Texas Instruments TMAG5110-5111EVM User Manual Download Page 11

4 Circuitry

This section summarizes the EVM subsystems and their components. See 

Figure 3-1

 for the location of each 

subsystem on the PCB.

4.1 Power Block

This block is used to provide power to the PCB. J1 is a micro-USB connector used to conveniently power the 
EVM, but a supply may also be used with any of the GND or VCC test points (TP1-TP4). Note that there are 
also GND and VCC test points at the bottom of the PCB for convenience. C9 is a bypass capacitor used to help 
mitigate noise when powering the device from the micro-USB connector.

4.2 Hall Device Block

This block has the sensing devices, with any needed components, test points and LED indicators. The magnets 
are placed in this section to interact with the Hall sensors.

4.2.1 TMAG5110 Side

U1 is the TMAG5110 which is a dual Hall latch with a quadrature output. C1 is a bypass capacitor that is placed 
near the sensor to help mitigate power supply noise and provide current quickly to the device when needed. R1 
and R2 are pull up resistors since the device output is open drain. Note that a different resistance can be used 
for these resistors, based on the system speed and power requirements.

The TMAG5110 outputs can be directly monitored or used with the included test points TP5 and TP6 (for OUT2 
and OUT1, respectively). D21 and D22 show the logic state of each output. R3 and R4 are current limiting 
resistors to control the brightness of the LEDs.

4.2.2 TMAG5111 Side

U11, C11, R27, R28, TP7, TP8, D23, D24, R29, and R30 perform the same functions as the respective 
components from the TMAG5110, except that U11 is the TMAG5111 which is a dual Hall latch with speed and 
direction output.

4.3 Quadrature Decoder Block

This block is used to process data to prepare the signal for the up/down counter block.

4.3.1 TMAG5110 Side

U2 is the LS7184N-S, which is a quadrature encoder to counter interface chip. This chip converts the outputs of 
the TMAG5110 to use directly with an up/down counter by outputting a speed pulse and a direction. Pin 6 is left 
floating to put the device in x4 mode, which gives a speed pulse for both rising and falling edges of each output 
from the TMAG5110. R5 is the RBIAS resistor which is used to adjust the output clock pulse width T

OW

. In this 

case, 470 kΩ was used to set approximately 5.5-µs T

OW

. C2 is a bypass capacitor that is placed near the IC to 

help mitigate power supply noise and provide current quickly to the device when needed.

4.3.2 TMAG5111 Side

Quadrature decoding is not needed for the TMAG5111.

4.4 Up/Down Counter Block

This block is used to convert direction and count data to a binary coded decimal (BCD) number from 0–9.

4.4.1 TMAG5110 Side

U3 is the CD74HC190, which is a BCD up/down counter. This counter only counts on the rising edge of the 
pulse sent from the quadrature decoder (U2). The pre-settable pins are set to GND to give an initial value of 
0. C3 is a bypass capacitor that is placed near the IC to help mitigate power supply noise and provide current 
quickly to the device when needed. C8 and R6 create an RC filter which are used with a single Schmitt-Trigger 
buffer (U8, SN74LVC1G17) to delay the LOAD signal for the up/down counter (U3). This is done so that the 
initial value of 0 is loaded to the counter after the device has been powered on.

www.ti.com

Circuitry

SLYU050B – JUNE 2020 – REVISED JULY 2021

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TMAG5110-5111EVM Evaluation Module

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Summary of Contents for TMAG5110-5111EVM

Page 1: ...G5110 1 dual latch 2D Hall effect sensors Throughout this document the terms evaluation board evaluation module and EVM are synonymous with the TMAG5110 5111EVM This document includes a schematic refe...

Page 2: ...ing Film 8 Figure 3 3 EVM Magnet Placement Options 9 Figure 3 4 Position Module Standard Placement 10 Figure 3 5 Position Module Rotated Placement 10 Figure 5 1 TMAG5110 Schematic 13 Figure 5 2 TMAG51...

Page 3: ...and power supply voltage ranges These devices are currently available in a 5 pin SOT 23 package This EVM uses a 5 V supply and both the TMAG5110B2 and TMAG5111B2 with sensitivity in the ZX axes and a...

Page 4: ...to the TMAG5110 5111EVM Click the links in Table 1 3 for further information on the TMAG5110 1 The device name links to the product web folder on www ti com The literature number links to the documen...

Page 5: ...vide basic functional evaluation of the devices The layout is not intended to be a model for the target circuit nor is it laid out for electromagnetic compatibility EMC testing The TMAG5110 5111EVM co...

Page 6: ...r supply voltage to 5 V Do not turn on the power yet ii Connect the power supply V terminal to the black GND test point on the EVM iii Connect the power supply V terminal to the red VCC test point on...

Page 7: ...tch state of the individual internal Hall sensors So for this case OUT1 is for the Z axis sensor and OUT2 is for the Xaxis sensor For TMAG5111 as the magnet is rotated OUT1 will indicated speed and OU...

Page 8: ...for rotary encoding shown in Figure 3 3 The magnets can easily be rotated while in these positions The two LED arrays at the bottom D1 D10 and D11 D20 will each have one LED lit up either green or blu...

Page 9: ...s from side to side to show the design and alignment flexibility of the TMAG5110 and TMAG5111 To attach the module insert the rod into the center hole of the EVM and tighten the nut while holding the...

Page 10: ...placed near stronger magnets or the magnetic pole configuration may get altered It is best practice not to touch the multipole ring magnets to any other magnet Operation www ti com 10 TMAG5110 5111EVM...

Page 11: ...with speed and direction output 4 3 Quadrature Decoder Block This block is used to process data to prepare the signal for the up down counter block 4 3 1 TMAG5110 Side U2 is the LS7184N S which is a...

Page 12: ...ich are 2 1 SPDT 4 channel powered off protection switches that are used to split each output from U4 into two outputs The direction line from U2 is used as an input to the switches to determine which...

Page 13: ...VCC GND 0 1uF C6 VCC GND 0 1uF C7 VCC GND GND GND GND GND GND GND DIR_5110 DIR_5110 DIR_5110 DIR_5110 B2 A1 U8A GND B1 VCC A2 U8B VCC GND VCC 10 0k R6 5600pF C8 GND B R G 3 4 1 2 D1 EAST1616RGBA3 B R...

Page 14: ...3 4 1 2 D13 EAST1616RGBA3 B R G 3 4 1 2 D14 EAST1616RGBA3 B R G 3 4 1 2 D15 EAST1616RGBA3 B R G 3 4 1 2 D16 EAST1616RGBA3 B R G 3 4 1 2 D17 EAST1616RGBA3 B R G 3 4 1 2 D18 EAST1616RGBA3 B R G 3 4 1 2...

Page 15: ...h workmanship standards IPC A 610 Class 2 unless otherwise specified CE Mark LOGO PCB FCC disclaimer LOGO PCB WEEE logo 1 H3 NYPMS 440 0025 PH H7 1902C 1 H4 NYPMS 440 0025 PH H8 1902C MECH MAG1 G16 A...

Page 16: ...B layers of the EVM Figure 5 4 Top View Figure 5 5 Top Layer Schematics PCB Layout and Bill of Materials www ti com 16 TMAG5110 5111EVM Evaluation Module SLYU050B JUNE 2020 REVISED JULY 2021 Submit Do...

Page 17: ...igure 5 7 Bottom Layer www ti com Schematics PCB Layout and Bill of Materials SLYU050B JUNE 2020 REVISED JULY 2021 Submit Document Feedback TMAG5110 5111EVM Evaluation Module 17 Copyright 2021 Texas I...

Page 18: ...Kitting Item Magnetic Viewing Film Purchase as needed MV43 K J Magnetics H15 1 Kitting Item 3025010 03 Cable USB A MALE to Micro B MALE 3 CDDS 6612041 6612041 Qualtek J1 1 Connector Receptacle Micro U...

Page 19: ...nnel powered off protection switch with 1 8 V logic RSV0016A UQFN 16 RSV0016A TMUX1574RSVR Texas Instruments U8 U12 2 Single Schmitt Trigger Buffer YZV0004ADAD LARGE T R YZV0004ADAD SN74LVC1G17YZVR Te...

Page 20: ...PCB images to match online data sheet 16 Changes from Revision June 2020 to Revision A April 2021 Page Updated the numbering format for tables figures and cross references throughout the document 1 U...

Page 21: ...ther than TI b the nonconformity resulted from User s design specifications or instructions for such EVMs or improper system design or c User has not paid on time Testing and other quality control tec...

Page 22: ...These limits are designed to provide reasonable protection against harmful interference in a residential installation This equipment generates uses and can radiate radio frequency energy and if not in...

Page 23: ...instructions set forth by Radio Law of Japan which includes but is not limited to the instructions below with respect to EVMs which for the avoidance of doubt are stated strictly for convenience and s...

Page 24: ...any interfaces electronic and or mechanical between the EVM and any human body are designed with suitable isolation and means to safely limit accessible leakage currents to minimize the risk of electr...

Page 25: ...R DAMAGES ARE CLAIMED THE EXISTENCE OF MORE THAN ONE CLAIM SHALL NOT ENLARGE OR EXTEND THIS LIMIT 9 Return Policy Except as otherwise provided TI does not offer any refunds returns or exchanges Furthe...

Page 26: ...are subject to change without notice TI grants you permission to use these resources only for development of an application that uses the TI products described in the resource Other reproduction and...

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