TXM-315-KH3 LINX | Alldatasheet

Document overview

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Technical content

1 Description

1 Features

1 Applications

2 Ordering Information

2 Absolute Maximum Ratings

3 Electrical Specifications

5 Typical Performance Graphs

6 Pin Assignments

7 Pin Descriptions

8 Module Description

8 Theory of Operation

9 Decoder Operation

10 Compatibility with the KH2 Series

10 Setting the Receiver Address

10 The Data Line Outputs

11 Receiving Data

11 Using the RSSI Line

12 Input Type Selection

13 Power Supply Requirements

14 Typical Applications

16 Antenna Considerations

17 Helpful Application Notes from Linx

18 Interference Considerations

19 Pad Layout

19 Board Layout Guidelines

21 Microstrip Details

22 Production Guidelines

22 Hand Assembly

22 Automated Assembly

Warning: Some customers may want Linx radio frequency (“RF”) products to control machinery or devices remotely, including machinery or devices that can cause death, bodily injuries, and/or property damage if improperly or inadvertently triggered, particularly in industrial settings or other applications implicating life-safety concerns (“Life and Property Safety Situations”). NO OEM LINX REMOTE CONTROL OR FUNCTION MODULE SHOULD EVER BE USED IN LIFE AND PROPERTY SAFETY SITUATIONS. No OEM Linx Remote Control or Function Module should be modified for Life and Property Safety Situations. Such modification cannot provide sufficient safety and will void the product’s regulatory certification and warranty. Customers may use our (non-Function) Modules, Antenna and Connectors as part of other systems in Life Safety Situations, but only with necessary and industry appropriate redundancies and in compliance with applicable safety standards, including without limitation, ANSI and NFPA standards. It is solely the responsibility of any Linx customer who uses one or more of these products to incorporate appropriate redundancies and safety standards for the Life and Property Safety Situation application. Do not use this or any Linx product to trigger an action directly from the data line or RSSI lines without a protocol or encoder/ decoder to validate the data. Without validation, any signal from another unrelated transmitter in the environment received by the module could inadvertently trigger the action. All RF products are susceptible to RF interference that can prevent communication. RF products without frequency agility or hopping implemented are more subject to interference. This module does not have a frequency hopping protocol built in. Do not use any Linx product over the limits in this data guide. Excessive voltage or extended operation at the maximum voltage could cause product failure. Exceeding the reflow temperature profile could cause product failure which is not immediately evident. Do not make any physical or electrical modifications to any Linx product. This will void the warranty and regulatory and UL certifications and may cause product failure which is not immediately evident.

– –1 KH3 Series Receiver Module Data Guide Revised 3/18/2015

Description

The KH3 Series is ideally suited for volume use in OEM applications such as remote control / command and keyless entry. It combines a high-performance RF receiver with an on-board decoder. When paired with a matching KH3 Series transmitter / encoder module, OEM transmitter, or LC or LR Series transmitter and DS Series encoder combination, a highly reliable wireless link is formed that is capable of transferring the status of eight parallel inputs for distances of up to 3,000 feet (1,000m). Ten address lines provide 1,022 (210-2) different addresses for security and uniqueness. Housed in a compact SMD package, the KH3 module utilizes an advanced synthesized architecture to achieve an unmatched blend of performance, size, range and cost. No external RF components are required except an antenna, making design integration straightforward.

Features

  • Low cost
  • Long range
  • On-board encoder
  • 8 parallel binary inputs
  • 210 addresses for uniqueness
  • Ultra-low power consumption
  • Compact SMD package
  • Advanced synthesized architecture
  • Received data output
  • Transmission validation
  • No production tuning
  • No external RF components required (except an antenna)
  • Pin-compatible with original KH and KH2 modules

Applications

  • Remote control / command
  • Gate openers
  • Lighting control
  • Call systems
  • Remote status monitoring
  • Home / industrial automation
  • Wire elimination 1.43 in (36.32 mm) 0.63 in (16.00 mm) 0.106 in (2.69 mm)

24 General Antenna Rules

26 Common Antenna Styles

28 Regulatory Considerations

30 Notes

Figure 1: Package Dimensions

– – – –6 7 Pin Assignments 1.20 1.40 1.60 1.80 2.00 2.20 -100 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 RSSI Voltage (V) Input Power (dBm) NC D1 NC RSSI GND VCC PDN ANT GND 8 21 DATA VT A3 D_CFG A_CFG0 A_CFG1 29 30 31 Pin Descriptions Figure 8: KH3 Series Receiver RSSI Response Time Figure 9: KH3 Series Receiver Pinout (Top View) Pin Descriptions Pin Number Name I/O Description 1 NC — No Connection. For physical support only. 2, 3, 7, 8, 9, 12, 13, 14 D0–D7 O Data Output Lines. Upon a valid transmission, these lines are set to replicate the state of the transmitter’s data lines.

4 GND — Analog Ground

5 VCC — Supply Voltage

6 PDN I

Power Down. Pulling this line low places the receiver into a low-current state. The module is not able to receive a signal in this state. 10 DATA O Data output of the receiver prior to the decoder. 11 VT O Valid Transmission. This line goes high when a valid transmission is received. 15–24 A0–A9 I Address Lines. The state of these lines must match the state of the transmitter’s address lines in order for a transmission to be accepted. These lines are pulled to VCC internally.

25 RSSI O

Received Signal Strength Indicator. This line outputs an analog voltage that is proportional to the strength of the received signal. 26 NC — No Connection. For physical support only.

27 GND — Analog Ground

28 RF IN I 50-ohm RF Input

29 D_CFG I

Data Line Configuration. Determines whether a low on a data line is interpreted as a zero bit or an open bit. See the Input Type Selection section. This line is pulled to GND internally. 30, 31 A_CFG0 I Address Configuration 0. With A_CFG1, determines the address bit type interpretation. See the Input Type Selection section. This line is pulled to GND internally.

31 A_CFG1 I

Address Configuration 1. With A_CFG0, determines the address bit type interpretation. See the Input Type Selection section. This line is pulled to VCC internally. Figure 10: KH3 Series Receiver Pin Descriptions

– – – –8 9 Decoder Operation The KH3 Series receiver utilizes the DS Series decoder. When the decoder receives data, it compares the address in the received packet to its local address lines. If the addresses match, then the data is stored and a second packet is received. The decoder compares the two packets to each other. If the packets match, then the received data bits are output on the data lines and the VT line is pulled high. It then looks for the next packet. Once no valid data is received (there is a mismatch of address, of data, or of bit timings), the data and VT lines are pulled low and the decoder goes to sleep until more data is received. The decoder compares two packets and, if they match, sets the outputs. If a data line is toggled during a transmission (for example D1 is activated while D0 is already activated) then the received packet will not match the previous packet and the output lines will be pulled low until the next packet arrives. This causes all of the outputs to briefly cut out when a line is toggled. Module Description The KH3 Series module combines the popular Linx LR Series receiver with a decoder IC in a convenient SMD package. The module is ideal for general-purpose remote control and command applications. When paired with a matching Linx KH3 Series transmitter / encoder, OEM transmitter, LC, or LR Series transmitter and DS Series encoder combination, a highly reliable RF link is formed, capable of transferring control and command data over line-of-sight distances in excess of 3,000 feet. The on-board receiver / decoder combination provides eight switched outputs that correspond to the state of the data lines on the transmitter’s encoder. Ten address lines are also provided to allow up to 1,022 (210 - 2) unique identification codes. Theory of Operation The KH3 Series receiver module is designed to receive transmissions from a matching KH3 Series transmitter module or other compatible Linx transmitter product. When transmitted data is received, the data is presented to the onboard decoder. If the incoming address matches the local address settings, the decoder’s outputs are set to replicate the states of the transmitter’s data lines. The RF section of the KH3 module utilizes the LR Series receiver, which is an advanced single-conversion superhet design with a synthesized architecture, high IF frequency, and multilayer ceramic filters. The exceptional accuracy of the crystal-based synthesized architecture in the KH3 receiver module allows the receiver’s pass band to be quite narrow, thus increasing sensitivity and reducing susceptibility to near-band interference. RF Stage Decoder Stage Data Slicer LNA VCOPLL XTAL 90° Limiter RSSI Σ 10.7MHz IF Filter Band Select Filter 50Ω RF IN (Antenna) Parallel Outputs D0-D7 Address Inputs A0-A9 Data In VT D_CFG D_CFG0 D_CFG1 Power On Sleep Wake on interrupt Data received? YES NO Valid data received? Activate outputs and VT Address match? 2nd packet received? Data match previous data? Clear outputs and VT 1st valid packet? YES NO YES NO NO NO YES YES NO YES Figure 12: KH3 Series Receiver / Decoder Flowchart Figure 11: KH3 Series Receiver Block Diagram Check Check < 1 Word

3 WordsTransmitted Continuously3 Words

2 Words

Figure 13: Encoder / Decoder Timing Diagram

– – – –10 11 Compatibility with the KH2 Series The Legacy KH2 Series used encoders and decoders from Holtek® and the KH3 migrates to the Linx DS Series encoder and decoder. The protocol and functionality are compatible. There is some difference in the hardware set-up for the address lines and the data lines. The legacy Holtek® products used tri-state lines, so high, low and floating were each valid states. The DS Series has bi-state lines; high and low only. Three lines have been added to the KH3 module to allow for the selection of how the address and data line states are interpreted. Please see the Input Type Selection section for more details. The KH3 receiver has been designed to be compatible with legacy systems. The module has been configured for the most common use of the KH2 so that it can be placed on existing boards without modification. This makes the KH3 a drop-in replacement for most applications. Setting the Receiver Address The module has ten address lines. This allows the formation of up to 1,022 (210 – 2) unique transmitter-receiver relationships. Because the address inputs have internal pull-up resistors these pins can be left floating or tied to GND. These pins may be hardwired or configured via a microprocessor, DIP switch or jumpers. The receiver’s address line states must match the transmitter’s exactly for a transmission to be recognized. If the transmitted address does not match the receiver’s local address, then the receiver takes no action. The Data Line Outputs When data is received and the incoming address data matches the local address settings, the module’s eight data output lines are set to replicate the state of the transmitter’s data lines. In addition, the valid transmission line (VT, Pin 11) goes high to indicate reception and decoding of the data. The output have a drive level suitable for powering small LEDs and similar circuits, but anything more than 10mA should be buffered. Note: All address lines high or all low is not allowed, so at least one line must be different from the others. Receiving Data Although the internal decoder handles all of the decoding and output for transmissions from a KH3 Series transmitter or an OEM transmitter, the KH3 Series receiver outputs the raw received data on the DATA line. The output of this line is the actual received data stream from the receiver and is always active regardless of address line status. It is made available for troubleshooting or monitoring internal data flow. It can also be used in mixed-mode systems where data may come from another source in addition to a KH3 Series transmitter module. This data can then be channeled to an external processor for decoding. When using the KH3 for custom data transmissions, it is up to the designer to implement a noise-tolerant protocol to ensure the integrity of the data. Application Note AN-00160 provides some suggestions and guidelines. The KH3 Series receiver module contains the LR Series receiver, which has a CMOS-compatible output capable of directly driving a microprocessor, an RS-232 level converter, or a Linx QS Series USB module. The LR Series receiver manual can be consulted for more details on the operation of the receiver itself. Using the RSSI Line The receiver’s Received Signal Strength Indicator (RSSI) line serves a variety of functions. This line has a dynamic range of 80dB (typical) and outputs a voltage proportional to the incoming signal strength. It should be noted that the RSSI levels and dynamic range vary slightly from part to part. It is also important to remember that the RSSI output indicates the strength of any in-band RF energy and not necessarily just that from the intended transmitter; therefore, it should be used only to qualify the level and presence of a signal. The RSSI output can be utilized during testing or even as a product feature to assess interference and channel quality by looking at the RSSI level with all intended transmitters shut off. The RSSI output can also be used in direction-finding applications, although there are many potential perils to consider in such systems. Finally, it can be used to save system power by “waking up” external circuitry when a transmission is received or crosses a certain threshold. The RSSI output feature adds tremendous versatility for the creative designer.

– – – –12 13 This configuration matches the Linx OEM products and the most common implementation of the legacy KH2 Series. This enables customers using the KH2 Series to populate the KH3 Series without any PCB modifications since pins 25, 26 and 27 can be left unconnected. Power Supply Requirements The module does not have an internal voltage regulator; therefore it requires a clean, well-regulated power source. While it is preferable to power the unit from a battery, it can also be operated from a power supply as long as noise is less than 20mV. Power supply noise can affect the receiver sensitivity; therefore, providing a clean power supply for the module should be a high priority during design. A 10-ohm resistor in series with the supply followed by a 10µF tantalum capacitor from VCC to ground will help in cases where the quality of supply power is poor. These values may need to be adjusted depending on the noise present on the supply line. Note that operation up to 5.2 volts requires the use of an external resistor placed in series with the supply to prevent VCC from exceeding 3.6 volts, this dropping resistor can take the place of the 10-ohm resistor in the supply filter. 10Ω 10µF Vcc IN Vcc TO MODULE Figure 16: Power Supply Filter Input Type Selection The KH3 Series receiver incorporates the DS Series remote control decoder, which is designed to be operable with previous generation products based on Holtek® encoders and decoders. The Holtek® encoders and decoders have tri-state input lines but the DS has bi-state lines. Tri-state inputs are connected to ground for zero bits, VCC for one bits, or left unconnected for open bits. Since the DS cannot match this operation the D_CFG, A_CFG0 and A_CFG1 lines are provided to select the desired interpretation. The settings must match on both ends. Pulling the D_CFG line high configures the data bits as one and zero. A high on a data line on the transmitter is interpreted as a one bit and a low on the line is interpreted as a zero bit. Pulling D_CFG low configures the data bits as one and open. A high on a data line is interpreted as a one bit and a low on the line is interpreted as an open bit. The decoder outputs open data bits as logic low. This is shown in Figure 14. A_CFG0 and A_CFG1 are used to select the bit type for the address lines. These are shown in Figure 15. D_CFG is pulled low internally so that a high on a data line is transmitted as a one bit and a low on the line is transmitted as an open bit. A_CFG0 is pulled low and A_CFG1 is pulled high internally so that a high on an address line is interpreted as an open bit and a low as a zero bit. D_CFG Configuration Configuration Bit Interpretation D_CFG High Low

0 One Open

1 One Zero

A_CFGO and A_CFG1 Configuration Configuration Bit Interpretation A_CFG1 A_CFG0 High Low 0 0 One Zero 0 1 One Open 1 0 Open Zero 1 1 One Zero Figure 14: D_CFG Configuration Figure 15: A_CFG0 and A_CFG1 Configuration

– – – –18 19 Interference Considerations The RF spectrum is crowded and the potential for conflict with unwanted sources of RF is very real. While all RF products are at risk from interference, its effects can be minimized by better understanding its characteristics. Interference may come from internal or external sources. The first step is to eliminate interference from noise sources on the board. This means paying careful attention to layout, grounding, filtering and bypassing in order to eliminate all radiated and conducted interference paths. For many products, this is straightforward; however, products containing components such as switching power supplies, motors, crystals and other potential sources of noise must be approached with care. Comparing your own design with a Linx evaluation board can help to determine if and at what level design-specific interference is present. External interference can manifest itself in a variety of ways. Low-level interference produces noise and hashing on the output and reduces the link’s overall range. High-level interference is caused by nearby products sharing the same frequency or from near-band high-power devices. It can even come from your own products if more than one transmitter is active in the same area. It is important to remember that only one transmitter at a time can occupy a frequency, regardless of the coding of the transmitted signal. This type of interference is less common than those mentioned previously, but in severe cases it can prevent all useful function of the affected device. Although technically not interference, multipath is also a factor to be understood. Multipath is a term used to refer to the signal cancellation effects that occur when RF waves arrive at the receiver in different phase relationships. This effect is a particularly significant factor in interior environments where objects provide many different signal reflection paths. Multipath cancellation results in lowered signal levels at the receiver and shorter useful distances for the link. Pad Layout The pad layout diagram in Figure 21 is designed to facilitate both hand and automated assembly. Board Layout Guidelines The module’s design makes integration straightforward; however, it is still critical to exercise care in PCB layout. Failure to observe good layout techniques can result in a significant degradation of the module’s performance. A primary layout goal is to maintain a characteristic 50-ohm impedance throughout the path from the antenna to the module. Grounding, filtering, decoupling, routing and PCB stack-up are also important considerations for any RF design. The following section provides some basic design guidelines. During prototyping, the module should be soldered to a properly laid-out circuit board. The use of prototyping or “perf” boards results in poor performance and is strongly discouraged. Likewise, the use of sockets can have a negative impact on the performance of the module and is discouraged. The module should, as much as reasonably possible, be isolated from other components on your PCB, especially high-frequency circuitry such as crystal oscillators, switching power supplies, and high-speed bus lines. When possible, separate RF and digital circuits into different PCB regions. 0.065 in (1.65 mm) 0.10 in (2.54 mm) 0.61 in (15.49 mm) 0.14 in (3.56 mm) 0.096 in (2.44 mm) 0.274 in (6.96 mm) 0.07 in (1.78 mm) 0.10 in (2.54 mm) 0.053 in (1.35 mm) Figure 21: Recommended PCB Layout

– – – –22 23 Production Guidelines The module is housed in a hybrid SMD package that supports hand and automated assembly techniques. Since the modules contain discrete components internally, the assembly procedures are critical to ensuring the reliable function of the modules. The following procedures should be reviewed with and practiced by all assembly personnel. Hand Assembly Pads located on the bottom of the module are the primary mounting surface (Figure 24). Since these pads are inaccessible during mounting, castellations that run up the side of the module have been provided to facilitate solder wicking to the module’s underside. This allows for very quick hand soldering for prototyping and small volume production. If the recommended pad guidelines have been followed, the pads will protrude slightly past the edge of the module. Use a fine soldering tip to heat the board pad and the castellation, then introduce solder to the pad at the module’s edge. The solder will wick underneath the module, providing reliable attachment. Tack one module corner first and then work around the device, taking care not to exceed the times in Figure 25. Automated Assembly For high-volume assembly, the modules are generally auto-placed. The modules have been designed to maintain compatibility with reflow processing techniques; however, due to their hybrid nature, certain aspects of the assembly process are far more critical than for other component types. Following are brief discussions of the three primary areas where caution must be observed. CastellationsPCB Pads Soldering Iron Tip Solder Figure 24: Soldering Technique Warning: Pay attention to the absolute maximum solder times. Figure 25: Absolute Maximum Solder Times Absolute Maximum Solder Times Hand Solder Temperature: +427ºC for 10 seconds for lead-free alloys Reflow Oven: +255ºC max (see Figure 26) Reflow Temperature Profile The single most critical stage in the automated assembly process is the reflow stage. The reflow profile in Figure 26 should not be exceeded because excessive temperatures or transport times during reflow will irreparably damage the modules. Assembly personnel need to pay careful attention to the oven’s profile to ensure that it meets the requirements necessary to successfully reflow all components while still remaining within the limits mandated by the modules. The figure below shows the recommended reflow oven profile for the modules. Shock During Reflow Transport Since some internal module components may reflow along with the components placed on the board being assembled, it is imperative that the modules not be subjected to shock or vibration during the time solder is liquid. Should a shock be applied, some internal components could be lifted from their pads, causing the module to not function properly. Washability The modules are wash-resistant, but are not hermetically sealed. Linx recommends wash-free manufacturing; however, the modules can be subjected to a wash cycle provided that a drying time is allowed prior to applying electrical power to the modules. The drying time should be sufficient to allow any moisture that may have migrated into the module to evaporate, thus eliminating the potential for shorting damage during power-up or testing. If the wash contains contaminants, the performance may be adversely affected, even after drying. 125°C 185°C 217°C 255°C 235°C 60 12030 1501 80 2102 40 2703 00 3303 6009 0 100 150 200 250

300 Recommended RoHS Profile

Recommended Non-RoHS Profile 180°C Temperature (oC) Time (Seconds) Figure 26: Maximum Reflow Temperature Profile

– – – –28 29 Regulatory Considerations When working with RF, a clear distinction must be made between what is technically possible and what is legally acceptable in the country where operation is intended. Many manufacturers have avoided incorporating RF into their products as a result of uncertainty and even fear of the approval and certification process. Here at Linx, our desire is not only to expedite the design process, but also to assist you in achieving a clear idea of what is involved in obtaining the necessary approvals to legally market a completed product. For information about regulatory approval, read AN-00142 on the Linx website or call Linx. Linx designs products with worldwide regulatory approval in mind. In the United States, the approval process is actually quite straightforward. The regulations governing RF devices and the enforcement of them are the responsibility of the Federal Communications Commission (FCC). The regulations are contained in Title 47 of the United States Code of Federal Regulations (CFR). Title 47 is made up of numerous volumes; however, all regulations applicable to this module are contained in Volume 0-19. It is strongly recommended that a copy be obtained from the FCC’s website, the Government Printing Office in Washington or from your local government bookstore. Excerpts of applicable sections are included with Linx evaluation kits or may be obtained from the Linx Technologies website, www.linxtechnologies.com. In brief, these rules require that any device that intentionally radiates RF energy be approved, that is, tested for compliance and issued a unique identification number. This is a relatively painless process. Final compliance testing is performed by one of the many independent testing laboratories across the country. Many labs can also provide other certifications that the product may require at the same time, such as UL, CLASS A / B, etc. Once the completed product has passed, an ID number is issued that is to be clearly placed on each product manufactured. Note: Linx RF modules are designed as component devices that require external components to function. The purchaser understands that additional approvals may be required prior to the sale or operation of the device, and agrees to utilize the component in keeping with all laws governing its use in the country of operation. Questions regarding interpretations of the Part 2 and Part 15 rules or the measurement procedures used to test intentional radiators such as Linx RF modules for compliance with the technical standards of Part 15 should be addressed to: Federal Communications Commission Equipment Authorization Division Customer Service Branch, MS 1300F2

7435 Oakland Mills Road

Columbia, MD, US 21046 Phone: + 1 301 725 585 | Fax: + 1 301 344 2050 Email: labinfo@fcc.gov ETSI Secretaria 650, Route des Lucioles

06921 Sophia-Antipolis Cedex

Phone: +33 (0)4 92 94 42 00 Fax: +33 (0)4 93 65 47 16 International approvals are slightly more complex, although Linx modules are designed to allow all international standards to be met. If the end product is to be exported to other countries, contact Linx to determine the specific suitability of the module to the application. All Linx modules are designed with the approval process in mind and thus much of the frustration that is typically experienced with a discrete design is eliminated. Approval is still dependent on many factors, such as the choice of antennas, correct use of the frequency selected and physical packaging. While some extra cost and design effort are required to address these issues, the additional usefulness and profitability added to a product by RF makes the effort more than worthwhile.

– – – –30 31 Notes

Linx Technologies is continually striving to improve the quality and function of its products. For this reason, we reserve the right to make changes to our products without notice. The information contained in this Data Guide is believed to be accurate as of the time of publication. Specifications are based on representative lot samples. Values may vary from lot-to-lot and are not guaranteed. “Typical” parameters can and do vary over lots and application. Linx Technologies makes no guarantee, warranty, or representation regarding the suitability of any product for use in any specific application. It is the customer’s responsibility to verify the suitability of the part for the intended application. NO LINX PRODUCT IS INTENDED FOR USE IN ANY APPLICATION WHERE THE SAFETY OF LIFE OR PROPERTY IS AT RISK. Linx Technologies DISCLAIMS ALL WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. IN NO EVENT SHALL LINX TECHNOLOGIES BE LIABLE FOR ANY OF CUSTOMER’S INCIDENTAL OR CONSEQUENTIAL DAMAGES ARISING IN ANY WAY FROM ANY DEFECTIVE OR NON-CONFORMING PRODUCTS OR FOR ANY OTHER BREACH OF CONTRACT BY LINX TECHNOLOGIES. The limitations on Linx Technologies’ liability are applicable to any and all claims or theories of recovery asserted by Customer, including, without limitation, breach of contract, breach of warranty, strict liability, or negligence. Customer assumes all liability (including, without limitation, liability for injury to person or property, economic loss, or business interruption) for all claims, including claims from third parties, arising from the use of the Products. The Customer will indemnify, defend, protect, and hold harmless Linx Technologies and its officers, employees, subsidiaries, affiliates, distributors, and representatives from and against all claims, damages, actions, suits, proceedings, demands, assessments, adjustments, costs, and expenses incurred by Linx Technologies as a result of or arising from any Products sold by Linx Technologies to Customer. Under no conditions will Linx Technologies be responsible for losses arising from the use or failure of the device in any application, other than the repair, replacement, or refund limited to the original product purchase price. Devices described in this publication may contain proprietary, patented, or copyrighted techniques, components, or materials. Under no circumstances shall any user be conveyed any license or right to the use or ownership of such items. ©2014 Linx Technologies. All rights reserved. The stylized Linx logo, Wireless Made Simple, WiSE, CipherLinx and the stylized CL logo are trademarks of Linx Technologies. Linx Technologies

159 Ort Lane

Merlin, OR, US 97532 Phone: +1 541 471 6256 Fax: +1 541 471 6251 www.linxtechnologies.com