# EGX-MXM-RTX5000

NVIDIA Turing™ TU104 Quadro® RTX 5000 Embedded Graphics Module

User's Manual

![Close-up of a green printed circuit board with multiple microchips and gold contacts (no visible text or symbols)](.0131-egx-mxm-rtx5000-user-manual/90662a491db5754b7d12009004d70ab7fb40dcca57be234076af4b9ad4329ae9.jpg)

Manual Rev.: 1.0

Revision Date: August 17, 2021

Part No: 50M-00043-1000

Revision History

<table><tr><td>Revision</td><td>Release Date</td><td>Description of Change(s)</td></tr><tr><td>1.0</td><td>2021-08-17</td><td>Initial release</td></tr></table>

# Preface

# Copyright © 2021 ADLINK Technology Inc.

This document contains proprietary information protected by copyright. All rights are reserved. No part of this manual may be reproduced by any mechanical, electronic, or other means in any form without prior written permission of the manufacturer.

# Disclaimer

The information in this document is subject to change without prior notice in order to improve reliability, design, and function and does not represent a commitment on the part of the manufacturer.

In no event will the manufacturer be liable for direct, indirect, special, incidental, or consequential damages arising out of the use or inability to use the product or documentation, even if advised of the possibility of such damages.

# Environmental Responsibility

ADLINK is committed to fulfill its social responsibility to global environmental preservation through compliance with the European Union's Restriction of Hazardous Substances (RoHS) directive and Waste Electrical and Electronic Equipment (WEEE) directive. Environmental protection is a top priority for ADLINK. We have enforced measures to ensure that our products, manufacturing processes, components, and raw materials have as little impact on the environment as possible. When products are at their end of life, our customers are encouraged to dispose of them in accordance with the product disposal and/or recovery programs prescribed by their nation or company.

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Battery Labels (for products with battery)
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# California Proposition 65 Warning

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WARNING: This product can expose you to chemicals including acrylamide, arsenic, benzene, cadmium, Tris(1,3-dichloro-2-propyl) phosphate (TDCPP), 1,4-Dioxane, formaldehyde, lead, DEHP, styrene, DINP, BBP, PVC, and vinyl materials, which are known to the State of California to cause cancer, and acrylamide, benzene, cadmium, lead, mercury, phthalates, toluene, DEHP, DIDP, DnHP, DBP, BBP, PVC, and vinyl materials, which are known to the State of California to cause birth defects or other reproductive harm. For more information go to www.P65Warnings.ca.gov.

# Trademarks

Product names mentioned herein are used for identification purposes only and may be trademarks and/or registered trademarks of their respective companies.

# Conventions

Take note of the following conventions used throughout this manual to make sure that users perform certain tasks and instructions properly.

![The image displays a white document icon featuring a folded top-right corner and faint horizontal lines, overlaid with a large, bold red checkmark.](.0131-egx-mxm-rtx5000-user-manual/09175f901a6b5dca5f8391ba3b6da1424b3139d87c0894d56f878c63b3f1151b.jpg)
NOTE:

Additional information, aids, and tips that help users perform tasks.

![A yellow triangular warning sign with a black border featuring a large black exclamation point in the center.](.0131-egx-mxm-rtx5000-user-manual/16dfc54c9488036b98a2888b89beafe6da5f8270c18a42469bc5530833024ea5.jpg)
CAUTION:

Information to prevent minor physical injury, component damage, data loss, and/or program corruption when trying to complete a task.

![The image features a red triangle warning sign containing a white exclamation point in the center, set against a white background.](.0131-egx-mxm-rtx5000-user-manual/e7045fa8cac4677d7e4eeaba29737e97582e5dba78b0575dd6a6310b30c4ab42.jpg)
WARNING:

Information to prevent serious physical injury, component damage, data loss, and/or program corruption when trying to complete a specific task.

# Table of Contents

# Revision History...... ii

# Preface...... iii

# List of Tables...... vii

# List of Figures ix

# 1 Introduction ...... 1

1.1 Overview.... 1
1.2 Features.... 1
1.3 Specifications.... 2

1.3.1 Graphics Module 2
1.3.2 Display Support and Options.... 3
1.3.3 Software Support.... 3
1.3.4 Graphics Options.... 3

1.4 Functional Block Diagram 4
1.5 Mechanical Layout.... 5
1.6 MXM Connector Pin Definitions 8
1.7 Thermal Policy 13

1.7.1 Fan Control....14

1.8 Unpacking Checklist 14

# 2 System Requirements.... 15

2.1 Power Sequencing.... 15
2.2 Module Power Up and Down 16
2.3 Reset Requirements 16
2.4 Dual Mode DisplayPort Implementation 17
2.5 DVI/HDMI on DisplayPort Interface 18
2.6 Driver Installation 19
2.7 Certifications & Agencies.... 19

Important Safety Instructions.... 21

Getting Service 23

# List of Tables

Table 1-1: Graphics Module Display Options .... 3
Table 1-2: NVIDIA Link Display Types .... 3
Table 1-3: MXM Connector Pin Definitions....8
Table 1-4: Thermal Policy....13
Table 1-5: Thermal Policy....14

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# List of Figures

Figure 1-1: EGX-MXM-RTX5000 Functional Block Diagram ..... 4
Figure 1-2: EGX-MXM-RTX5000 Dimensions .... 5
Figure 1-3: EGX-MXM-RTX5000 Layout - Top and Side Views ... 6
Figure 1-4: EGX-MXM-RTX5000 Layout - Bottom View......7
Figure 1-5: MXM Connector....7
Figure 2-1: Power Sequencing 15
Figure 2-2: Module Power Down 16
Figure 2-3: Reset Sequencing 16
Figure 2-4: Dual Mode DisplayPort Implementation ..... 17
Figure 2-5: DVI/HDMI on DisplayPort Interface 18

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# 1 Introduction

# 1.1 Overview

The EGX-MXM-RTX5000 embedded graphics module features the NVIDIA Quadro® RTX 5000 GPU based on the advanced NVIDIA Turing™ TU104 architecture in MXM 3.1 Type B+ form factor. The EGX-MXM-RTX5000 brings a new level of performance to visual graphics and computing applications, fully integrating hardware acceleration for both graphics and computing code, enabling hardware acceleration for a wider class of software applications than ever before.

The EGX-MXM-RTX5000 offers Quadro-level performance, features, SDK and API support, and is suitable for embedded, ruggedized, or mobile system designs. With its 3072 CUDA core Turing GPU and additional 384 Tensors Cores, the EGX-MXM-RTX5000 supports 4 FHD displays, delivering the latest leading-edge GPU performance for your embedded system with AI capabilities enabled. Its superior graphics performance, GPU computing and video capabilities are the ideal solution for systems such as digital signage, medical image, defense and aerospace application.

# 1.2 Features

▶ MXM 3.1 Type B+ FF (82 x 110 mm)
▶ 3072 CUDA cores
▶ 9.4 TFLOPS SP peak performance
▶ 16 GB GDDR6 memory
▶ 336 GB/s maximal memory bandwidth
▶ Support for up to 4 DisplayPort 1.4b displays, 110W TGP
▶ 5 year performance warranty
▶ NVIDIA Quadro RTX 5000 GPU

▷ Package 37.5 x 37.5 mm

▷ Base Clock @1035 MHz

▶ Boost Clock @1530 MHz

# 1.3 Specifications

# 1.3.1 Graphics Module

<table><tr><td colspan="2">Graphics Core</td></tr><tr><td>Architecture</td><td>NVIDIA® TuringTM TU104</td></tr><tr><td>GPU</td><td>Quadro® RTX 5000</td></tr><tr><td>Display Outputs</td><td>4x DisplayPort 1.4Max resolution 7680 x4320 @60Hz DSCMST: 1920x1080 for 4 ports</td></tr><tr><td>Signal Interface</td><td>MXM 3.1, PCI Express Gen3 x16 support</td></tr><tr><td colspan="2">GPGPU Computing</td></tr><tr><td>CUDA Support</td><td>3072 CUDA cores, 9.4 TFLOPS SP PeakCUDA Toolkit 8.0, CUDA Compute version 6.1OpenCLTM 1.2, DirectX® 12, OpenGL 4.6, Vulcan 1.0</td></tr><tr><td colspan="2">Memory</td></tr><tr><td>GDDR6 Memory</td><td>16GB @14Gbps (7GHz)</td></tr><tr><td>Configuration</td><td>256Mb x32</td></tr><tr><td>Bandwidth</td><td>128-bit336 GB/s data ratex32 GDDR6 DRAM device data width</td></tr><tr><td colspan="2">Status LED</td></tr><tr><td>Color</td><td>Yellow: NormalRed: Abnormal</td></tr><tr><td colspan="2">Physical</td></tr><tr><td>Dimensions</td><td>82 (W) x 110 (D) x 4.8 (H) mm</td></tr><tr><td>Locking Mechanism</td><td>Standard MXM 3.1 Type B+</td></tr><tr><td colspan="2">Environmental</td></tr><tr><td>Operating Temp.</td><td>Standard: 0 to 55°C</td></tr><tr><td>Storage Temp.</td><td>-40°C to 85°C</td></tr><tr><td colspan="2">Operating Systems</td></tr><tr><td>Supported OS</td><td>Windows 10 &amp; Linux Drivers, 64-bit</td></tr></table>

# 1.3.2 Display Support and Options

<table><tr><td>DisplayPort</td><td>▶ 1.2/1.3/1.4▶ Max. pixel clock: 1050 MP/s▶ Max. bandwidth: 25.9 GB/s/connector</td></tr><tr><td>HDMI 2.0</td><td>Max. resolution: 4096 x 2160 at 60 Hz</td></tr><tr><td>HDCP Support</td><td>1.3 (DP), 2.2 (DP, HDMI)</td></tr></table>

# 1.3.3 Software Support

▶ CUDA Toolkit 8.0 and higher
▶ CUDA Compute version 6.1 and higher
▶ OpenCL™ 1.2
▶ DirectX® 12
▶ OpenGL 4.6
▶ Vulcan 1.0

# 1.3.4 Graphics Options

The EGX-MXM-RTX5000 supports 4xDisplayPort by default, with display options as shown below. LVDS\_L (Link B) has no output when using DP\_D for Virtual Link design.

<table><tr><td>MXM port</td><td>DP_A</td><td>DP_B</td><td>DP_C</td><td>DP_D</td><td>LVDS_L</td></tr><tr><td>NVIDIA Link</td><td>Link C</td><td>Link A</td><td>Link E</td><td>Link F</td><td>Link B</td></tr></table>

Table 1-1: Graphics Module Display Options

<table><tr><td>Link</td><td>Display Type</td></tr><tr><td>Link A</td><td>DisplayPort, DVI (Single Link or Dual Link with Link B)</td></tr><tr><td>Link B</td><td>DisplayPort, DVI (Dual Link with A)</td></tr><tr><td>Link C</td><td>DisplayPort, HDMI</td></tr><tr><td>Link D</td><td>Not supported</td></tr><tr><td>Link E</td><td>DisplayPort, HDMI</td></tr><tr><td>Link F</td><td>DisplayPort</td></tr></table>

Table 1-2: NVIDIA Link Display Types

# 1.4 Functional Block Diagram

![Based on the provided image, here is the accurate description of the flowchart blocks and their connections:\n\n**Labeled Blocks:**\n*   **MXM 3.1 Connector** (Vertical text on the left)\n*   **NVIDIA Quadro® RTX 5000 GPU** (Vertical text in the center)\n*   **16GB GDDR6** (Text: '256b, 256Mx16')\n*   **Power Supply** (Text: 'NVVDD-PH1', 'NVVDD-PH5', 'NVVDD-PH2', 'NVVDD-PH6', 'NVVDD-PH3', 'NVVDD-PH7', 'NVVDD-PH4')\n*   **Power Supply** (Text: 'FBVDD-PH1', 'FBVDD-PH2')\n*   **Power Supply** (Text: 'PEX_VDD')\n*   **Power Supply** (Text: 'VDD_AON/MAIN')\n*   **Power Supply** (Text: 'NV3V3')\n*   **SPI - VBIOS**\n\n**Connections:**\n\n**Between MXM 3.1 Connector and NVIDIA GPU:**\n*   **PCIE x16 Gen3** connects bidirectionally to **PCIE**.\n*   **DP_B** connects to **IFPA**.\n*   **LVDS_L** connects to **IFPB** (Annotation above line: 'DP1 4disable when virtualink').\n*   **DP_A** connects to **IFPC** (Annotation above line: 'DP1 4').\n*   **DP_C** connects to **IFPE** (Annotation above line: 'DP1 4').\n*   **DP_D** connects to **IFPF** (Annotation above line: 'DP1 4/Virtualink').\n*   **Power Management (PWR_EN, PWR_GOOD, WAKE#)** connects to **PM**.\n*   An unlabeled line connects to **I2CS**.\n*   An unlabeled line connects to **JTAG**.\n*   **SPI** connects to **SPI - VBIOS**.\n\n**Between NVIDIA GPU and Right-Side Components:**\n*   **PCIE** connects to the **16GB GDDR6** block (Connection line labeled: '8Gb GDDR6', '14Gbps').\n*   An unlabeled line connects to the **Power Supply** block containing 'NVVDD-PH1' through 'NVVDD-PH4'.\n*   An unlabeled line connects to the **Power Supply** block containing 'FBVDD-PH1' and 'FBVDD-PH2'.\n*   An unlabeled line connects to the **Power Supply** block containing 'PEX_VDD'.\n*   An unlabeled line connects to the **Power Supply** block containing 'VDD_AON/MAIN'.\n*   An unlabeled line connects to the **Power Supply** block containing 'NV3V3'.](.0131-egx-mxm-rtx5000-user-manual/155c851fae22897cc1580eefdb0ad81a3b9c13206909f787bddc7a232daf85ff.jpg)

Figure 1-1: EGX-MXM-RTX5000 Functional Block Diagram

# 1.5 Mechanical Layout

![The image shows a white document icon with a folded top-left corner and faint horizontal lines. A large, bold red checkmark is superimposed diagonally across the center of the document.](.0131-egx-mxm-rtx5000-user-manual/35b2fca58465213e9aa6202efe28bf633f2a696b106cdbeb173bbc4ca3a9f3d9.jpg)
NOTE:

All dimensions shown are in mm

![82\n110](.0131-egx-mxm-rtx5000-user-manual/20d79469c770e64d50ba731b29a11f3dcd6f4f05939cc82ee7481313519029f8.jpg)

Figure 1-2: EGX-MXM-RTX5000 Dimensions

![8\nB\nC\nC\nB\n8\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\n2\nB\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nC\nMINT](.0131-egx-mxm-rtx5000-user-manual/f9e47c78af9905c927a1d7f1c090f4dbc801b14a7ee0f7be3f2753879e83ed91.jpg)

Top Side

![1.2\nA](.0131-egx-mxm-rtx5000-user-manual/7a04b4d8298b4f2179a4b8d3ba9e76af6856eccf914334e01b34bc8a057489c3.jpg)

![The image displays a technical drawing of two concentric circles. A dimension line with arrowheads points to the outer circle, labeled 'Ø 5'. Another dimension line with arrowheads points to the inner circle, labeled 'Ø 3.20'.](.0131-egx-mxm-rtx5000-user-manual/9eccbc54a78a1ff228a3ed843960e1f9f7842338fe9c6b4c4a62b45cf547d0b4.jpg)
B-Section
Scale 2:1

![The image displays a black and white technical drawing featuring a cross-section of two concentric circles with a small central dot. Two dimension lines with arrows indicate diameters: one pointing to the outer circle reads 'Ø 6,' and another pointing to the inner circle reads 'Ø 3.20.'](.0131-egx-mxm-rtx5000-user-manual/0a15e7ec6727fc5ce0a3f2e777cbb8be8aa1c17e8a0b8a9104096fe944384c92.jpg)
C-Section
Scale 2:1

![The image displays a technical line drawing featuring a right-angled triangle structure. On the left, a vertical line extends downwards. At the bottom, a horizontal line extends to the right, meeting the vertical line at a right angle, indicated by a small square symbol. A diagonal line connects the top of the vertical line to the far right end of the horizontal line.\n\nAt the top, an arc connects the vertical and diagonal lines to indicate an angle. Next to this arc is the text **45°±10°**. Below the triangle, a vertical dimension line indicates the height of the vertical side, labeled with the number **0.18**.](.0131-egx-mxm-rtx5000-user-manual/7de1dd24136e81344abf2e0f3e61e39cb9fb8473ff9b2319c33486111747887d.jpg)
A-Section
Scale 2:1

PTH Hole
2 pcs
PTH Hole
4 pcs
Top Side: OD=6.0mm; ID=3.2mm
Bottom Side: OD=7.0mm; ID=3.2mm
![1.25\n0.50\n1.25\n0.50\n1\n3.75MIN\nD-Section](.0131-egx-mxm-rtx5000-user-manual/e62e8ff6c706d44c00b07bdb3b208673325478e7160525ea3f0cf428436562cf.jpg)

Scale 2:1

![1\n0.50\n1\n0.50](.0131-egx-mxm-rtx5000-user-manual/c52e2b14e3782fa1163751f8b45924f27b9451fa91c91c14cf6a75783a0d7758.jpg)

E-Section
Scale 2:1
Figure 1-3: EGX-MXM-RTX5000 Layout - Top and Side Views

![0\nB\nC\nC\nB\n3.1±0.08\n39.76\n34.74\n31.00\n28.75\nE\n129x0.35\n2x4.82\n2.35\n1.85](.0131-egx-mxm-rtx5000-user-manual/a23d94058a683c2f39a194d8cc18d0654e53f4d617aef1429817b19417f81ee8.jpg)

Figure 1-4: EGX-MXM-RTX5000 Layout - Bottom View

![Pin 281\nPin 125\n(R G5 X G6)\nPin 133\nPin E1\nPin E3\nPin 134\nPin 124\nPin E2\nPin E4](.0131-egx-mxm-rtx5000-user-manual/0a772e0b2ab4786df56be52134896db59e0d5b09101f624538f27061264a8777.jpg)

Figure 1-5: MXM Connector

# 1.6 MXM Connector Pin Definitions

<table><tr><td colspan="3">Primary Side (bottom side)</td><td colspan="3">Secondary Side (top side)</td></tr><tr><td>Pin</td><td>Signal</td><td>PU/PD</td><td>Pin</td><td>Signal</td><td>PU/PD</td></tr><tr><td>E1</td><td>PWR_SRC</td><td></td><td>E2</td><td>PWR_SRC</td><td></td></tr><tr><td>E3</td><td>GND</td><td></td><td>E4</td><td>GND</td><td></td></tr><tr><td>1</td><td>5V</td><td></td><td>2</td><td>PRSNT_R#</td><td>0ohm PD</td></tr><tr><td>3</td><td>5V</td><td></td><td>4</td><td>RSVD</td><td></td></tr><tr><td>5</td><td>5V</td><td></td><td>6</td><td>PWR_GOOD</td><td></td></tr><tr><td>7</td><td>5V</td><td></td><td>8</td><td>PWR_EN</td><td></td></tr><tr><td>9</td><td>5V</td><td></td><td>10</td><td>27MHZ_REF</td><td></td></tr><tr><td>11</td><td>GND</td><td></td><td>12</td><td>GND</td><td></td></tr><tr><td>13</td><td>GND</td><td></td><td>14</td><td>RSVD</td><td></td></tr><tr><td>15</td><td>GND</td><td></td><td>16</td><td>RSVD</td><td></td></tr><tr><td>17</td><td>GND</td><td></td><td>18</td><td>PWR_LEVEL</td><td>100K PU to 3.3V</td></tr><tr><td>19</td><td>RSVD</td><td></td><td>20</td><td>TH_OVERT#</td><td>100K PU to 3.3V</td></tr><tr><td>21</td><td>RSVD</td><td></td><td>22</td><td>TH_ALERT#</td><td>100K PU to 3.3V</td></tr><tr><td>23</td><td>RSVD</td><td></td><td>24</td><td>RSVD</td><td></td></tr><tr><td>25</td><td>RSVD</td><td></td><td>26</td><td>RSVD</td><td></td></tr><tr><td>27</td><td>RSVD</td><td></td><td>28</td><td>RSVD</td><td></td></tr><tr><td>29</td><td>RSVD</td><td></td><td>30</td><td>RSVD</td><td></td></tr><tr><td>31</td><td>RSVD</td><td></td><td>32</td><td>SMB_DAT</td><td>100K PU to 3.3V</td></tr><tr><td>33</td><td>RSVD</td><td></td><td>34</td><td>SMB_CLK</td><td>100K PU to 3.3V</td></tr><tr><td>35</td><td>RSVD</td><td></td><td>36</td><td>GND</td><td></td></tr><tr><td>37</td><td>GND</td><td></td><td>38</td><td>RSVD</td><td></td></tr><tr><td>39</td><td>RSVD</td><td></td><td>40</td><td>RSVD</td><td></td></tr><tr><td>41</td><td>RSVD</td><td></td><td>42</td><td>RSVD</td><td></td></tr><tr><td>43</td><td>RSVD</td><td></td><td>44</td><td>RSVD</td><td></td></tr><tr><td>45</td><td>RSVD</td><td></td><td>46</td><td>GND</td><td></td></tr></table>

Table 1-3: MXM Connector Pin Definitions

<table><tr><td colspan="3">Primary Side (bottom side)</td><td colspan="3">Secondary Side (top side)</td></tr><tr><td>Pin</td><td>Signal</td><td>PU/PD</td><td>Pin</td><td>Signal</td><td>PU/PD</td></tr><tr><td>47</td><td>GND</td><td></td><td>48</td><td>PEX_TX15#</td><td></td></tr><tr><td>49</td><td>PEX_RX15#</td><td></td><td>50</td><td>PEX_TX15</td><td></td></tr><tr><td>51</td><td>PEX_RX15</td><td></td><td>52</td><td>GND</td><td></td></tr><tr><td>53</td><td>GND</td><td></td><td>54</td><td>PEX_TX14#</td><td></td></tr><tr><td>55</td><td>PEX_RX14#</td><td></td><td>56</td><td>PEX_TX14</td><td></td></tr><tr><td>57</td><td>PEX_RX14</td><td></td><td>58</td><td>GND</td><td></td></tr><tr><td>59</td><td>GND</td><td></td><td>60</td><td>PEX_TX13#</td><td></td></tr><tr><td>61</td><td>PEX_RX13#</td><td></td><td>62</td><td>PEX_TX13</td><td></td></tr><tr><td>63</td><td>PEX_RX13</td><td></td><td>64</td><td>GND</td><td></td></tr><tr><td>65</td><td>GND</td><td></td><td>66</td><td>PEX_TX12#</td><td></td></tr><tr><td>67</td><td>PEX_RX12#</td><td></td><td>68</td><td>PEX_TX12</td><td></td></tr><tr><td>69</td><td>PEX_RX12</td><td></td><td>70</td><td>GND</td><td></td></tr><tr><td>71</td><td>GND</td><td></td><td>72</td><td>PEX_TX11#</td><td></td></tr><tr><td>73</td><td>PEX_RX11#</td><td></td><td>74</td><td>PEX_TX11</td><td></td></tr><tr><td>75</td><td>PEX_RX11</td><td></td><td>76</td><td>GND</td><td></td></tr><tr><td>77</td><td>GND</td><td></td><td>78</td><td>PEX_TX10#</td><td></td></tr><tr><td>79</td><td>PEX_RX10#</td><td></td><td>80</td><td>PEX_TX10</td><td></td></tr><tr><td>81</td><td>PEX_RX10</td><td></td><td>82</td><td>GND</td><td></td></tr><tr><td>83</td><td>GND</td><td></td><td>84</td><td>PEX_TX9#</td><td></td></tr><tr><td>85</td><td>PEX_RX9#</td><td></td><td>86</td><td>PEX_TX9</td><td></td></tr><tr><td>87</td><td>PEX_RX9</td><td></td><td>88</td><td>GND</td><td></td></tr><tr><td>89</td><td>GND</td><td></td><td>90</td><td>PEX_TX8#</td><td></td></tr><tr><td>91</td><td>PEX_RX8#</td><td></td><td>92</td><td>PEX_TX8</td><td></td></tr><tr><td>93</td><td>PEX_RX8</td><td></td><td>94</td><td>GND</td><td></td></tr><tr><td>95</td><td>GND</td><td></td><td>96</td><td>PEX_TX7#</td><td></td></tr><tr><td>97</td><td>PEX_RX7#</td><td></td><td>98</td><td>PEX_TX7</td><td></td></tr><tr><td>99</td><td>PEX_RX7</td><td></td><td>100</td><td>GND</td><td></td></tr><tr><td>101</td><td>GND</td><td></td><td>102</td><td>PEX_TX6#</td><td></td></tr><tr><td>103</td><td>PEX_RX6#</td><td></td><td>104</td><td>PEX_TX6</td><td></td></tr><tr><td>105</td><td>PEX_RX6</td><td></td><td>106</td><td>GND</td><td></td></tr></table>

Table 1-3: MXM Connector Pin Definitions

<table><tr><td colspan="3">Primary Side (bottom side)</td><td colspan="3">Secondary Side (top side)</td></tr><tr><td>Pin</td><td>Signal</td><td>PU/PD</td><td>Pin</td><td>Signal</td><td>PU/PD</td></tr><tr><td>107</td><td>GND</td><td></td><td>108</td><td>PEX_TX5#</td><td></td></tr><tr><td>109</td><td>PEX_RX5#</td><td></td><td>110</td><td>PEX_TX5</td><td></td></tr><tr><td>111</td><td>PEX_RX5</td><td></td><td>112</td><td>GND</td><td></td></tr><tr><td>113</td><td>GND</td><td></td><td>114</td><td>PEX_TX4#</td><td></td></tr><tr><td>115</td><td>PEX_RX4#</td><td></td><td>116</td><td>PEX_TX4</td><td></td></tr><tr><td>117</td><td>PEX_RX4</td><td></td><td>118</td><td>GND</td><td></td></tr><tr><td>119</td><td>GND</td><td></td><td>120</td><td>PEX_TX3#</td><td></td></tr><tr><td>121</td><td>PEX_RX3#</td><td></td><td>122</td><td>PEX_TX3</td><td></td></tr><tr><td>123</td><td>PEX_RX3</td><td></td><td>124</td><td>GND</td><td></td></tr><tr><td>125</td><td>GND</td><td></td><td>126</td><td>KEY</td><td></td></tr><tr><td>127</td><td>KEY</td><td></td><td>128</td><td>KEY</td><td></td></tr><tr><td>129</td><td>KEY</td><td></td><td>130</td><td>KEY</td><td></td></tr><tr><td>131</td><td>KEY</td><td></td><td>132</td><td>KEY</td><td></td></tr><tr><td>133</td><td>GND</td><td></td><td>134</td><td>GND</td><td></td></tr><tr><td>135</td><td>PEX_RX2#</td><td></td><td>136</td><td>PEX_TX2#</td><td></td></tr><tr><td>137</td><td>PEX_RX2</td><td></td><td>138</td><td>PEX_TX2</td><td></td></tr><tr><td>139</td><td>GND</td><td></td><td>140</td><td>GND</td><td></td></tr><tr><td>141</td><td>PEX_RX1#</td><td></td><td>142</td><td>PEX_TX1#</td><td></td></tr><tr><td>143</td><td>PEX_RX1</td><td></td><td>144</td><td>PEX_TX1</td><td></td></tr><tr><td>145</td><td>GND</td><td></td><td>146</td><td>GND</td><td></td></tr><tr><td>147</td><td>PEX_RX0#</td><td></td><td>148</td><td>PEX_TX0#</td><td></td></tr><tr><td>149</td><td>PEX_RX0</td><td></td><td>150</td><td>PEX_TX0</td><td></td></tr><tr><td>151</td><td>GND</td><td></td><td>152</td><td>GND</td><td></td></tr><tr><td>153</td><td>PEX_REFCLK#</td><td></td><td>154</td><td>PEX_CLK_REQ#</td><td></td></tr><tr><td>155</td><td>PEX_REFCLK</td><td></td><td>156</td><td>PEX_RST#</td><td></td></tr><tr><td>157</td><td>GND</td><td></td><td>158</td><td>RSVD</td><td></td></tr><tr><td>159</td><td>RSVD</td><td></td><td>160</td><td>RSVD</td><td></td></tr><tr><td>161</td><td>RSVD</td><td></td><td>162</td><td>RSVD</td><td></td></tr><tr><td>163</td><td>RSVD</td><td></td><td>164</td><td>RSVD</td><td></td></tr><tr><td>165</td><td>RSVD</td><td></td><td>166</td><td>GND</td><td></td></tr></table>

Table 1-3: MXM Connector Pin Definitions

<table><tr><td colspan="3">Primary Side (bottom side)</td><td colspan="3">Secondary Side (top side)</td></tr><tr><td>Pin</td><td>Signal</td><td>PU/PD</td><td>Pin</td><td>Signal</td><td>PU/PD</td></tr><tr><td>167</td><td>RSVD</td><td></td><td>168</td><td>RSVD</td><td></td></tr><tr><td>169</td><td>RSVD</td><td></td><td>170</td><td>RSVD</td><td></td></tr><tr><td>171</td><td>RSVD</td><td></td><td>172</td><td>RSVD</td><td></td></tr><tr><td>173</td><td>GND</td><td></td><td>174</td><td>GND</td><td></td></tr><tr><td>175</td><td>RSVD</td><td></td><td>176</td><td>RSVD</td><td></td></tr><tr><td>177</td><td>RSVD</td><td></td><td>178</td><td>RSVD</td><td></td></tr><tr><td>179</td><td>GND</td><td></td><td>180</td><td>GND</td><td></td></tr><tr><td>181</td><td>RSVD</td><td></td><td>182</td><td>RSVD</td><td></td></tr><tr><td>183</td><td>RSVD</td><td></td><td>184</td><td>RSVD</td><td></td></tr><tr><td>185</td><td>GND</td><td></td><td>186</td><td>GND</td><td></td></tr><tr><td>187</td><td>RSVD</td><td></td><td>188</td><td>RSVD</td><td></td></tr><tr><td>189</td><td>RSVD</td><td></td><td>190</td><td>RSVD</td><td></td></tr><tr><td>191</td><td>GND</td><td></td><td>192</td><td>GND</td><td></td></tr><tr><td>193</td><td>RSVD</td><td></td><td>194</td><td>RSVD</td><td></td></tr><tr><td>195</td><td>RSVD</td><td></td><td>196</td><td>RSVD</td><td></td></tr><tr><td>197</td><td>GND</td><td></td><td>198</td><td>GND</td><td></td></tr><tr><td>199</td><td>DP_C_L0#</td><td></td><td>200</td><td>RSVD</td><td></td></tr><tr><td>201</td><td>DP_C_L0</td><td></td><td>202</td><td>RSVD</td><td></td></tr><tr><td>203</td><td>GND</td><td></td><td>204</td><td>GND</td><td></td></tr><tr><td>205</td><td>DP_C_L1#</td><td></td><td>206</td><td>DP_D_L0#</td><td></td></tr><tr><td>207</td><td>DP_C_L1</td><td></td><td>208</td><td>DP_D_L0</td><td></td></tr><tr><td>209</td><td>GND</td><td></td><td>210</td><td>GND</td><td></td></tr><tr><td>211</td><td>DP_C_L2#</td><td></td><td>212</td><td>DP_D_L1#</td><td></td></tr><tr><td>213</td><td>DP_C_L2</td><td></td><td>214</td><td>DP_D_L1</td><td></td></tr><tr><td>215</td><td>GND</td><td></td><td>216</td><td>GND</td><td></td></tr><tr><td>217</td><td>DP_C_L3#</td><td></td><td>218</td><td>DP_D_L2#</td><td></td></tr><tr><td>219</td><td>DP_C_L3</td><td></td><td>220</td><td>DP_D_L2</td><td></td></tr><tr><td>221</td><td>GND</td><td></td><td>222</td><td>GND</td><td></td></tr><tr><td>223</td><td>DP_C_AUX#</td><td></td><td>224</td><td>DP_D_L3#</td><td></td></tr><tr><td>225</td><td>DP_C_AUX</td><td></td><td>226</td><td>DP_D_L3</td><td></td></tr></table>

Table 1-3: MXM Connector Pin Definitions

<table><tr><td colspan="3">Primary Side (bottom side)</td><td colspan="3">Secondary Side (top side)</td></tr><tr><td>Pin</td><td>Signal</td><td>PU/PD</td><td>Pin</td><td>Signal</td><td>PU/PD</td></tr><tr><td>227</td><td>RSVD</td><td></td><td>228</td><td>GND</td><td></td></tr><tr><td>229</td><td>RSVD</td><td></td><td>230</td><td>DP_D_AUX#</td><td></td></tr><tr><td>231</td><td>RSVD</td><td></td><td>232</td><td>DP_D_AUX</td><td></td></tr><tr><td>233</td><td>RSVD</td><td></td><td>234</td><td>DP_C_HPD</td><td>PD 100K</td></tr><tr><td>235</td><td>RSVD</td><td></td><td>236</td><td>DP_D_HPD</td><td>PD 100K</td></tr><tr><td>237</td><td>RSVD</td><td></td><td>238</td><td>RSVD</td><td></td></tr><tr><td>239</td><td>RSVD</td><td></td><td>240</td><td>3V3</td><td></td></tr><tr><td>241</td><td>RSVD</td><td></td><td>242</td><td>3V3</td><td></td></tr><tr><td>243</td><td>RSVD</td><td></td><td>244</td><td>GND</td><td></td></tr><tr><td>245</td><td>RSVD</td><td></td><td>246</td><td>DP_B_L0#</td><td></td></tr><tr><td>247</td><td>RSVD</td><td></td><td>248</td><td>DP_B_L0</td><td></td></tr><tr><td>249</td><td>RSVD</td><td></td><td>250</td><td>GND</td><td></td></tr><tr><td>251</td><td>GND</td><td></td><td>252</td><td>DP_B_L1#</td><td></td></tr><tr><td>253</td><td>DP_A_L0#</td><td></td><td>254</td><td>DP_B_L1</td><td></td></tr><tr><td>255</td><td>DP_A_L0</td><td></td><td>256</td><td>GND</td><td></td></tr><tr><td>257</td><td>GND</td><td></td><td>258</td><td>DP_B_L2#</td><td></td></tr><tr><td>259</td><td>DP_A_L1#</td><td></td><td>260</td><td>DP_B_L2</td><td></td></tr><tr><td>261</td><td>DP_A_L1</td><td></td><td>262</td><td>GND</td><td></td></tr><tr><td>263</td><td>GND</td><td></td><td>264</td><td>DP_B_L3#</td><td></td></tr><tr><td>265</td><td>DP_A_L2#</td><td></td><td>266</td><td>DP_B_L3</td><td></td></tr><tr><td>267</td><td>DP_A_L2</td><td></td><td>268</td><td>GND</td><td></td></tr><tr><td>269</td><td>GND</td><td></td><td>270</td><td>DP_B_AUX#</td><td></td></tr><tr><td>271</td><td>DP_A_L3#</td><td></td><td>272</td><td>DP_B_AUX</td><td></td></tr><tr><td>273</td><td>DP_A_L3</td><td></td><td>274</td><td>DP_B_HPD</td><td>PD 100K</td></tr><tr><td>275</td><td>GND</td><td></td><td>276</td><td>DP_A_HPD</td><td>PD 100K</td></tr><tr><td>277</td><td>DP_A_AUX#</td><td></td><td>278</td><td>3V3</td><td></td></tr><tr><td>279</td><td>DP_A_AUX</td><td></td><td>280</td><td>3V3</td><td></td></tr><tr><td>281</td><td>PRSNT_L#</td><td>0 ohm PD</td><td></td><td></td><td></td></tr></table>

Table 1-3: MXM Connector Pin Definitions

# 1.7 Thermal Policy

The GPU core clock throttles at temperatures ( $T_{J}$ ) past the thresholds shown with the behaviors as listed. Thermal throttling ensures that the highest temperature on the die does not exceed the sense temperature for prolonged periods of time.

<table><tr><td>Parameter</td><td>Value</td><td>Units</td></tr><tr><td>Thermal Resistance (Junction to Case, RJC)</td><td>0.014</td><td>°C/W</td></tr><tr><td>Thermal Resistance (Junction to PCB Board, RJB)</td><td>0.64</td><td>°C/W</td></tr><tr><td>GPU Maximum Operating Temperature1</td><td>89</td><td>°C</td></tr><tr><td>GPU Slowdown Temperature (THERM_ALERT)2</td><td>97.5</td><td>°C</td></tr><tr><td>GPU Shutdown Temperature (OVERT)3</td><td>102.5</td><td>°C</td></tr></table>

Table 1-4: Thermal Policy

![The image displays a document icon with a folded top-left corner. It features horizontal lines representing text and is overlaid with a large, bold red checkmark.](.0131-egx-mxm-rtx5000-user-manual/672a51598e65f19a57ca077f8a79744d6c79128cc5af7f145d5cfdbb5923d28e.jpg)
NOTE:

▶ Max.GPU operating temperature is the maximum at which the GPU is guaranteed to operate at target performance (base clock) under total board power level
▶ THERM\_ALERT generates a 50% (÷2) hardware clock slowdown.
▶ OVERT generates a 87.5% (÷8) hardware clock slowdown

# 1.7.1 Fan Control

GPU temperature can be read through the SMBus from the system BIOS in order to control the GPU cooler. The thermal registers can be obtained from I2C Slave addresses 0x9E or 0x9C. Refer to the table below.

<table><tr><td>Address Offset</td><td>Register Name</td><td>Access</td><td>Description</td></tr><tr><td>0x00</td><td>RLTS</td><td>Read-Only</td><td>Holds temperature in degrees Celsius, contained within a single unsigned byte.</td></tr><tr><td>0xFD</td><td>VENDOR_ID[15:8]</td><td>Read-Only</td><td>Holds the NVIDIA VENDOR_ID or vendor ID</td></tr><tr><td>0xFD</td><td>VENDOR_ID[7:0]</td><td>Read-Only</td><td>Holds the NVIDIA VENDOR_ID or vendor ID</td></tr><tr><td>0xFF</td><td>REV_ID</td><td>Read-Only</td><td>Holds the GPU REV_ID or revision ID</td></tr></table>

Table 1-5: Thermal Policy

# 1.8 Unpacking Checklist

Before unpacking, check the shipping carton for any damage. If the shipping carton and/or contents are damaged, inform your dealer immediately. Retain the shipping carton and packing materials for inspection. Obtain authorization from your dealer before returning any product to ADLINK. Ensure that the following items are included in the package.

▶ EGX-MXM-RTX5000 embedded graphics module

# 2 System Requirements

# 2.1 Power Sequencing

For initial power on, or to Resume from S3 and S4, this sequence must be followed.

![| Component           | Value |\n|---------------------|-------|\n| PWR_SRC             | T_PV-PE |\n| 5V                  | T_PV-PE |\n| 3V3                 | T_PV-PE |\n| PWR_EN              | T_PV-PE |\n| Module Internal Power | T_PE-PG |\n| PWR_GOOD            | T_PE-PG |\n| Total Time          | T_PV-PE ≥0ms |\n| Total Time          | T_PE-PG ≤90ms |](.0131-egx-mxm-rtx5000-user-manual/d770d97ac37328c3156bb0069b6c0188248b6f4ae06b96e1a0d23fe0cbfebdfd.jpg)

Figure 2-1: Power Sequencing

# 2.2 Module Power Up and Down

Issuing the PWR\_EN signal powers the MXM module down, and the system designer can decide whether to keep the module input power when the MXM module is powered down.

![MODULE\nINPUT POWER\nPWR_EN\nMODULE\nINTERNAL POWER\nPWR_GOOD](.0131-egx-mxm-rtx5000-user-manual/ce67d6e142d9a65152e4ead028b1c40839dbf34dbf223ccffd0c63703963a75c.jpg)

Figure 2-2: Module Power Down

# 2.3 Reset Requirements

![| Signal          | Time Interval        |\n|-----------------|----------------------|\n| T_PVPERL        | ≥100 ms              |\n| T_PERST-PG      | ≥100 μs              |\n| T_PERST-CLK     | ≥200 μs              |\n| T_FAIL          | ≤500 ns              |](.0131-egx-mxm-rtx5000-user-manual/caed5101ba9bb30c7eca91853cc92c50f7f308e528d3476b22ffc9b00a9655a5.jpg)

Figure 2-3: Reset Sequencing

# 2.4 Dual Mode DisplayPort Implementation

The EGX-MXM-RTX5000 supports four dual mode DisplayPorts by default. HDMI is supported via dongle (see “Display Support and Options” on page 3.). The system requires a switch circuit to determine whether the AUX or DDC signal is output from the MXM module, and AC coupling capacitors should be placed on the system board.

![This block diagram illustrates the signal connections between a vertical block labeled **MXM Connector** on the left and a vertical block labeled **DisplayPort Connector** on the right.\n\nThe connections are organized into three sections:\n\n1.  **Top Section (AUX Lines):** Two horizontal lines labeled **AUX_N/DDC_DAT** and **AUX_P/DDC_CLK** connect the two main blocks. These lines pass through a rectangular area labeled **CONFIG1 (CABLE ADAPTOR DETECT)**. Inside this area, the lines pass through capacitors (represented by parallel vertical lines) which are bridged by switches. To the right of this area:\n    *   The **AUX_P/DDC_CLK** line connects to a resistor labeled **3.3V**.\n    *   The **AUX_N/DDC_DAT** line connects to a resistor connected to ground.\n\n2.  **Middle Section:** A single horizontal line labeled **Hot Plug Detect** runs from the MXM Connector, through a box labeled **Hot Plug Detect**, to the DisplayPort Connector.\n\n3.  **Bottom Section (Data Lines):** Two horizontal lines labeled **DP_x_Lx_P** and **DP_x_Lx_N** connect the MXM Connector to the DisplayPort Connector. These lines pass through a capacitor (represented by parallel vertical lines) in the center.](.0131-egx-mxm-rtx5000-user-manual/e23151278c5df17d89abb7f0e46108b05352cb01259d100729923bb0bfae1be8.jpg)

Figure 2-4: Dual Mode DisplayPort Implementation

# 2.5 DVI/HDMI on DisplayPort Interface

DVI and HDMI connectors can both be implemented through the DisplayPort interface by using the circuit shown below on the system board (up to 1080p supported). Two 499Ω (1%) pulldown resistors to ground on the DP lanes must placed on the DVI/HDMI connector side of the AC coupling, gated by a MOSFET to limit leakage. Please contact your local ADLINK technical support representative for HDMI/DVI support.

![3.3V 3.3V\nMXM Connector\nAUX_N/DDC_DAT\nAUX_P/DDC_CLK\nLevel Shifter\nHot Plug Detect\nDVI/HDMI Connector\nDP_x_Lx_P\nDP_x_Lx_N\n499Ω 1%\n499Ω 1%\nPWR_EN](.0131-egx-mxm-rtx5000-user-manual/e9556abe8923cc099e7f434ad0a2c60e56a26224aa9daf41161f0e04b108bf5e.jpg)

Figure 2-5: DVI/HDMI on DisplayPort Interface

# 2.6 Driver Installation

Drivers can be downloaded from https://www.adlinktech.com/Products/Embedded\_Graphics/Embedded\_MXM\_Modules/EGX-MXM-RTX5000.

# 2.7 Certifications & Agencies

▶ Windows Hardware Quality Lab (WHQL) certified for Windows 10
▶ EU Reduction of Hazardous Substances (EU-RoHS)
▶ Conformité Européenne (CE)
▶ Federal Communications Commission (FCC)

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# Important Safety Instructions

For user safety, please read and follow all instructions, Warnings, Cautions, and Notes marked in this manual and on the associated device before handling/operating the device, to avoid injury or damage.

S'il vous plaît prêter attention stricte à tous les avertissements et mises en garde figurant sur l'appareil, pour éviter des blessures ou des dommages.

▶ Read these safety instructions carefully
- Keep the User’s Manual for future reference
▶ Read the Specifications section of this manual for detailed information on the recommended operating environment
▶ The device can be operated at an ambient temperature of $50^{\circ}$ C
- When installing/mounting or uninstalling/removing device; or when removal of a chassis cover is required for user servicing:
▷ Turn off power and unplug any power cords/cables
▷ Reinstall all chassis covers before restoring power
▶ To avoid electrical shock and/or damage to device:
▷ Keep device away from water or liquid sources
▷ Keep device away from high heat or humidity
▷ Keep device properly ventilated (do not block or cover-ventilation openings)
▶ Always use recommended voltage and power source settings
▶ Always install and operate device near an easily accessible electrical outlet
▷ Secure the power cord (do not place any object on/over the power cord)
▶ Only install/attach and operate device on stable surfaces and/or recommended mountings

▶ If the device will not be used for long periods of time, turn off and unplug from its power source

▶ Never attempt to repair the device, which should only be serviced by qualified technical personnel using suitable tools
▶ The device must be serviced by authorized technicians when:

The power cord or plug is damaged
▷ Liquid has entered the device interior
The device has been exposed to high humidity and/or moisture
The device is not functioning or does not function according to the User's Manual
The device has been dropped and/or damaged and/or shows obvious signs of breakage

▶ Disconnect the power supply cord before loosening the thumbscrews and always fasten the thumbscrews with a screwdriver before starting the system up
It is recommended that the device be installed only in a server room or computer room where access is:

▶ Restricted to qualified service personnel or users familiar with restrictions applied to the location, reasons therefor, and any precautions required
▶ Only afforded by the use of a tool or lock and key, or other means of security, and controlled by the authority responsible for the location.

<table><tr><td>&lt;img src="images/4f289992bbb3163fddbda273be537afe9577e2b0fcd52edc3590b36a7ad57ce8.jpg"/&gt;</td><td>BURN HAZARDTouching this surface could result in bodily injury.To reduce risk, allow the surface to cool before touching.RISQUE DE BRÛLURESNe touchez pas cette surface, cela pourrait entraîner des blessures.Pour éviter tout danger, laissez la surface refroidir avant de la toucher.</td></tr></table>

# Getting Service

Ask an Expert: http://askanexpert.adlinktech.com

# ADLINK Technology, Inc.

No. 66, Huaya 1st Rd., Guishan District

Taoyuan City 333411, Taiwan

Tel: +886-3-216-5088

Fax: +886-3-328-5706

Email: service@adlinktech.com

# Ampro ADLINK Technology, Inc.

5215 Hellyer Avenue, #110

San Jose, CA 95138, USA

Tel: +1-408-360-0200

Toll Free: +1-800-966-5200 (USA only)

Fax: +1-408-360-0222

Email: info@adlinktech.com

# ADLINK Technology (China) Co., Ltd.

300 Fang Chun Rd., Zhangjiang Hi-Tech Park

Pudong New Area, Shanghai, 201203 China

Tel: +86-21-5132-8988

Fax: +86-21-5132-3588

Email: market@adlinktech.com

# ADLINK Technology GmbH

Hans-Thoma-Strasse 11

D-68163 Mannheim, Germany

Tel: +49-621-43214-0

Fax: +49-621 43214-30

Email: emea@adlinktech.com

Please visit the Contact page at www.adlinktech.com for information on how to contact the ADLINK regional office nearest you:
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