, EAPRO-WHS, EAPRO- WMFT, EAPRO-WMFT-R), which means no change in the antenna design across all models. EAPro® Antenna Datasheet REV 3 - REVISED NOVEMBER 2022 2 A N T 1 A N T 2 Figure 1: Gateway PCB Antenna Locations Figure 2: Gateway Antenna Dimensions EAPro® Antenna Datasheet REV 3 - REVISED NOVEMBER 2022 3 Figure 3: Wireless Sensor PCB Location Figure 4: Wireless Sensor Antenna Dimensions
This report must not be used to claim product certification, approval, or endorsement by A2LA or any agency of the U.S. Government. This Report shall not be reproduced, except in full without written approval of the laboratory. NextGen RF Design Titan Sensor FCC 1.1307:2022 2.4 GHz DTS Radio Report: NGRF0028.10, Issue Date: December 22, 2022 CERTIFICATE OF EVALUATION 2018-09-14 Product compliance is the responsibility of the client; therefore, the tests and equipment modes of operation represented in this report were agreed upon by the client, prior to testing. The results of this test pertain only to the sample(s) tested. The specific description is noted in each of the individual sections of the test report supporting this certificate of test. This report reflects only those tests from the referenced standards shown in the certificate of test. It does not include inspection or verification of labels, identification, marking or user information. As indicated in the Statement of Work sent with the quotation, Element’s standard process is to always use the latest published version of the test methods even when earlier versions are cited in the test specification. Issuance of a purchase order was de facto acceptance of this approach. Otherwise, the client would have advised Element in writing of the specific version of the test methods they wanted applied to the subject testing Last Date of Evaluation: December 21, 2022 NextGen RF Design EUT: Titan Sensor RF Exposure Evaluation Standards Specification Method FCC 1.1307:2022 FCC 1.1307:2022 Results Method Clause Description Applied Results Comments (b)(3)(i)(B) Exemption From RF Exposure Evaluation Yes Pass N/A Deviations From Evaluation Standards None Approved By: Donald Facteau, Process Architect Report No. NGRF0028.102/11 REVISION HISTORY 2018.07.17 Revision Number Description Date (yyyy-mm-dd) Page Number 00 None Report No. NGRF0028.103/11 ACCREDITATIONS AND AUTHORIZATIONS 2021.09.01 United States FCC - Designated by the FCC as a Telecommunications Certification Body (TCB). Certification chambers, Open Area Test Sites, and conducted measurement facilities are listed with the FCC. A2LA - Each laboratory is accredited by A2LA to ISO / IEC 17025, and as a product certifier to ISO / IEC 17065 which allows Element to certify transmitters to FCC and IC specifications. Canada ISED - Recognized by Innovation, Science and Economic Development Canada as a Certification Body (CB) and as a CAB for the acceptance of test data. European Union European Commission – Recognized as an EU Notified Body validated for the EMCD and RED Directives. United Kingdom BEIS – Recognized by the UK as an Approved Body under the UK Radio Equipment and UK EMC Regulations. Australia/New Zealand ACMA - Recognized by ACMA as a CAB for the acceptance of test data. Korea MSIT / RRA - Recognized by KCC’s RRA as a CAB for the acceptance of test data. Japan VCCI - Associate Member of the VCCI. Conducted and radiated measurement facilities are registered. Taiwan BSMI – Recognized by BSMI as a CAB for the acceptance of test data. NCC - Recognized by NCC as a CAB for the acceptance of test data. Singapore IDA – Recognized by IDA as a CAB for the acceptance of test data. Israel MOC – Recognized by MOC as a CAB for the acceptance of test data. Hong Kong OFCA – Recognized by OFCA as a CAB for the acceptance of test data. Vietnam MIC – Recognized by MIC as a CAB for the acceptance of test data. SCOPE For details on the Scopes of our Accreditations, please visit: California Minnesota Oregon Texas Washington Report No. NGRF0028.104/11 FACILITIES 2020.12.15 California Labs OC01-17 41 Tesla Irvine, CA 92618 (949) 861-8918 Minnesota Labs MN01-11 9349 W Broadway Ave. Brooklyn Park, MN 55445 (612)-638-5136 Oregon Labs EV01-12 6775 NE Evergreen Pkwy #400 Hillsboro, OR 97124 (503) 844-4066 Texas Labs TX01-09 3801 E Plano Pkwy Plano, TX 75074 (469) 304-5255 Washington Labs NC01-05 19201 120 th Ave NE Bothell, WA 98011 (425)984-6600 A2LA Lab Code: 3310.04 Lab Code: 3310.05 Lab Code: 3310.02 Lab Code: 3310.03 Lab Code: 3310.06 Innovation, Science and Economic Development Canada 2834B-1, 2834B-3 2834E-1, 2834E-3 2834D-1 2834G-1 2834F-1 BSMI SL2-IN-E-1154R SL2-IN-E-1152R SL2-IN-E-1017 SL2-IN-E-1158R SL2-IN-E-1153R VCCI A-0029 A-0109 A-0108 A-0201 A-0110 Recognized Phase I CAB for ISED, ACMA, BSMI, IDA, KCC/RRA, MIC, MOC, NCC, OFCA US0158 US0175 US0017 US0191 US0157 Report No. NGRF0028.105/11 PRODUCT DESCRIPTION 2018-07-17 Client and Equipment Under Evaluation Information Company Name: NextGen RF Design Address: 2130 Howard Drive West City, State, Zip: North Mankato, MN 56003 Evaluation Requested By: Ross Loven EUT: Titan Sensor Date of Evaluation: 12/21/2022 Information Provided by the Party Requesting the Evaluation Functional Description of the Equipment: The EnviroAlert Professional system is used for environmental monitoring in commercial environments. The wireless devices communicate environmental information (temperature, humidity) using the integrated LoRa radio to a EAPro Gateway. The Titan Sensors contain a 2.4 GHz LoRa radio. There are 4 sensor model variants that interface with the Gateway system: EAPROWTS, ENVIROALERT Professional Wireless Temperature Sensor, EAPRO-WHS, ENVIROALERT Professional Wireless Humidity Sensor, EAPRO-WMFT, ENVIROALERT Professional Wireless Multi-Function Transmitter, EAPRO-WMFT-R, ENVIROALERT Professional Wireless Multi-Function Transmitter with Relay.” Objective: To demonstrate compliance with FCC Requirements for RF exposure for 1.1307 RF exempt devices Report No. NGRF0028.106/11 RF EXPOSURE CONDITION 2018-07-17 The following RF Exposure conditions were used for the assessment documented in this report: Intended Use Mobile Location on Body (if applicable) NA How is the Device Used Device is used at a distance greater than 20cm. Radios Contained in the Same Host Device DTS Simultaneous Transmitting Radios None Body Worn Accessories N/A Environment General Pop…
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This report must not be used to claim product certification, approval, or endorsement by A2LA or any agency of the U.S. Government. This Report shall not be reproduced, except in full without written approval of the laboratory. NextGen RF Design Titan Sensor FCC 15.247:2022 2.4 GHz DTS Radio Report: NGRF0028.1 Rev. 2, Issue Date: January 11, 2023 CERTIFICATE OF TEST 2022.04.01 Product compliance is the responsibility of the client; therefore, the tests and equipment modes of operation represented in this report were agreed upon by the client, prior to testing. The results of this test pertain only to the sample(s) tested. The specific description is noted in each of the individual sections of the test report supporting this certificate of test. This report reflects only those tests from the referenced standards shown in the certificate of test. It does not include inspection or verification of labels, identification, marking or user information. As indicated in the Statement of Work sent with the quotation, Element’s standard process is to always use the latest published version of the test methods even when earlier versions are cited in the test specification. Issuance of a purchase order was de facto acceptance of this approach. Otherwise, the client would have advised Element in writing of the specific version of the test methods they wanted applied to the subject testing. Last Date of Test: December 29, 2022 NextGen RF Design EUT: Titan Sensor Radio Equipment Testing Standards Specification Method FCC 15.247:2022 ANSI C63.10:2013, KDB 558074 Results Test Description Result Specification Section(s) Method Section(s) Comments Band Edge Compliance Pass 15.247(d), KDB 558074 -11 11.11 Duty Cycle N/A KDB 558074 -6.0 11.6 Operates at 100%. Equivalent Isotropic Radiated Power Pass 15.247(b)(3), KDB 558074 -9.1.1 11.9.1.1 Emissions Bandwidth and Occupied Bandwidth Pass 15.247(a)(2), KDB 558074 -8.2 11.8.2 Output Power Pass 15.247(b)(3), KDB 558074 -9.1.1 11.9.1.1 Power Spectral Density Pass 15.247(e), KDB 558074 -10.2 11.10.2 Powerline Conducted Emissions Pass 15.207 6.2 Spurious Conducted Emissions Pass 15.247(d), KDB 558074 -11 11.11 Spurious Radiated Emissions Pass 15.247(d), KDB 558074 - 12.1, 13.2 11.12.1, 11.13.2, 6.5, 6.6 Deviations From Test Standards Approved By: Eric Brandon, Department Manager Report No. NGRF0028.1 Rev 22/87 REVISION HISTORY 2018.07.17 Revision Number Description Date (yyyy-mm-dd) Page Number 01 Updated functional description 2022-12-13 10 Added information 2022-12-13 11 Added configurations 2022-12-13 12-13 Updated dates of test 2022-12-13 14 Updated antenna information 2022-12-13 26-29 Added test equipment 2022-12-13 48 Updated configurations 2022-12-13 56-77 02 Added configurations NGRF0028-29, 30, 31, 32, 33, 34, 35 2022-12-30 13-16 Added Emissions Bandwidth data 2022-12-30 30-33 Added EIRP data 2022-12-30 22-25 Added Output Power data 2022-12-30 35-37 Updated photos only report to reflect new data 2022-12-30 N/A Updated test dates 2022-12-30 2, 10, 17 Report No. NGRF0028.1 Rev 23/87 ACCREDITATIONS AND AUTHORIZATIONS 2021.09.01 United States FCC - Designated by the FCC as a Telecommunications Certification Body (TCB). Certification chambers, Open Area Test Sites, and conducted measurement facilities are listed with the FCC. A2LA - Each laboratory is accredited by A2LA to ISO / IEC 17025, and as a product certifier to ISO / IEC 17065 which allows Element to certify transmitters to FCC and IC specifications. Canada ISED - Recognized by Innovation, Science and Economic Development Canada as a Certification Body (CB) and as a CAB for the acceptance of test data. European Union European Commission – Recognized as an EU Notified Body validated for the EMCD and RED Directives. United Kingdom BEIS – Recognized by the UK as an Approved Body under the UK Radio Equipment and UK EMC Regulations. Australia/New Zealand ACMA - Recognized by ACMA as a CAB for the acceptance of test data. Korea MSIT / RRA - Recognized by KCC’s RRA as a CAB for the acceptance of test data. Japan VCCI - Associate Member of the VCCI. Conducted and radiated measurement facilities are registered. Taiwan BSMI – Recognized by BSMI as a CAB for the acceptance of test data. NCC - Recognized by NCC as a CAB for the acceptance of test data. Singapore IDA – Recognized by IDA as a CAB for the acceptance of test data. Israel MOC – Recognized by MOC as a CAB for the acceptance of test data. Hong Kong OFCA – Recognized by OFCA as a CAB for the acceptance of test data. Vietnam MIC – Recognized by MIC as a CAB for the acceptance of test data. SCOPE For details on the Scopes of our Accreditations, please visit: California Minnesota Oregon Texas Washington Report No. NGRF0028.1 Rev 24/87 FACILITIES 2020.12.15 California Labs OC01-17 41 Tesla Irvine, CA 92618 (949) 861-8918 Minnesota Labs MN01-11 9349 W Broadway Ave. Brooklyn Park, MN 55445 (612)-638-5136 Oregon Labs EV01-12 6775 NE Evergreen Pkwy #400 Hillsboro, OR 97124 (503) 844-4066 Texas Labs TX01-09 3801 E Plano Pkwy Plano, TX 75074 (469) 304-5255 Washington Labs NC01-05 19201 120 th Ave NE Bothell, WA 98011 (425)984-6600 A2LA Lab Code: 3310.04 Lab Code: 3310.05 Lab Code: 3310.02 Lab Code: 3310.03 Lab Code: 3310.06 Innovation, Science and Economic Development Canada 2834B-1, 2834B-3 2834E-1, 2834E-3 2834D-1 2834G-1 2834F-1 BSMI SL2-IN-E-1154R SL2-IN-E-1152R SL2-IN-E-1017 SL2-IN-E-1158R SL2-IN-E-1153R VCCI A-0029 A-0109 A-0108 A-0201 A-0110 Recognized Phase I CAB for ISED, ACMA, BSMI, IDA, KCC/RRA, MIC, MOC, NCC, OFCA US0158 US0175 US0017 US0191 US0157 Report No. NGRF0028.1 Rev 25/87 MEASUREMENT UNCERTAINTY TMU.2015.07.10 Measurement Uncertainty When a measurement is made, the result will be different from the true or theoretically correct value. The difference is the result of tolerances in the measurement system that cannot be completely eliminated. To the extent that technology allows us, it has be…
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| # | Rule Parts | Frequency Range | Power Output |
|---|---|---|---|
| 1 | 15C | 2.40 GHz - 2.48 GHz | 7.50 mW |

EAPRO-GTWY
Equipment Class
DTS - Digital Transmission System