MIA-M10Q U-BLOX | Alldatasheet

Document overview

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  • PDF pages: 23

Technical content

Datasheet sections

  • 1 Functional description
  • 1.1 Overview
  • 1.2 Performance
  • 1.3 Supported GNSS constellations
  • 1.4 Supported protocols
  • 1.5 Firmware features
  • 2 System description
  • 2.1 Block diagram
  • 3 Pin definition
  • 3.1 Pin assignment
  • 4 Electrical specifications
  • 4.1 Absolute maximum ratings
  • 4.2 Operating conditions
  • 4.3 Indicative power requirements
  • 4.4 Oscillator parameters
  • 5 Communication interfaces
  • 5.1 UART
  • 5.2 I2C
  • 5.3 Default interface settings
  • 6 Mechanical specifications
  • 7 Product handling
  • 7.1 Moisture sensitivity level
  • 8 Labeling and ordering information
  • 8.1 Product labeling
  • 8.2 Explanation of product codes
  • 8.3 Ordering codes

Standard precision GNSS module Professional grade Data sheet Abstract This data sheet describes the MIA-M10Q module, an ultra-small form factor and ultra-low-power GNSS receiver for high-performance wearable and asset-tracking applications. www.u-blox.com UBX-22015849 - R02 C1-Public

Subtitle Standard precision GNSS module Document type Data sheet Document number UBX-22015849 Revision and date R02 31-Aug-2022 Disclosure restriction C1-Public Product status Corresponding content status Functional Sample Draft For functional testing. Revised and supplementary data will be published later. In development / prototype Objective specification Target values. Revised and supplementary data will be published later. Engineering sample Advance information Data based on early testing. Revised and supplementary data will be published later. Initial production Early production information Data from product verification. Revised and supplementary data may be published later. Mass production / End of life Production information Document contains the final product specification. This document applies to the following products: Product name Type number FW version IN/PCN reference Product status MIA-M10Q MIA-M10Q-00B-01 ROM SPG 5.10 N/A Engineering sample u-blox or third parties may hold intellectual property rights in the products, names, logos and designs included in this document. Copying, reproduction, or modification of this document or any part thereof is only permitted with the express written permission of u-blox. Disclosure to third parties is permitted for clearly public documents only. The information contained herein is provided "as is" and u-blox assumes no liability for its use. No warranty, either express or implied, is given, including but not limited to, with respect to the accuracy, correctness, reliability and fitness for a particular purpose of the information. This document may be revised by u-blox at any time without notice. For the most recent documents, visit www.u-blox.com. Copyright © 2022, u-blox AG. UBX-22015849 - R02 Page 2 of 23 C1-Public

1 Functional description

1.1 Overview

The MIA-M10Q module features the u-blox M10 standard precision GNSS platform and provides exceptional sensitivity and acquisition time for all L1 GNSS signals. MIA-M10Q supports concurrent reception of four GNSS (GPS, GLONASS, Galileo, and BeiDou). The high number of visible satellites enables the receiver to select the best signals. This maximizes the position availability, in particular under challenging conditions such as in deep urban canyons. u-blox Super-S (Super-Signal) technology offers great RF sensitivity and can improve the dynamic position accuracy with small antennas or in non-line-of-sight scenarios. The extremely low power consumption of 25 mW in continuous tracking mode allows great power autonomy for all battery-operated devices, such as asset trackers, without compromising on GNSS performance. For maximum sensitivity in passive antenna designs, MIA-M10Q integrates an LNA followed by a SAW filter in the RF path. The small footprint and highly integrated System-in-Package (SiP) makes MIA-M10Q suitable for compact designs in wearable and tracking applications.

1.2 Performance

Parameter Specification Value Receiver type u-blox M10 receiver Accuracy of time pulse signal RMS 99% 30 ns 60 ns Frequency of time pulse signal Default 1PPS (0.25 Hz to 10 MHz configurable) Operational limits1 Dynamics ≤ 4 g Altitude 80,000 m Velocity 500 m/s Velocity accuracy2 0.05 m/s Dynamic heading accuracy2 0.3 deg Parameter GPS+GAL GPS+GAL +GLO GPS+GAL +BDS B1I GPS+GAL +BDS B1C GPS+GAL +BDS B1C +GLO Maximum navigation update rate3 10 Hz 7 Hz 5 Hz 8 Hz 5 Hz

1 Assuming Airborne 4 g platform

2 50% at 30 m/s for dynamic operation 3 For high navigation update rates, increase the communication baud rate and reduce the number of enabled messages. Note that the number of tracked SVs also affects the max. navigation rates that can be achieved. 4 GPS is always in combination with SBAS and QZSS.

5 CEP, 50%, 24 hours static, -130 dBm, > 6 SVs for each GNSS system

1 Functional description Page 4 of 23

+GLO GPS+GAL +BDS B1I GPS+GAL +BDS B1C GPS+GAL +BDS B1C +GLO Cold start 28 s 23 s 27 s 28 s 23 s Hot start 1 s 1 s 1 s 1 s 1 s AssistNow Online8 1 s 1 s 1 s 1 s 1 s AssistNow Offline9 2 s 2 s 3 s 2 s 2 s Time To First Fix (TTFF)4, 6, 7 AssistNow Autonomous10 3 s 4 s 4 s 4 s 4 s Tracking and nav. -167 dBm -167 dBm -167 dBm -167 dBm -167 dBm Reacquisition -160 dBm -160 dBm -160 dBm -160 dBm -160 dBm Cold Start -148 dBm -148 dBm -148 dBm -148 dBm -148 dBm Sensitivity11 Hot start6 -159 dBm -159 dBm -159 dBm -159 dBm -159 dBm Table 1: MIA-M10Q typical performance in multi-constellation GNSS modes. Parameter GPS GLONASS BDS B1I GALILEO BDS B1C Maximum navigation update rate 18 Hz 18 Hz 18 Hz 18 Hz 18 Hz Position accuracy (CEP)4, 5 1.5 m 4 m 2 m 3 m 2 m Cold start 29 s 27 s 30 s 41 s 56 s Hot start 1 s 1 s 1 s 1 s 1 s Time To First Fix (TTFF)4, 6, 7 AssistNow Online8 1 s 1 s 1 s 5 s TBD Tracking and nav. -167 dBm -166 dBm -160 dBm -161 dBm -163 dBm Reacquisition -160 dBm -158 dBm -158 dBm -154 dBm -156 dBm Cold Start -148 dBm -147 dBm -146 dBm -141 dBm -136 dBm Sensitivity11 Hot start6 -159 dBm -159 dBm -159 dBm -155 dBm -157 dBm Table 2: MIA-M10Q typical performance in single-GNSS modes

1.3 Supported GNSS constellations

MIA-M10Q is a concurrent GNSS receiver that can receive and track multiple GNSS systems. The single RF front-end architecture enables concurrent reception of multiple GNSS constellations. The receiver can be configured for a subset of GNSS constellations to achieve lower power consumption. The default configuration on MIA-M10Q is concurrent reception of GPS, Galileo, and BeiDou B1I with QZSS and SBAS enabled. The following GNSS and their signals are supported: System Signals GPS / QZSS L1C/A (1575.42 MHz) Galileo E1-B/C (1575.42 MHz) GLONASS L1OF (1602 MHz + k*562.5 kHz, k = –7,..., 5, 6) 6 Commanded starts. 7 All satellites at -130 dBm. Measured at room temperature. 8 Dependent on the speed and latency of the aiding data connection, commanded starts. 9 Using seven days old AsisstNow Offline data. 10 Using two days old orbital predicted data. 11 Demonstrated with a good external LNA. Measured at room temperature. UBX-22015849 - R02

1 Functional description Page 5 of 23

BeiDou12 B1I (1561.098 MHz), B1C (1575.42 MHz) Table 3: Supported GNSS and signals on MIA-M10Q The following GNSS assistance services are supported: Service Support AssistNow™ Online GPS L1C/A, QZSS L1C/A, Galileo E1, GLONASS L1OF, BeiDou B1I Table 4: Supported Assisted GNSS (A-GNSS) services The following augmentation systems are supported: System Support SBAS EGNOS, GAGAN, MSAS and WAAS QZSS L1S (SLAS) Table 5: Supported augmentation systems The augmentation systems SBAS and QZSS can be enabled only if GPS operation is also enabled.

1.4 Supported protocols

MIA-M10Q supports the following protocols: Protocol Type UBX Input/output, binary, u-blox proprietary Table 6: Supported protocols

1.5 Firmware features

Antenna supervisor13 Antenna supervisor for active antenna control and short detection CloudLocate GNSS Extends the life of energy-constrained IoT applications. Small payload messages supported. Assisted GNSS AssistNow Online, AssistNow Offline and AssistNow Autonomous Backup modes Hardware backup mode and software standby mode, both with optional RTC Power save modes14 On/off, cyclic tracking Super-S Improved dynamic position accuracy with small antennas Protection level Real-time position accuracy estimate with 95% confidence level15 Galileo return link messages Galileo search and rescue (SAR) return link messages (RLM) via Galileo satellite signal Data batching Autonomous tracking up to 10 minutes at 1 Hz Odometer Measure traveled distance with support for different user profiles Table 7: Firmware features 12 BeiDou B1I cannot be enabled simultaneously with BeiDou B1C or GLONASS L1OF. 13 External components required, some pins need to be reconfigured. 14 The power save modes are not available if BeiDou B1C is enabled. 15 Verified for automotive environment only. UBX-22015849 - R02

1 Functional description Page 6 of 23

Anti-jamming RF interference and jamming detection and reporting Anti-spoofing Spoofing detection and reporting Configuration lockdown Receiver configuration can be locked by command Message integrity All messages are cryptographically signed Secure boot Only signed firmware images executed Table 8: Security features UBX-22015849 - R02

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2 System description

2.1 Block diagram

Figure 1: MIA-M10Q block diagram UBX-22015849 - R02

2 System description Page 8 of 23

3 Pin definition

3.1 Pin assignment

VIO_SELV_BCKPV_IOReservedReservedReserved TIMEPULSEEXTINTRTC_ORTC_I SAFEBOOT_NVCC_RFReservedRESET_N Reserved PIO6 Reserved SCLReserved SDA Reserved Reserved TX RX LNA_EN Reserved Reserved RF_IN MIA-M10QTop View GNDGNDGND GNDVCC Reserved 123456789ABCDEFGHJ J9J1 Reserved GND I/O RTC Power supply UART RF_INI2C Reserved Figure 2: MIA-M10Q pin assignment Pin no. Name PIO no. I/O Description A1 GND - - Connect to GND A2 GND - - Connect to GND A3 GND - - Connect to GND A4 RTC_I - I RTC input (leave open if not used) A5 RTC_O - O RTC output (connect to GND if not used) A6 EXTINT 5 I/O Digital I/O A7 TIMEPULSE 4 O Time pulse signal (shared with SAFEBOOT_N pin)16 A8 GND - - Connect to GND A9 GND - - Connect to GND B1 VCC - I Main power supply input B2 GND - - Connect to GND B8 GND - - Connect to GND UBX-22015849 - R02

3 Pin definition Page 9 of 23

Pin no. Name PIO no. I/O Description B9 RF_IN - I RF signal input C1 Reserved - - Leave open C3 GND - - Connect to GND C4 RESET_N - I System reset (active low). Has to be low for at least 1 ms to trigger a reset. C5 Reserved - - Leave open C6 VCC_RF - O Filtered power supply for RF active components like external active antenna or LNA, both optional C7 SAFEBOOT_N - I Safeboot mode (leave open)16 C9 GND - - Connect to GND D1 SDA 2 I/O I2C data. If not used, leave open. D2 Reserved - - Connect to E2 D9 Reserved - - Leave open E1 SCL 3 I I2C clock. If not used, leave open. E2 Reserved - - Connect to D2 E3 GND - - Connect to GND E4 GND - - Connect to GND E7 Reserved - - Leave open E9 GND - - Connect to GND F1 GND - - Connect to GND F3 GND - - Connect to GND F4 GND - - Connect to GND F7 PIO6 6 I/O Digital I/O F9 Reserved - - Connect to GND17 G1 TX 1 O UART TX. If not used, leave open. G3 GND - - Connect to GND G4 GND - - Connect to GND G5 GND - - Connect to GND G6 GND - - Connect to GND G7 Reserved - - Connect to GND18 G9 Reserved - - Leave open H1 RX 0 I UART RX. If not used, leave open. H8 GND - - Connect to GND H9 LNA_EN - O On/Off external LNA or active antenna J1 Reserved - - Leave open J2 Reserved - - Leave open J3 Reserved - - Leave open J4 V_IO - I IO voltage supply J5 V_BCKP - I Backup voltage supply. Leave open if no external backup supply. 16 The receiver enters safeboot mode if this pin is low at start up. The SAFEBOOT_N pin is internally connected to TIMEPULSE pin through a 1 kΩ series resistor. 17 For future compatibility with the MIA dual-band version, connect this pin to ground by placing a 0 Ω resistor to GND. 18 For future compatibility with the MIA crystal-based version, connect this pin to ground by placing a 0 Ω resistor to GND. UBX-22015849 - R02

3 Pin definition Page 10 of 23

Pin no. Name PIO no. I/O Description J6 VIO_SEL - I Voltage selector for V_IO supply. Connect to GND for 1.8 V supply, or leave open for 3.3 V supply. J7 Reserved - - Leave open J8 GND - - Connect to GND J9 GND - - Connect to GND Table 9: MIA-M10Q pin assignment UBX-22015849 - R02

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4 Electrical specifications

The limiting values given are in accordance with the Absolute Maximum Rating System (IEC 134). Stress above one or more of the limiting values may cause permanent damage to the device. These are stress ratings only. Operation of the device at these or at any other conditions above those given below is not implied. Exposure to limiting values for extended periods may affect device reliability. Where application information is given, it is advisory only and does not form part of the specification.

4.1 Absolute maximum ratings

Symbol Parameter Min Max Unit VCC Main supply voltage –0.3 3.6 V Voltage ramp on VCC19 25 35000 µs/V V_IO IO supply voltage –0.3 VCC + 0.3 (max 3.6) V Voltage ramp on V_IO19 25 35000 µs/V V_BCKP Backup supply voltage –0.3 3.6 V RTC_I Voltage on RTC_I –0.3 1.155 V Input voltage on RESET_N and digital pins. VIO_SEL = GND. –0.3 V_IO + 0.3 (max 1.98) VV_PIO Input voltage on RESET_N and digital pins. VIO_SEL = open. –0.3 V_IO + 0.3 (max 3.6) V I_PIO Max source / sink current, digital pins20 -10 10 mA Prfin RF input power on RF_IN21 0 dBm Tamb Ambient temperature –40 +85 °C Ts Storage temperature –40 +85 °C Table 10: Absolute maximum ratings V_IO supply voltage must not be higher than VCC + 0.3 V. The product is not protected against overvoltage or reversed voltages. Voltage spikes exceeding the power supply voltage specification, given in the table above, must be limited to values within the specified boundaries by using appropriate protection diodes.

4.2 Operating conditions

Table 11 shows the general operating conditions. Table 12 shows the electrical parameters for digital I/O. The V_IO voltage range is selected with the VIO_SEL pin. For designs with 1.8 V supply at V_IO, switch off V_IO supply 100 ms before VCC when transitioning to hardware backup mode. Alternatively, send a UBX-RXM-PMREQ message before switching off V_IO and VCC. 19 Exceeding the voltage ramp speed may permanently damage the device. 20 The SAFEBOOT_N pin has an internal 1 kΩ series resistor. 21 Test conditions: source impedance = 50 Ω, continuous wave. UBX-22015849 - R02

4 Electrical specifications Page 12 of 23

Symbol Parameter Min Typical Max Units VCC Main supply voltage 1.76 1.8, 3.3 3.6 V IO supply voltage, VIO_SEL = GND 1.76 1.8 VCC (max 1.98) VV_IO IO supply voltage, VIO_SEL = open 2.7 3.3 VCC (max 3.6) V V_BCKP Supply voltage, backup domain 1.65 3.6 V V_IOSWITCH V_IO voltage threshold to switch an internal supply for the backup domain from V_IO to V_BCKP 1.45 V VCC_RF VCC_RF output voltage VCC - 0.1 V ICC_RF VCC_RF output current 50 mA NFtot Receiver chain noise figure 1.5 dB Ext_gain22 External gain at RF_IN, low gain mode (default) 30 dB External gain at RF_IN, bypass mode 10 40 dB Topr Operating temperature -40 +85 °C Table 11: General operating conditions Symbol Parameter Min Typical Max Units Vin Input pin voltage range 0 V_IO V Vil Low-level input voltage 0.63 V Vih High-level input voltage 0.68 x V_IO V Vol Low-level output voltage, Iout = -2 mA 23 0.4 V Voh High-level output voltage, Iout = 2 mA 23 V_IO - 0.4 V Rpu, IO Pull-up resistance, Digital IO24. VIO_SEL = GND 6 17 72 kΩ Rpu, IO Pull-up resistance, Digital IO24. VIO_SEL = open 8 18 40 kΩ Rpd, IO Pull-down resistance, Digital IO 21 80 180 kΩ Rpu, SAFEBOOT_N Pull-up resistance, SAFEBOOT_N25 6 17 72 kΩ Rpu, RESET_N Pull-up resistance, RESET_N 7 10 13 kΩ Table 12: Digital IO Operation beyond the specified operating conditions can affect device reliability.

4.3 Indicative power requirements

Table 13 shows indicative current consumption for VCC and V_IO with a 3.0 V supply. 22 The internal LNA gain is configurable. 23 TIMEPULSE (PIO4) has 4 mA current drive/sink capability. 24 TXD, RXD, TIMEPULSE, EXTINT, SCL, SDA, and LNA_EN. 25 The SAFEBOOT_N pin has an additional 1 kΩ series resistor. UBX-22015849 - R02

4 Electrical specifications Page 13 of 23

(Parameter) Conditions GPS GPS+GAL GPS+GAL +GLO GPS+GAL +BDS B1I (default) GPS+GAL +BDS B1C GPS+GAL +BDS B1C +GLO Unit Acquisition27 8.5 11 13 12.5 12 14 mA Tracking (Continuous mode) 8 8.5 10 10.5 9.5 11 mAIVCC (Current at VCC) Tracking (Power save mode)28 5 5 5.5 5.5 - - mA Acquisition and Tracking IV_IO (Current at V_IO) Tracking (Power save mode)28 2 2.1 2.1 2.1 - - mA Table 13: Typical currents for 3.0 V supply at VCC and V_IO Table 14 shows indicative current consumption for VCC and V_IO with a 1.8 V supply. Symbol (Parameter) Conditions GPS GPS+GAL GPS+GAL +GLO GPS+GAL +BDS B1I (default) GPS+GAL +BDS B1C GPS+GAL +BDS B1C +GLO Unit Acquisition27 12 16.5 19 18.5 18 21.5 mA Tracking (Continuous mode) 11 12 14.5 15 13.5 15.5 mAIVCC (Current at VCC) Tracking (Power save mode)28 6 6.5 7 7 - - mA Acquisition and Tracking IV_IO (Current at V_IO) Tracking (Power save mode)28 2 2 2 2 - - mA Table 14: Typical currents for 1.8 V supply at VCC and V_IO These values are provided for customer information only, as an example of typical current requirements. They are characterized on samples using a cold start command. Actual power requirements can vary depending on firmware version used, external circuitry, number of satellites tracked, signal strength, type and time of start, duration, internal LNA gain mode, and test conditions. The inrush current at startup can go up to 100 mA. Ensure that the external power supply is able to deliver up to 100 mA. Table 15 shows current consumptions for the backup modes. Symbol Parameter Conditions Typ. Unit IV_BCKP 29 Total current in hardware backup mode V_BCKP = 3.3 V, V_IO = VCC = 0 V 32 µA V_IO = 1.8 V, VCC = 1.8 V 37 µA IVCC + IV_IO Total current in software standby mode V_IO = 3.3 V, VCC = 3.3 V 46 µA Table 15: Backup currents 26 Internal LNA set to low gain. Simulated signal using power levels of -130 dBm. 27 Average current from start-up until the first fix. 28 Power save mode in cyclic tracking operation, 1-second update period. GNSS configurations that include BeiDou B1C do not support this mode. 29 IV_BCKP current in normal operation (V_BCKP = 3.3 V, V_IO = VCC = 3.3 V) is ~3 µA. UBX-22015849 - R02

4 Electrical specifications Page 14 of 23

All values in Table 13, Table 14, and Table 15 are measured at 25 °C ambient temperature and with the internal LNA set to low gain. SBAS and QZSS are activated in all measurements.

4.4 Oscillator parameters

Table 16 shows the electrical parameters for the RTC (optional). Parameter Min Typical Max Unit RTC oscillator frequency 32768 Hz RTC startup time 250 700 ms RTC crystal ESR 100 kΩ RTC input capacitance at RTC_I, RTC_O (per pin to GND) 7 10 14 pF RTC_I input voltage, external clock Vil_RTC 0 0.22 V Vih_RTC 0.71 1.1 V Table 16: RTC parameters UBX-22015849 - R02

4 Electrical specifications Page 15 of 23

5 Communication interfaces

The receiver allows communication over UART and I2C30 interfaces. All the inputs have internal pull-up resistors in normal operation and can be left open if not used. All the PIOs are supplied by V_IO, therefore all the voltage levels of the PIO pins are related to V_IO supply voltage.

5.1 UART

The UART interface supports configurable baud rates. Hardware flow control is not supported. UART specifications are described in Table 17. Symbol Parameter Min Max Unit Ru Baud rate 4800 921600 bit/s ΔTx Tx baud rate accuracy -1% +1% - ΔRx Rx baud rate tolerance -2.5% +2.5% - Table 17: UART specifications

5.2 I2C

An I2C interface is available for communication with an external host CPU. The interface is compatible with the Fast-mode of the I2C industry standard, allowing a maximum bit rate of 400 kbit/s31. The interface stretches the clock when slowed down while serving interrupts, therefore the real bit rates may be slightly lower. The maximum clock stretching time that the host can expect is 20 ms.

5.3 Default interface settings

UART • 38400 baud32, 8 bits, no parity bit, 1 stop bit.

  • Input messages: NMEA and UBX.
  • Output messages: NMEA GGA, GLL, GSA, GSV, RMC, VTG and TXT. I2C • 7-bit I2C address (0x42).
  • Input messages: NMEA and UBX.
  • Output messages: NMEA GGA, GLL, GSA, GSV, RMC, VTG and TXT. Table 18: Default interface settings 30 I2C is a registered trademark of Philips/NXP. 31 External pull-up resistors may be needed to achieve 400 kbit/s communication speed, as the internal pull-up resistance can be very large. 32 9600 baud in safe boot mode. UBX-22015849 - R02

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6 Mechanical specifications

Figure 3: MIA-M10Q mechanical drawing UBX-22015849 - R02

6 Mechanical specifications Page 17 of 23

7 Product handling

7.1 Moisture sensitivity level

The moisture sensitivity level (MSL) relates to the packaging and handling precautions required. MIA-M10Q SiPs are rated at MSL level 3 . For MSL standard, see IPC/JEDEC J-STD-020 [5]. UBX-22015849 - R02

7 Product handling Page 18 of 23

8 Labeling and ordering information

This section provides information about product labeling and ordering.

8.1 Product labeling

The labeling of the MIA-M10Q package provides product information and revision information. For more information contact u-blox sales. Revision (A) Type Number (MIA-M10Q- 0 0B- 0 1) Date Code and Lot Number (E0704012) Marking for Engineering Parts (X) Other Production Code (795) Pin1 Mark Figure 4: Location of product type number on MIA-M10Q label The eight-digit Date Code and Lot Number includes the production date and lot number information. Date Code and Lot Number Meaning YWWLLXXX Y = production year, A = 2017, B = 2018, C = 2019, D = 2020, E = 2021 etc. WW = calendar week LL = lot number XXX = other production information Table 19: Production date and lot number information

8.2 Explanation of product codes

Three product code formats are used. The product name is used in documentation such as this data sheet and identifies all u-blox products, independent of packaging and quality grade. The ordering code includes options and quality, while the type number includes the hardware and firmware versions. Table 20 details these three different formats for the MIA-M10Q module. Format Structure Product code Product name PPP-TGGV MIA-M10Q Ordering code PPP-TGGV-NNQ MIA-M10Q-00B Type number PPP-TGGV-NNQ-XX MIA-M10Q-00B-01 Table 20: Product code formats The parts of the product code are explained in Table 21 . Code Meaning Example PPP Product family MIA TGG Platform M10 = u-blox M10 V Variant Q = Standard precision, ROM, TCXO, LNA, and SAW filter UBX-22015849 - R02

8 Labeling and ordering information Page 19 of 23

NNQ Option / Quality grade NN: Option [00...99] Q: Grade, A = Automotive, B = Professional XX Product detail Describes hardware and firmware versions Table 21: Part identification code

8.3 Ordering codes

Ordering code Product Remark MIA-M10Q-00B u-blox M10 GNSS receiver module, professional grade Table 22: Product ordering codes Product changes affecting form, fit or function are documented by u-blox. For a list of Product Change Notifications (PCNs) see our website at: https://www.u-blox.com/en/ product-resources. UBX-22015849 - R02

8 Labeling and ordering information Page 20 of 23

[1] MIA-M10Q Integration manual, UBX-21028173 [2] u-blox M10 SPG 5.10 Release notes, UBX-22001426 [3] u-blox M10 SPG 5.10 Interface description, UBX-21035062 [4] u-blox Package Information Guide, UBX-14001652 [5] MSL standard IPC/JEDEC J-STD-020, www.jedec.org For regular updates to u-blox documentation and to receive product change notifications please register on our homepage https://www.u-blox.com. UBX-22015849 - R02 Related documents Page 21 of 23 C1-Public

Revision history

Revision Date Name Comments R01 15-Jun-2022 imar, jesk, msul, oola Objective specification R02 31-Aug-2022 oola Document status replaced by Product status in Document information. Engineering sample. Changed default GNSS configuration to GPS, Galileo and BeiDou B1I with QZSS and SBAS. Updated maximum navigation update rates, AssistNow aided TTFF, and Indicative power requirements. UBX-22015849 - R02 Revision history Page 22 of 23 C1-Public

For further support and contact information, visit us at www.u-blox.com/support. UBX-22015849 - R02 Page 23 of 23 C1-Public