MAT.500.A TAOGLAS | Alldatasheet
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SPE-16-8-015/A/WY Page 1 of 42 SPECIFICATION Part No. : MAT.500.A Product Name : MAT.500 Embedded Antenna Board 6in1 for Telematics Devices LTE MIMO + GPS/GLONASS + Satellite L Band 1621MHz Features : 2* LTE MIMO 698-960MHz/1710-2170MHz/ 2490-2690MHz/3300-3600MHz 2* Wi-Fi MIMO 2.4GHz/5.8GHz 1* GPS-GLONASS Antenna 1* Satellite L Band 1621MHz Antenna Worldwide 4G Bands including 3G and 2G Dims: 157.32*103.19*30mm IPEX connectors, 1.37mm cables RoHS Compliant
SPE-16-8-015/A/WY Page 2 of 42 1. Introduction The MAT.500.A embedded antenna board combines LTE MIMO antennas, Wi-Fi MIMO antennas, plus GPS/GLONASS and Iridium® 1621MHz antennas. It can be used as a reference design or actual embedded antenna for telematics devices in applications such as fleet management, asset tracking, and security/surveillance. The board comes with six IPEX connectors and 1.37mm coax cables for LTE, Wi-Fi, GPS/GLONASS and Iridium 1621MHz. Typical applications: - High speed data links with a need for satellite communication as fallback - Automotive and Heavy Equipment Vehicle Tracking and Telematics - Remote Asset and Pipeline Monitoring - HD Video over LTE - First Responder and Emergency Services - Global data communications/IoT LTE 4G applications demand high speed data uplink and downlink. High efficiency and high gain MIMO antennas are necessary to achieve the required signal to noise ratio and throughput required to solve these challenges. Taoglas also takes care to have high isolation between the two MIMO antennas to prevent self-interference. Low loss cables are used to keep efficiency high over long cable lengths. The GPS -GLONASS passive antenna receives efficiently on all two bands, leading to higher location accuracy and stability of tracking in urban environments. The unique omnidirectional Wi-Fi antennas provide high efficiency and high isolation between antenna elements in a heavy-duty low profile compact structure, delivering powerful MIMO antenna technology for Wi-Fi 802.11n and emerging 802.11ac. Finally, a low axial ratio 1621MHz Antenna is also embedded, providing connectivity for the Iridium satellite sys tem, enabling global coverage, and back -up in case of cellular network failure. Cable length and connector types are customizable. Contact your regional Taoglas sales office for support.
SPE-16-8-015/A/WY Page 3 of 42 2. Specification (in Reference Housing) GPS-GLONASS Center Frequency GPS:1575.42±1.023 MHz GLONASS:1602±5 MHz Passive Antenna Efficiency GPS: 75% GLONASS: 68% Average gain GPS: -1.2dBi GLONASS: -1.6dBi Peak gain GPS: 5.47dBi GLONASS: 4.9dBi VSWR 2:1 Max Impedance 50Ω Axial Ratio GPS:< 5.1 GLONASS:< 6.3 Polarization RHCP Cable Ø1.37 Micro Coax. 68mm standard, fully customizable Connector IPEX standard, fully customizable Satellite L-Band 1621MHz Center Frequency Satellite L-Band:1621±5 MHz Passive Antenna Efficiency 70% Average gain -1.52dBi Peak gain 5.11dBi VSWR 2:1 Max Impedance 50Ω Axial Ratio <7.3 Polarization RHCP Cable Ø1.37 Micro Coax. 83mm standard, fully customizable Connector IPEX standard, fully customizable
SPE-16-8-015/A/WY Page 4 of 42 4G/3G/2G LTE Antenna Frequency (MHz) LTE700 GSM850 GSM900 DCS PCS UMTS1 LTE2600 698~803 824~894 880~960 1710~1880 1850~1990 1920~2170 2490~2690 Efficiency (%) Average Gain(dBi) Peak Gain(dBi) Envelope Correlation Coefficient (ECC) < 0.33 Impedance 50Ω Polarization Linear VSWR < 4 Cable Ø1.37 78mm/MIMO_1,133mm/MIMO_2 standard, fully customizable Connector I-PEX standard , fully customizable 2.4GHz/5.8GHz Wi-Fi Antenna Frequency (MHz) 2400~2500 4900~5850 Efficiency (%) MIMO_1 50.51 61.87 MIMO_2 65.72 60.18 Average Gain(dBi) MIMO_1 -2.97 -2.10 MIMO_2 -1.84 -2.22 Peak Gain(dBi) MIMO_1 5.14 4.77 MIMO_2 5.82 4.96 Impedance 50Ω Polarization Linear VSWR < 2.2 Cable Ø1.37 Micro Coax. 68mm for MIMO_1, 118mm for MIMO_2 standard, fully customizable Connector I-PEX standard , fully customizable
SPE-16-8-015/A/WY Page 5 of 42 MECHANICAL Antenna Dimensions 157.32*103.19*30mm Weight 66g ENVIRONMENTAL Operation Temperature -40°C to 85°C Storage Temperature -40°C to 90°C Humidity Non-condensing 65°C 95% RH
SPE-16-8-015/A/WY Page 6 of 42 3. Antenna Characteristics (In Reference Housing)
3.1 GPS-GLONASS Antenna
3.1.1 Test Setup
3.1.2 GPS-GLONASS Return Loss
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3.1.3 GPS-GLONASS Smith Chart
3.1.4 GPS-GLONASS VSWR
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3.1.5 GPS-GLONASS Efficiency
3.1.6 GPS-GLONASS Average gain
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3.1.7 GPS-GLONASS Peak gain
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3.1.8 Test Setup For Antenna Radiation Pattern
Y Z X
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3.1.9 GPS-GLONASS 2D Radiation Pattern
2D Radiation Pattern @ 1575.42MHz
3.1.10 GPS-GLONASS 3D Radiation Pattern
3D Radiation pattern @ 1575.42MHz XZ Plane (phi=0∘, Theta=0~360∘) YZ Plane (phi=90∘, Theta=0~360∘)
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3.1.11 GPS-GLONASS 2D Radiation Pattern
2D Radiation pattern @ 1602MHz
3.1.12 GPS-GLONASS 3D Radiation Pattern
3D Radiation pattern @ 1602MHz XZ Plane (phi=0∘, Theta=0~360∘) YZ Plane (phi=90∘, Theta=0~360∘)
SPE-16-8-015/A/WY Page 13 of 42 XZ Plane (phi=0∘, Theta=-180~180∘) XZ Plane (phi=0∘, Theta=-180~180∘)
3.1.13 Axial Ratio Pattern
Frequency: 1575.42MHz Frequency: 1602MHz
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3.2 Satellite L-Band 1621MHz Antenna
3.2.1 Test Setup
3.2.2 Satellite L-Band 1621MHz Return Loss
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3.2.3 Satellite L-Band 1621MHz Smith Chart
3.2.4 Satellite L-Band 1621MHz VSWR
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3.2.5 Satellite L-Band 1621MHz Efficiency
3.2.6 Satellite L-Band 1621MHz Average gain
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3.2.7 Satellite L-Band 1621MHz Peak gain
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3.2.8 Test Setup For Antenna Radiation Pattern
Y Z X
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3.2.9 Satellite L-Band 1621MHz 2D Radiation Pattern
2D Radiation pattern @ 1621MHz
3.2.10 Satellite L-Band 1621MHz 3D Radiation Pattern
3D Radiation pattern @ 1621MHz XZ Plane (phi=0∘, Theta=0~360∘) YZ Plane (phi=90∘, Theta=0~360∘)
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3.2.11 Axial Ratio Pattern
Frequency: 1621MHz
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3.3 LTE_MIMO/Wi-Fi_MIMO Antenna
3.3.1 Test Setup
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3.3.2 LTE MIMO Antenna S-parameters
3.3.3 Envelope Correlation Coefficient (LTE)
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3.3.4 LTE Antenna Efficiency
3.3.5 LTE Antenna Peak Gain
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3.3.6 LTE Antenna Peak Gain
3.3.7 Wi-Fi Antenna Return Loss
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3.3.8 Envelope Correlation Coefficient
3.3.9 Wi-Fi Antenna Efficiency
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3.3.10 Wi-Fi Antenna Peak Gain
3.3.11 Wi-Fi Antenna Average Gain
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3.3.12 Test Setup For Antenna Radiation Pattern (ETS Anechoic chamber)
Y Z X
SPE-16-8-015/A/WY Page 28 of 42 3.3.13 2D Radiation Pattern (LTE_MIMO1) XY Plane
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SPE-16-8-015/A/WY Page 31 of 42 3.3.14 3D Radiation Pattern (LTE_MIMO1) 704MHz 960MHz 1710MHz 2170MHz 2690MHz 3500MHz
SPE-16-8-015/A/WY Page 32 of 42 3.3.15 2D Radiation Pattern (LTE_MIMO2) XY Plane
SPE-16-8-015/A/WY Page 33 of 42 XZ Plane
SPE-16-8-015/A/WY Page 34 of 42 YZ Plane
SPE-16-8-015/A/WY Page 35 of 42 3.3.16 3D Radiation Pattern (LTE_MIMO2) 704MHz 960MHz 1710MHz 2170MHz 2690MHz 3500MHz
SPE-16-8-015/A/WY Page 36 of 42 3.3.17 2D Radiation Pattern (Wi-Fi_MIMO1) XY Plane XZ Plane YZ Plane
SPE-16-8-015/A/WY Page 37 of 42 3.3.18 3D Radiation Pattern (Wi-Fi_MIMO1) 2450MHz 5550MHz
SPE-16-8-015/A/WY Page 38 of 42 3.3.19 2D Radiation Pattern (Wi-Fi_MIMO2) XY Plane XZ Plane YZ Plane
SPE-16-8-015/A/WY Page 39 of 42 3.3.20 3D Radiation Pattern (Wi-Fi_MIMO2) 2450MHz 5550MHz
SPE-16-8-015/A/WY Page 40 of 42 4. Mechanical Drawing (Unit: mm)
SPE-16-8-015/A/WY Page 41 of 42 5. Packaging
SPE-16-8-015/A/WY Page 42 of 42 Taoglas makes no warranties based on the accuracy or completeness of the contents of this document and reserves the right to make changes to specifications and product descriptions at any time without notice. Taoglas reserves all rights to this document and the information contained herein. Reproduction, use or disclosure to third parties without express permission is strictly prohibited. Copyright © Taoglas Ltd.