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WiFi 6 vs. WiFi 7: The Game Changers for Crowded Spaces

If you’ve ever been in a packed venue or a bustling office, you know how crucial it is to have a reliable WiFi connection. With more devices than ever connecting to the network, WiFi is under pressure. That’s where WiFi 6 and WiFi 7 come into play, offering some impressive upgrades for high-density environments. Here’s the lowdown:

🔹 WiFi 6 (802.11ax):
OFDMA: This tech slices up the channel into smaller chunks so multiple devices can communicate simultaneously. It means less congestion and faster speeds!
MU-MIMO: This lets multiple devices send and receive data at the same time, cutting down on wait times and improving performance.
TWT: Target Wake Time schedules when devices wake up, reducing network congestion and saving battery life.

🔹 WiFi 7 (802.11be):
Faster Speeds: With wider channels and more spatial streams, WiFi 7 delivers even higher speeds and better performance.
Enhanced OFDMA: It’s like WiFi 6’s OFDMA but turbocharged, optimizing how resources are used.
Better MU-MIMO: Handles even more users at once, making it ideal for ultra-crowded environments.
Lower Latency: Improvements here mean less lag, which is great for real-time applications like AR/VR.
Whether you’re thinking of upgrading or just curious about the latest in wireless tech, both WiFi 6 and WiFi 7 are worth your attention. WiFi 7 is set to lead the way with its higher speeds and lower latency, but WiFi 6 is still a fantastic option for current needs.

💡 Got questions about WiFi solutions or need advice? Feel free to reach out!


hashtag#WiFi6 hashtag#WiFi7 hashtag#TechUpgrades hashtag#NetworkSolutions hashtag#HighDensityWiFi hashtag#Innovation hashtag#WirelessTech

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524 WiFi 6 DR6018 for 5G Signal Tower and Controller Communication: Comparing Wired, Wireless, and Wi-Fi Solutions

dr6018

As 5G networks expand rapidly, effective communication between signal towers and controllers is essential for optimal network performance. This article examines the characteristics, challenges, costs, advantages, and market prospects of wired, wireless, and Wi-Fi transmission solutions.

Wired Transmission: Fiber Optic Connections

Fiber optic connections are the most widely used wired transmission solution, enabling high-speed and stable data transfer between 5G signal towers and controllers or core networks.

Advantages include:

  • High Bandwidth: Fiber optics provide exceptional bandwidth, accommodating the large data volumes required by 5G networks.
  • Low Latency: With minimal delay, fiber optics are ideal for applications needing real-time data transfer, such as telemedicine and autonomous driving.
  • Stability and Reliability: Fiber optics are highly stable and immune to electromagnetic interference, ensuring consistent performance across various environments.

Challenges include:

  • High Cost: The initial investment for fiber optics is substantial, covering materials, labor, and maintenance. Deployment can be particularly challenging in areas with complex geography or dense urban infrastructure.
  • Deployment Time: Installing fiber networks involves considerable construction work, which can extend the deployment timeline.

In the market, fiber optic transmission is a mature sector, widely adopted globally, especially in urban and densely populated areas. As 5G networks continue to grow, the demand for fiber optics is expected to rise, though high costs may limit its adoption in some regions.

Wireless Transmission: Microwave, Millimeter Wave, and Satellite

Wireless transmission solutions, including microwave and millimeter wave technologies, are commonly used, with satellite connections serving as a solution for extreme geographical conditions or where other methods are impractical.

Advantages include:

  • Deployment Flexibility: Wireless solutions do not require cable installation, allowing for quick deployment in challenging or remote areas.
  • Lower Initial Costs: Compared to fiber optics, wireless solutions have a lower initial deployment cost and are more adaptable to temporary or rapidly changing network needs.

Challenges include:

  • Bandwidth Limitations: Wireless transmission generally provides lower bandwidth compared to fiber optics, which might not meet the demands of high-performance 5G applications.
  • Environmental Impact: Wireless signals can be affected by environmental factors such as weather, terrain, and buildings, impacting stability and reliability.
  • Higher Latency and Interference: Wireless solutions can experience higher latency and are more susceptible to interference from other devices, especially in densely populated areas.

Wireless transmission solutions are seeing rapid growth in the market, particularly where fiber optic deployment is costly or time-sensitive. In remote and rural areas, the market potential for wireless solutions is significant, though long-term stability and performance issues need to be addressed.

Wi-Fi Transmission: Industrial-Grade Wi-Fi

Wi-Fi transmission solutions, especially those using industrial-grade equipment, are emerging as viable alternatives or complements to wired and traditional wireless methods. Advanced Wi-Fi 6 and Wi-Fi 7 technologies can efficiently handle high-performance data transfers over short distances, making them suitable for specific industrial applications.

Advantages:

  • Cost-Effectiveness: Wi-Fi solutions are generally more affordable and easier to install than fiber optics or microwave links.
  • Rapid Deployment: Wi-Fi networks can be quickly established and expanded, making them ideal for temporary or dynamic network requirements.
  • High Bandwidth and Low Latency: Wi-Fi 6 and Wi-Fi 7 offer enhanced bandwidth and reduced latency, suitable for industrial automation, smart cities, and other high-performance applications.

Challenges:

  • Limited Coverage Range: Wi-Fi is best suited for shorter distances and may not cover large areas as effectively as fiber optics.
  • Interference Issues: Wi-Fi signals can suffer from interference in high-density environments, impacting network stability and reliability.
  • High Security Requirements: For industrial applications, strong security measures are essential to protect data from breaches or attacks.

Solution Comparison and Market Trends

In terms of cost, fiber optic connections involve a high initial investment but offer lower long-term operational costs, making them suitable for high-capacity, high-reliability scenarios. Wireless solutions, with lower initial costs, may incur additional expenses over time due to equipment and frequency needs. Wi-Fi solutions provide notable advantages in initial cost and deployment speed but are limited by range and potential interference.

Application Scenarios:

  • Fiber optics are optimal for urban areas or situations requiring high bandwidth and low latency.
  • Wireless solutions are better for remote areas or scenarios requiring rapid deployment.
  • Wi-Fi is ideal for specific industrial applications or short-distance high-bandwidth needs.

Looking ahead, a hybrid approach combining fiber optics, wireless, and Wi-Fi might become prevalent, balancing cost, flexibility, and performance. As technology advances, the capacity and reliability of wireless and Wi-Fi solutions are expected to improve, broadening their market potential.

524 WiFi 6 DR6018 Solution: Shijiazhuang 5G Base Station and Controller Wireless Transmission Application

The DR6018 has proven effective in delivering stable wireless transmission between 5G base stations and controllers. For practical applications and more details about our DR6018-outdoor solution, visit our DR6018-Outdoor Solution page.

DR6018-Outdoor mounted outdoor
Topology of the WiFi Transmission
5G Base Station
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Understanding Wireless Roaming: The Backbone of Seamless Connectivity.

wireless roamin

In today’s hyper-connected world, the expectation of uninterrupted wireless connectivity has become a given, whether we’re in an office, a factory, or a moving vehicle. Behind the scenes, one key technology enables this seamless experience: wireless roaming. This article explores the core principles of roaming, its significance in industrial applications, and how companies like Wallys are optimizing this technology for critical environments.

What is Wireless Roaming?

Wireless roaming refers to the process by which a device maintains its network connection while moving between different wireless access points (APs) within the same network. As a device moves out of the range of one AP, it must connect to another AP without dropping the connection or disrupting the user experience. This handover needs to be smooth and fast, especially in environments where continuous connectivity is crucial.

For example, think about walking through an office building while on a video call. As you move from one area to another, your device will transition between different APs. If roaming is well-implemented, you won’t even notice this transition; your call will continue uninterrupted.

The Technical Standards Behind Roaming

Roaming is made possible through a combination of advanced wireless standards that help devices decide when and how to switch between APs. The most critical of these standards include:

  • 802.11k: This standard allows devices to make informed decisions about which AP to connect to next. It does this by gathering information about the surrounding network, such as the signal strength of neighboring APs. By having this data in advance, the device can more quickly and intelligently choose the best AP when it’s time to switch.
  • 802.11r: Also known as Fast BSS Transition, this standard is crucial for minimizing the delay during AP handovers. In typical scenarios, when a device switches APs, it has to go through a re-authentication process, which can cause a noticeable delay. 802.11r speeds up this process by allowing the device to pre-authenticate with the next AP while still connected to the current one, enabling a faster and more seamless transition.
  • 802.11v: This standard provides network management features that optimize roaming performance. For instance, it allows the network to “advise” devices on which APs they should connect to based on current network conditions, such as load balancing or signal strength. This proactive management can lead to more efficient roaming and better overall network performance.

Challenges in Wireless Roaming

Despite these advanced standards, implementing effective roaming can be challenging, particularly in complex environments. Some of the key challenges include:

  • Handoff Delays: Even with fast protocols like 802.11r, there’s always a risk of delays during the handoff process. This can be particularly problematic in environments where even a brief interruption is unacceptable, such as in automated industrial systems or real-time communication platforms.
  • Signal Interference and Coverage Gaps: In large or densely populated areas, signal interference from other devices or physical obstructions can disrupt the roaming process. Similarly, coverage gaps between APs can cause a device to lose connection before it finds the next AP, leading to dropped connections.
  • Security Considerations: Each time a device switches APs, it typically has to re-authenticate, which can create a window of vulnerability. Ensuring that this process is both fast and secure is a major concern in environments where data security is critical.

Roaming in Industrial Applications

The importance of effective roaming becomes even more apparent in industrial and enterprise environments, where seamless connectivity is often mission-critical. In these settings, devices might be continuously on the move—whether they are automated guided vehicles (AGVs) in a warehouse, mobile devices used by workers on a factory floor, or surveillance cameras in a smart city.

For example:

  • In Smart Cities: Public transportation systems often rely on roaming to maintain live video feeds from buses or trains as they move through the city. Here, uninterrupted connectivity ensures real-time monitoring and security.
  • In Warehouses: AGVs that move goods around large storage areas must remain connected to the central control system at all times. Any interruption in connectivity could halt operations or cause errors in the logistics process.
  • In Manufacturing: Factory automation systems depend on reliable wireless communication to coordinate complex processes. Roaming ensures that these systems can operate smoothly even as components or devices move throughout the facility.

524WiFi and Wallys’ Solutions for Optimized Roaming

524WiFi and Wallys have developed a range of wireless solutions specifically designed to address the challenges of roaming in industrial environments. By integrating high-performance hardware with advanced firmware, 524WiFI ensures that devices can roam seamlessly between APs with minimal delay and maximum reliability.

  • High-Performance Hardware: 524WiFI’ wireless modules are built with robust components that enhance signal strength and reduce the likelihood of interference. This hardware foundation is critical for ensuring strong, stable connections that can support fast and efficient roaming.
  • Optimized Firmware: Wallys’ custom firmware is tailored to optimize roaming performance. This includes intelligent algorithms that manage AP selection and transition processes, ensuring that devices always connect to the best available AP with minimal disruption.
  • Ease of Integration: 524WiFi’ solutions are designed to be easily integrated into existing networks, making it simple for enterprises to upgrade their systems with advanced roaming capabilities. Whether you’re deploying a new network or enhancing an existing one, we provide the tools and support needed for a smooth implementation.

The Future of Roaming – Wi-Fi 6E and Wi-Fi 7

As wireless technology continues to evolve, the future of roaming looks promising. With the advent of Wi-Fi 6E and Wi-Fi 7, we can expect even faster and more reliable roaming capabilities, especially in high-density environments. Additionally, the integration of AI and machine learning into network management could enable even smarter and more predictive roaming, further enhancing the user experience.

Moreover, the convergence of Wi-Fi and 5G networks is likely to play a significant role in the future of roaming, particularly in industrial applications. The ability to seamlessly switch between different types of networks, such as Wi-Fi and cellular, will open up new possibilities for continuous connectivity in the most demanding environments.

Conclusion

Wireless roaming is a critical component of modern networking, enabling seamless connectivity in a wide range of environments. As the demand for uninterrupted wireless communication continues to grow, especially in industrial and enterprise settings, the importance of optimized roaming technology cannot be overstated. Companies like 524WiFi and Wallys are at the forefront of this field, developing solutions that ensure reliable, fast, and secure roaming for today’s most demanding applications.

If you’re interested in learning more about how 524WiFi can enhance your network’s roaming capabilities, feel free to reach out to our team. We’re here to help you achieve the seamless connectivity your operations depend on.

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IPQ5018 WiFi 6 Routerboard | Industrial-Grade DR5018S

The DR5018S is a compact, feature-rich Wi-Fi 6 routerboard powered by the IPQ5018 SoC, engineered to streamline the development of embedded devices and networking applications.

Overview

Compact. Powerful. Versatile.

The DR5018S is a highly integrated Wi-Fi 6 routerboard driven by the IPQ5018 SoC. Designed to simplify the creation of embedded devices and wireless systems, it’s an ideal solution for a wide range of applications, from IoT to advanced networking. With a high-performance processor, ample memory and storage, and robust networking capabilities, the DR5018S accelerates time-to-market and reduces product costs.

Key features include support for Triband(2.4Ghz,5Ghz,6Ghz) two spatial streams (2×2 MiMo), a 64-bit dual-core ARM Cortex A53 processor with a 1 GHz clock speed, and optional GPS and Bluetooth 5.1 support. Additionally, the DR5018S is compatible with OpenWiFi, providing flexibility for custom wireless solutions.

Wallys also offers OEM/ODM services, allowing customization of the routerboard to SOM modules and other interfaces tailored to your specific project or product design.

Specifications

  • Processor: IPQ-5018 SoC (Maple)
  • CPU: Dual-core 1 GHz ARM Cortex A53
  • Wi-Fi:2×2 MiMo 2.4GHz WiFi 6 radio2x2 MiMo 5GHz WiFi 6 radio2x2 MiMo 6GHz WiFi 6 radio
  • Data Rate:573.5 Mbps (2.4GHz, 1024 QAM, 2SS)Up to 2402Mbps (5GHz, 2×2 On-board radio)Up to 2402Mbps (6GHz, 2×2 On-board radio)
  • Ethernet Interfaces: 2.5G and 1G (customizable)
  • Interfaces: PCIe and mini PCIe for external radio (customizable)
  • Power: Low power consumption
  • Form Factor: Compact size
  • Additional Features:Support for OpenWiFiOptional GPS supportOptional Bluetooth 5.1 support

DR5018S DETAILS

Need Wi-Fi 6 or Wi-Fi 7?

With years of experience in Qualcomm chip hardware and embedded software development, 524WiFi and Wallys offer customized services that help companies bring their products to market quickly and effectively.

We can assist at any stage of product design—from project planning to prototyping, and even mass production. Whether you need a daughterboard with specific requirements and interfaces or a fully custom hardware design, we’re here to help.

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The Essence of OFDMA

At the heart of OFDMA lies the concept of dividing the available wireless spectrum into smaller, more manageable resource units. These resource units, or subcarriers, are then dynamically allocated to multiple users based on their individual data transmission needs. This approach contrasts with traditional OFDM, where the entire spectrum is allocated to a single user at a time, leading to inefficient utilisation of network resources, especially when dealing with a large number of users with varying data requirements.

Benefits of OFDMA

The implementation of OFDMA has brought about a multitude of benefits to wireless networks, including:

  • Increased Efficiency: By allocating resource units based on user needs, OFDMA minimises the amount of unused spectrum, leading to more efficient utilisation of network resources.
  • Enhanced Capacity: The ability to serve multiple users simultaneously significantly increases the overall capacity of the network, enabling more devices to connect and access data without experiencing congestion or slowdowns.
  • Improved Fairness: OFDMA ensures that users with different data requirements are treated fairly, preventing users with high data needs from dominating the network and depriving others of adequate bandwidth.
  • Reduced Latency: By efficiently distributing data across multiple subcarriers, OFDMA minimises the time it takes for data to travel from a device to the network and back, resulting in lower latency and a more responsive user experience.

Real-World Applications

The benefits of OFDMA extend beyond theoretical advantages, positively impacting various real-world applications:

  • Dense Wireless Environments: In crowded environments like stadiums, offices, or public transportation hubs, OFDMA plays a crucial role in ensuring that all users can access the network without experiencing significant performance degradation.
  • Real-Time Applications: For applications that demand low latency, such as video conferencing, cloud gaming, and remote surgery, OFDMA’s ability to minimise delays is essential for providing a seamless and uninterrupted user experience.
  • Internet of Things (IoT): With the growing proliferation of IoT devices, OFDMA enables efficient management of data traffic from a vast number of connected devices, ensuring that critical data is transmitted reliably and without congestion.

The Future of OFDMA

As wireless technologies continue to evolve, OFDMA will undoubtedly play an even more prominent role in shaping the future of wireless communication. With its ability to address the challenges of increasing user demands, diverse data requirements, and the growing density of connected devices, OFDMA is poised to enable a new era of seamless, efficient, and high-performance wireless connectivity.

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IPQ5018 524WiFi DR5018 Series Now Supports OpenWRT

Exciting News: 524 WiFi Driver DR5018 Series Now Supports OpenWRT

524WiFi and WallysTech are proud to announce that our DR5018 series, including models DR5018, DR5018M, DR5018M-5G, and DR5018M-6G, now supports OpenWRT and Linux version 6.6.35. This update brings a new level of flexibility and control to your networking infrastructure, allowing you to leverage the robust features and active community support of OpenWRT. Whether you’re operating in the 5G or 6G spectrum, the DR5018 series is designed to meet the demands of modern networking environments.

Outstanding Hardware Performance of DR5018M

Under WallysTech’s own firmware, the DR5018M model stands out with its impressive hardware performance. It excels in Point-to-Point (PtP) applications, delivering remarkable connectivity over distances of 1.5km and 3.3km. This makes it an ideal choice for businesses requiring robust and reliable long-distance networking solutions.

DR5018M (Original Version)

1.Compact size

2.Customizable bottom board for enhanced flexibility

https://www.524wifi.com/index.php/catalogsearch/result/?q=dr5018

Dual-core ARM 64-bit A53 processor clocked at 1.0GHz

1GB DDR L3L system memory

8MB NOR Flash, 256MB NAND Flash

Dual onboard 2.4GHz radios with up to 573Mbps physical data rate

M.2 card slot for QUECTEL RM 500Q-GL 5G module

M.2 card slot for QCN9074 WIFI 6E Card

M.2 card slot for QCN6122-6E Card

M.2 card slot for QCN6102-5GCard

Supports Openwifi

New DR5018M (Updated Version)

1.New base board with onboard 5G/6G selectable capability

2.Added 2.5G Ethernet port

Dual-core ARM 64-bit A53 processor clocked at 1.0GHz

1GB DDR L3L system memory

8MB NOR Flash, 256MB NAND Flash

Dual onboard 2.4GHz radios with up to 573Mbps physical data rate

M.2 card slot for QUECTEL RM 500Q-GL 5G module

M.2 card slot for QCN9074 WIFI 6E Card

M.2 card slot for QCN6122-6E Card

M.2 card slot for QCN6102-5GCard

Supports Openwifi

Applications:

Security Surveillance

Commercial Radio Coverage

Hotel Wireless Applications

Countrywide Coverage

Forest Fire Protection Engineering

Specialized Scene Applications

Customizable Features for Enhanced Networking

524WiFI and WallysTech not only provide top-notch hardware but also offer extensive software and hardware customization options to meet specific business needs. Some of the key customizable features include:

  • Captive Portal: Enhance user engagement and control access to your network with a tailored captive portal solution.
  • 6GHz Support: Benefit from faster speeds and reduced interference by utilizing the 6GHz spectrum.
  • OpenWiFi and OpenWRT Support: Experience greater flexibility and customization with open-source firmware, allowing you to tailor your network setup to your exact requirements.
  • Fast Roaming: Ensure seamless connectivity for users on the move, maintaining stable and consistent network access.
  • WiFi Stability: Enjoy reliable performance across all your networking needs with WallysTech’s stable and dependable WiFi solutions.
  • WISP (Wireless Internet Service Provider): Optimize your network for internet service provision with solutions designed specifically for WISPs.
  • TDMA and TDD: Improve your network performance with efficient data transmission techniques.
  • Custom Webpage Design: Tailor your network interface to meet your specific needs and branding, providing a customized user experience.
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IPQ9574 | DR9574: Achieving 9.9Gbps with WiFi 7 – What does this mean for You?

Unlocking the Future with 524WiFi’ WiFi 7 Solutions

As technology evolves, so does our need for faster, more reliable wireless connectivity. Enter WiFi 7, the latest leap in wireless technology, bringing unprecedented speed, capacity, and efficiency. At Wallys, we are proud to be at the forefront of this revolution, offering cutting-edge WiFi 7 solutions tailored for both industrial and commercial applications. Here’s a closer look at what makes WiFi 7 a game-changer and why Wallys is your go-to partner for advanced WiFi solutions.

WiFi 7 New Features

WiFi 7 introduces several groundbreaking features designed to significantly enhance wireless performance:

  • Multi-Link Operation (MLO): This feature allows devices to simultaneously connect to multiple frequency bands, improving data throughput and reducing latency
  • Multi-RU (MRU) and Preamble Puncturing: These techniques optimize spectrum utilization, enabling more efficient data transmission and reduced interference.
  • 6GHz 320MHz Channel Support: The wider channels in the 6GHz band allow for greater data transfer rates, significantly boosting network capacity.
  • 4K-QAM Modulation: This advanced modulation technique increases data density, providing up to 20% more data throughput compared to WiFi 6.

Applications and Possibilities

With these innovations, WiFi 7 opens up new horizons for various applications:

  • 4.8x Faster Speeds: Experience lightning-fast data rates that redefine what’s possible in high-bandwidth applications, from streaming 8K video to ultra-responsive online gaming.
  • 5x Capacity: The increased capacity ensures more devices can connect simultaneously without compromising performance, perfect for dense environments like stadiums and smart cities.
  • Ultra-Low Latency: Achieve near-instantaneous communication ideal for real-time applications such as virtual reality, augmented reality, and mission-critical IoT systems.

524WiFi WiFi 7 Solutions

At 524WiFi, we offer two robust WiFi 7 solutions designed to meet diverse needs:

1.DR9574 IPQ9574 Solution (Industrial Grade)

Features: Qualcomm IPQ9574 chipset, QCN9247 4×4 2.4GHz, 4x M.2 slots, QCN6274/QCN9274, 2x 10G Ethernet ports, 4x 1G Ethernet ports.

Performance: Achieves impressive throughput with a 6GHz indoor test reaching 9.9Gbps when tested with a 10G port PC.

More Info: DR9574 IPQ9574 Solution

2.DR5332 IPQ5332 Solution (Commercial Grade)

Features: Qualcomm IPQ5332 chipset, 10G SFP, 1GB DDR4 16-bit.

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524WiFi 6 Dream and Driver DR5018M: High-Performance WiFi 6 Routerboard for Industrial Applications

DR5018M: High-Performance WiFi 6 Routerboard for Industrial Applications

In modern industrial settings, the demand for reliable and high-speed wireless communication is ever-increasing. Wallys Communications offers the DR5018M, a WiFi 6 routerboard designed to meet these needs. This board integrates Qualcomm’s IPQ5018 chipset, providing robust performance and advanced features tailored for challenging industrial environments.

Key Features of the DR5018M

Advanced Processor

The DR5018M is powered by the Qualcomm IPQ5018, a dual-core ARM 64-bit A53 processor clocked at 1.0GHz. This ensures high processing power for handling multiple tasks and maintaining stable connections under heavy loads.

Exceptional Wireless Performance

The routerboard supports 2×2 MU-MIMO and OFDMA technologies, which enhance data transmission efficiency and network capacity. With onboard 2.4GHz radio, it delivers up to 573Mbps physical data rate, suitable for high-bandwidth applications like video streaming and data transmission in factories and warehouses.

Long-Distance PTP Transmission

The DR5018M excels in long-distance Point-to-Point (PTP) transmission:

  • 3.3KM Test:5GHz: 949Mbps6GHz: 821Mbps
  • 1.5KM Test:5GHz: 1.5Gbps6GHz: 1Gbps

These capabilities make it ideal for large industrial sites requiring extensive wireless coverage.

Flexible Connectivity Options

The DR5018M includes multiple M.2 slots for various radio cards (QCN9074 for WiFi 6E, QCN6122 for 6GHz, and QCN6102 for 5GHz), providing flexibility to meet different frequency band requirements. Additionally, it features a 1Gbps Ethernet port, USB 3.0, and PCIe 3.0 interfaces for versatile connectivity.

Enhanced Security with WPA3

Security is a top priority in industrial networks. The DR5018M supports WPA3 encryption, offering:

  • Stronger encryption protocols for enhanced data security.
  • Improved protection against brute-force attacks.
  • Secure, individualized encryption for each device on the network.

Rugged Design for Industrial Use

Designed to withstand harsh industrial conditions, the DR5018M operates within a wide temperature range (-40°C to 70°C) and humidity levels (5% to 95% non-condensing), ensuring reliability in various environments.

Industrial Applications

Factory Automation

The DR5018M provides stable, high-speed wireless connections for automated production lines, supporting real-time data transmission and control.

Smart Warehousing

It enables efficient operation in smart warehouses by supporting numerous concurrent connections and high data throughput.

Industrial Surveillance

With its robust wireless performance, the DR5018M supports high-definition video streaming and real-time monitoring, essential for surveillance systems.

Remote Monitoring and Control

The long-distance PTP capabilities make it perfect for remote monitoring and control applications, ensuring reliable communication across vast industrial sites.

Conclusion

DR5018M routerboard combines high-performance wireless technology with robust security features, making it an ideal choice for industrial applications. Its powerful IPQ5018 processor, excellent long-distance transmission capabilities, and support for WPA3 encryption ensure that it meets the demanding needs of modern industrial environments.

For more information or to inquire about our products, please contact us .

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524WiFi DRiver DR6018S: Achieve 808Mbps Stable Long-Distance PTP Transmission at 1.5km with the IPQ6010 WiFi 6 Chipset

DR6018S: Achieve 808Mbps Stable Long-Distance PTP Transmission at 1.5km with the IPQ6010 WiFi 6 Chipset

As wireless communication technology continues to evolve, the demand for high-performance, long-distance, point-to-point (PTP) solutions has grown significantly. The DR6018S routerboard, featuring the IPQ6010 WiFi 6 chipset, has emerged as a robust solution capable of delivering impressive speeds over long distances. This article delves into the testing results of the DR6018S, provides an overview of its specifications, compares the IPQ6010 with the IPQ6000, explores various applications, and highlights the services offered by Wallys, the company behind this innovative technology.

DR6018S Long-Distance Testing Results

3.3km Test Results

The DR6018S routerboard, when tested at a distance of 3.3 kilometers, demonstrated strong performance. Paired with the DR5G17 antenna, the test results were as follows:

  • Speed: 572 Mbps
  • RSSI (Received Signal Strength Indicator): 34
  • RX (Receive Rate): 854.7 Mbps
  • TX (Transmit Rate): 432.4 Mbps

These results underscore the capability of the DR6018S to maintain a reliable connection over a considerable distance, ensuring effective data transmission even in challenging environments.

1.5km Test Results

When the testing distance was reduced to 1.5 kilometers, the performance of the DR6018S improved significantly, showcasing its potential for high-speed transmission over moderate distances. Using the same DR5G17 antenna, the results were:

  • Speed: 808 Mbps
  • RSSI: 44
  • RX: 1080.9 Mbps
  • TX: 1080.9 Mbps

The improved RSSI and data rates at 1.5 kilometers highlight the DR6018S’s efficiency in delivering superior performance, making it an ideal choice for various industrial applications requiring stable and fast connectivity.

Overview of the DR6018S Routerboard

The DR6018-S V02 routerboard is built on the IPQ6010/IPQ6018/IPQ6000 chipset family, which is known for its powerful performance and advanced features. Key specifications of the DR6018S include:

https://www.524wifi.com/index.php/catalogsearch/result/?q=6018

  • Processor: Quad-core ARM 64-bit A53 @ 1.8GHz, ensuring robust processing power for demanding tasks.
  • Memory: 1GB DDRL3L System Memory, providing ample capacity for smooth operation and multitasking.
  • Storage: 8MB NOR Flash and 256MB NAND Flash, offering sufficient storage for firmware and applications.
  • Frequency Support: Dynamic Frequency Selection (DFS), enhancing flexibility and reducing interference.
  • 2.4GHz Radio: 2×2 on-board configuration with up to 573Mbps physical data rate, ensuring reliable performance in the 2.4GHz band.
  • 5GHz Radio: 2×2 on-board configuration with up to 1201Mbps physical data rate, enabling high-speed connections in the 5GHz band.
  • Software Support: Openwifi and QSDK, allowing for customization and optimization to meet specific requirements.

IPQ6010 vs. IPQ6000 Comparison

The IPQ6010 and IPQ6000 chipsets belong to the same family but cater to different performance needs. The IPQ6010 is designed for higher performance, offering enhanced stability and reliability, making it suitable for demanding applications. In contrast, the IPQ6000 serves as a lower-end option, suitable for less intensive applications where cost efficiency is a priority. The superior performance of the IPQ6010 makes it a preferred choice for industrial and enterprise applications requiring consistent and high-speed connectivity.

Applications of DR6018S

The versatility of the DR6018S routerboard allows it to be deployed in a wide range of industrial applications, including:

  • Industrial Long-Distance Transmission: Ensures stable and high-speed communication over extensive distances, critical for remote monitoring and control systems.
  • Customer Premises Equipment (CPE): Ideal for providing internet access to end-users in residential and commercial settings.
  • Logistics and Warehousing: Enhances connectivity and data management in large facilities, improving operational efficiency.
  • Security: Supports high-definition surveillance systems, providing reliable and secure transmission of video data for enhanced security.
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NEW 802.11 BE Wi-Fi 7 QUALCOMM BOARDS WITH MU-MIMO and 802.11 AX OFDMA WIFI 6 RADIO ON BOARD and 5G Cellular module support

QCN9274: WHAT IS THE THROUGHPUT POTENTIAL OF WIFI7 CARDS?

In the realm of WiFi routers, throughput serves as a key determinant of performance. A higher throughput signifies enhanced data transfer rates, enabling seamless connectivity for multiple devices concurrently. This capability proves invaluable for bandwidth-intensive tasks like high-definition video streaming, online gaming, and large file downloads.

Routers with high throughput capabilities offer not only stable connections but also expedited wireless transmissions, thereby elevating user experience significantly. Whether accommodating numerous devices or facilitating data-intensive operations, such routers are indispensable for meeting the demands of modern connectivity.

524WiFi has conducted tests on the throughput of Qualcomm WiFi7 router, IPQ 9574, and 524WiFi WiFi7 module, DRiver 9274-6G, achieving remarkable speeds of up to 8.9G. Under optimal conditions, throughput may even reach 9G+, approaching the 10G mark. This demonstrates the exceptional performance potential of 524WiFi products in providing stable and high-speed wireless connections.

In summary, prioritizing routers with high throughput ensures optimal performance and reliability, particularly in environments with multiple interconnected devices and extensive data transfer requirements.

DRiver 9574 ROUTERBOARD (QUALCOMM ADLER)

802.11be IPQ9574 4×4 2.4G 2x10G +4x1G Ethernet Port

Support WIFI7 card QC9274-QCN6274

DBDC 2×2 2.4G& 2×2 5G

DBDC 2×2 5G& 2×2 6G

single band 4×4 5G

single band 4×4 6G

WLAN Host Interface:PCI Express 3.0 Interface

Frequency Range:2.4GHz: 2.412~2.472GHz

524WIFI 7 DRiver 9274-6G

DRiver 9274-6G based on QCN9274 Chipset is an enterprise wireless module integrated with 4×4 MU-MIMO single Band Wireless Module designed specifically to provide users with mobile access to high-bandwidth video streaming, voice, and data transmission for office and challenging RFenvironment in factories, warehouses establishment

4×4 6G MU-MIMO WiFi Module

WIFI7 M.2 card QCN9274

■ Qualcomm Atheros QCN9274 for Industrial Grade;

■ Maxim Tx power 22dBm per chain;

■ 4×4  6G MU-MIMO, up to 11530Mbps physical data rate;

■ Support up to 4096-QAM;

■ M.2 connector;

■ PCI Express 3 .0 Interface

WHAT’S WI-FI 7?

Wi-Fi 7 has the following features:
*provide over 3 times faster data rates of 46 Gbps using a 320 MHz channel in the 6 GHz
*one 160 MHz channel in the 5 GHz band with up to 4096-QAM (4K-QAM) modulation
*16 spatial streams MU-MIMO, New Multi-Link  Operation (MLO) enables Wi-Fi 7 to combine several frequencies across bands into a single and steady connection.


Wi-Fi 7 is being designed to be optimized for these video applications like gaming, streaming, smart home devices and services, cloud computing, video conferencing , etc.

wifi 7 features

WI-FI 6E/7 COMPARISON

Wi-Fi 6E

IEEE 802.11ax
Frequency 2.4GHz, 5GHz, 6GHz
Channel bandwidth 160 MHz
QAM 1024-QAM 4096-QAM
Theoretical maximum  speed 9.6 Gbps
Spatial streams  16×16 MU-MIMO
Application Ac cess point, high quality video streaming, etc.

Wi-Fi 7

802.11be EHT

Frequency  2.4GHz, 5GHz, 6GHz

Channel b-QAM

Theoreticaandwidth Up to 320 MHz

QAN 4096l maximum  speed  46 Gbps

Spatial streams 16×16 MU-MIMO

Video applications like gaming, streaming, smart home devices, cloud computing, video conferencing, etc.

NEW 11AX BOARDS BASED ON QUALCOMM WITH MU-MIMO 802.11AX OFDMA WIFI 6 RADIO ON BOARD! NOW WE SUPPORT 4G / 5G LTE GSM MODEMS! QCA CP01 C4 REFERENCE DESIGN FOR DEVELOPMENT !

– For wifi 6, we have developed the long distance function, in France our customer can run 10km link! This function needs to modify the core of wifi protocol. We just find that only 524WiFi.COM Wallys DR6018 QCA IPQ6018 boards can get the wifi6 to run on 3-10km distance!

– DO YOU LIKE MEDITEK WIFI6 MODULES ? WE DEVELOPPED NEW DBDC (DUAL BAND DUAL CONCURRENT) WIFI6 MODULE FOR HEAVY LOAD APPLICATIONS BASED ON MEDIATEK MT7915-DAN CHIPSET ! PLEASE READ OUR TEST REPPORT FOR THESE MODULES.

–  HOW WE MAKE QCA QCN9074 WLAN WIFI 6 MODULE DR9074 4X4 WORK ON X86 LINUX PLATFORM – PLEASE READ HERE.


LATEST PRODUCTS – PRODUCT NOTICES

Please read this full product report as an example of customisation possibilities :  https://www.524wifi.com/index.php/dr4029board/

NEW MULTI-FUNCTION IPQ6010 (IPQ6018 FAMILY) EMBEDDED BOARD WITH ON-BOARD WIFI DUAL BAND DUAL CONCURRENT / 802.11AX MU-MIMO OFDMA / 2* GE PORTS – DR6018

FEATURES

 Quad-core ARM 64bit [email protected] Processor  1GB DDRL3L System Memory  8MB NOR Flash, 256MB NAND Flash  Supports Dynamic Frequency Selection (DFS  2x2On-board2.4GHz radio,upto 573Mbps physical Data Rate  2x2On-board 5GHz radio,upto 1201Mbps physical Data Rate

Support: QCN9074 WiFi 6E Card in M.2 slot

Product Description

DR6018-S based on IPQ6010 chipset is an enterprise wireless module integrated with 2×2 5G high power Radio module and 2×2 2.4G high power Radio module designed specifically to provide users with mobile access to high-bandwidth video streaming, voice, and data transmission for office and challenging RF environment in factories, warehouses establishment. Passive POE 24-48V supported, DC jack 24-48V. If you need 802.3af/bt active POE support , then please order DR6018-S HV version.

DR6018v4 board is QCA  CP01 – C4 reference design board ideal for your development !  11AX MU-MIMO OFDMA DUAL BAND DUAL CONCURRENT EMBEDDED BOARD

– For wifi 6, we have developed the long distance function, in France our customer can run 10km link! This function needs to modify the core of wifi protocol. We just find that only 524WiFi.COM Wallys DR6018 QCA IPQ6018 boards can get the wifi6 to run on 3-10km distance!

PQ6010 AND IPQ8072:OFDMA SUPPORT IN WIFI6 SOLUTION

Introduction:

In the dynamic landscape of wireless communication, the techniques employed play a crucial role in optimizing data transmission and overcoming challenges. Two key technologies, FDMA (Frequency Division Multiple Access) and OFDMA (Orthogonal Frequency Division Multiple Access), are pivotal in this context. This blog aims to unravel the disparities between FDMA and OFDMA, shedding light on their applications and significance in mitigating multipath interference, particularly in the realm of Wi-Fi.

The Need for Multiple Carrier Technologies:

To comprehend the essence of OFDMA, it’s imperative to first delve into the concept of OFDM (Orthogonal Frequency Division Multiplexing). OFDM is a multicarrier modulation technique designed to combat multipath interference encountered in wireless communication. Multipath interference occurs when radio waves encounter obstacles, causing reflections and refractions. This phenomenon results in multiple versions of the same signal reaching the receiver, leading to what is known as multipath interference.

The Challenge of Inter-Symbol Interference:

Multipath interference directly contributes to intersymbol interference (ISI). In the realm of wireless communication, ISI poses a challenge where, for a given set of serial signals, the receiver encounters difficulty distinguishing between them. This challenge arises when the time delay between two identical signals is less than the signal’s transmission interval. The outcome is known as inter-symbol interference, making it arduous for the receiver to accurately decipher the intended signals.

OFDM as a Solution:

OFDM addresses this issue by transforming high-speed serial data into parallel low-speed data streams, thereby reducing inter-symbol interference. However, OFDM comes with its own set of drawbacks. In Wi-Fi 4/5, where communication is single-user-centric, each data transmission occupies all available subcarriers. This results in inefficiencies when small data packets, such as instant messages or web browsing, are transmitted, as the entire bandwidth is underutilized.

Introduction of OFDMA:

In response to this inefficiency, Wi-Fi 6 introduced OFDMA, borrowing a page from 5G’s playbook. OFDMA, despite its name’s resemblance to OFDM, is fundamentally a multiple access technique. Multiple access techniques distinguish different users, and common methods include FDMA, TDMA, and CDMA.

FDMA vs. OFDMA:

FDMA relies on allocating different frequency channels to different users. In the analogy of a gathering, it’s akin to separating rooms for distinct conversations. On the other hand, OFDMA divides the channel into Resource Units (RUs), each orthogonal to the others. In our gathering analogy, OFDMA creates individual compartments within a room, facilitating multiple conversations simultaneously.

Enhancing Efficiency with OFDMA:

OFDMA optimizes spectral efficiency by scheduling users in specific resource units instead of utilizing the entire channel for a single user, as seen in traditional OFDM. It introduces a more flexible approach, akin to efficiently utilizing a delivery vehicle by allocating designated compartments for different recipients.

Conclusion:

In summary, while OFDM successfully addresses multipath interference by transforming data streams, OFDMA takes a step further by introducing an innovative multiple access technique. By adopting OFDMA, Wi-Fi 6 has elevated efficiency in point-to-multipoint communication, ensuring that a single cycle completes communication with multiple users. This evolution underscores the dynamic nature of wireless communication technologies, continually adapting to enhance performance and meet the demands of evolving applications.

Here are some of 524wifi and Wallys’ 802.11ax products support OFDMA

DR6018:

Qualcomm-Atheros IPQ6010

Quad-core ARM 64bit A53 @1.8GHz Processor

1GB DDRL3L System Memory

32MB NOR Flash, 256MB NAND Flash

Supports Dynamic Frequency Selection (DFS)

2×2 On-board 2.4GHz radio, up to 573Mbps physical Data Rate

2×2 On-board 5GHz radio, up to 1201Mbps physical Data Rate

Support: QUECTEL RM500Q-GL

Support: QCN9074 WiFi 6E Card

Support Openwifi

Support QSDK

https://www.524wifi.com/index.php/catalogsearch/result/?q=6018

DR8072:

Qualcomm Atheros IPQ8072A AR Quad Core CPU

On-board 5GHz radio, up to 2475 Mbps physical data rate,On-board 2.4GHz radio, up to 1147Mbps physical data rate

8 MB NOR Flash, 256MB NAND Flash(NAND Flash can be up to 1GB as optional)

Support 11ax TX Beamforming,Support 11ac/ax MU-MIMO DL and UL,Support OFDMA DL and UL

Supports Dynamic Frequency Selection (DFS)

DDR 1GB DDR3L(Support DDR3L can be up to 2GB as optional)

M.2 connector can support QCN9074 production

https://www.524wifi.com/index.php/catalogsearch/result/?q=8072

DR9074-TRIBAND

Qualcomm Atheros QCN9024

Maxim 23 dBm per chain,up to 4949Mbps

Data Rateup to 4949Mbps

Support  Tri Band 2.4GHz&5GHz&6GHz 4×4 WiFi 6E (802.11ax)

4 spatial streams (4SS)

M.2 E Key Interface

PCI Express 3 .0 Interface

https://www.524wifi.com/index.php/catalogsearch/result/?q=dr9074

QCN9074-6E WITH DR6018 PLATFORM: ACHIEVING 1.5GBPS SPEED IN THROUGHPUT TEST!

QCN9074-6E THROUGHPUT TEST REPORT IN DR6018

 Are you curious about the performance capabilities of the QCN9074-6E network card in the DR6018?

Look no further! In this blog, we’ll walk you through the hardware you’ll need, how to set up one board as an Access Point (AP) and the other as a Station (STA), and perform a throughput test. Plus, we’ll share our exciting conclusions.

HARDWARE REQUIRED:

DR6018 x2

DR9074-6E x2

SETTING UP THE TEST:

  • Board Configuration: Install two DR6018 boards and two DR9074-6E network cards.
  • Role Assignment: Set one DR9074-6E card as the Access Point (AP) and the other as the Station (STA).
  • Network Connection: Utilize the onboard 2.5G Ethernet port for connectivity.

PERFORMING THE THROUGHPUT TEST:

Once the radios are linked, it’s time to assess the performance:

CONCLUSION:

The results are nothing short of impressive. On average, the QCN9074-6E network card in the DR6018 achieves a remarkable speed of up to 1500 Mbps. This speed can be even faster in better environments or when used with the IPQ8072/8074 platform.

In summary, the QCN9074-6E in the DR6018 proves to be a high-performance choice for wireless connectivity. These results showcase the potential of our products, and we’re thrilled to provide you with reliable and speedy wireless solutions.


524WIFI 6, 6E AND TRIBAND QCN 9074 11AX 4X4 WIFI MODULE AVAILABLE NOW !

QCN9074 VS QCN9024 | WIFI6E IOT 4X4 TRIBAND 2.4G 5G 6G NETWORK CARD AND APPLICATION

WHAT ARE THE APPLICATIONS OF AN INDUSTRIAL TRI-BAND NETWORK CARD SUPPORTING 2.4GHZ, 5GHZ, AND 6GHZ?

triband wifi6 modules

Imagine the boundless possibilities that come with an industrial Tri-Band network card, seamlessly embracing the 2.4GHz, 5GHz, and lightning-fast 6GHz frequency bands. Here’s a glimpse into the exciting realms of its potential applications:

 

1. Smart Manufacturing & IoT Revolution: In the heart of smart manufacturing, these Tri-Band cards orchestrate a symphony of devices. From factory robots to floor sensors, they unite the Internet of Things (IoT) to make real-time data analytics and intelligent production a reality.

2. Robotic Precision & Automation: When it comes to industrial robots and automated machinery, precision and speed are paramount. Tri-Band network cards deliver high-speed data transfers and unwavering connections, ensuring uninterrupted automation.

 

3. Surveillance with Clarity: Industrial sites demand top-tier security. Tri-Band cards support high-definition video streams, fortifying security systems. They extend the eyes and ears of surveillance networks, enhancing vigilance.

 

4. Scientific Excellence: In the world of scientific research and high-performance computing, these network cards are the lifeline. They enable lightning-fast data transfer, facilitating experiments, simulations, and data analysis at astonishing speeds.

 

5. Connecting the Unreachable: When it’s about connecting distant devices in remote locations, Tri-Band cards are the bridge. They make remote monitoring, diagnostics, and maintenance a breeze, minimizing downtime.

 

6. Agriculture & Environmental Guardians: In the fields of agriculture and environmental monitoring, they enable large-scale sensor networks. These networks collect invaluable data for better decision-making, crop management, and environmental preservation.

 

7. Aerospace & Beyond: Think of satellite communications and aerospace ventures. Tri-Band cards empower high-speed data exchanges between spacecraft, satellites, and ground stations, venturing into the far reaches of the cosmos.

 

With the 6GHz band, an integral part of the WiFi 6E, industrial Tri-Band network cards offer an abundance of spectrum resources. They cater to the insatiable appetites of high bandwidth and low latency. The future of industrial connectivity shines brighter than ever before!

524WIFI 6E IOT 4X4 TRIBAND 2.4G 5G 6G NETWORK CARD:DR9074

Both the QCN9074 and QCN9024 are Qualcomm chips, and Wallys has chosen this platform for the development of Tri-Band card due to its exceptional stability and superior performance.

Let me share the fascinating story of its inception. Before the advent of the remarkable DR9074 Tri-Band Network card, Wallys had already pioneered single-band network cards like the DR9074-2.4G, DR9074-5G, and DR9074-6E, each earning a reputation for top-notch performance.

Then came an intriguing request from one of our valued customers: ‘The DR9074-5G and DR9074-6E deliver exceptional performance; do you have plans for a Tri-Band version of this card?’ As an innovation-centric company, this question ignited a spark among our engineers.

Fuelled by passion and driven by the pursuit of excellence, our engineers toiled day and night. And voilà, Wallys proudly presents the DR9074 Tri-Band Network card, a testament to our commitment to innovation and customer satisfaction.

 

NOW, LET’S DIVE INTO THE EXCITING FEATURES OF THIS GROUNDBREAKING CARD!

DR9074-TRIBAND

■ Qualcomm Atheros QCN9024

■ Maxim 23 dBm per chain,up to 4949Mbps

■ Data Rateup to 4949Mbps

■ Support  Tri Band 2.4GHz&5GHz&6GHz 4×4 WiFi 6E (802.11ax)

■ 4 spatial streams (4SS)

■ M.2 E Key Interface

■ PCI Express 3 .0 Interface

 

Symbol/Parameter

Chipset:Qualcomm Atheros QCN9024

WLAN Host Interface:PCI Express 3.0 Interface

System Memory:2Mbit serial I²C bus EEPROM

Standard Operating Voltage:5V

Operating Systems:QSDK

Host Interface:M.2 E Key

Antenna Cable / Port:4 x MMCX Connectors,4T4R

Frequency Range:2.412GHz-2.472GHz & 5.18GHz-5.825GHz & 5.925GHz-7.125GHz

Data Rates for WALN:Maxim 23dBm per chain, up to 4949Mbps

Channel Spectrum Widths for WLAN:Support 20/40/80/160MHz

Modulation Techniques:OFDMA: BPSK, QPSK, DBPSK, DQPSK, 16-QAM, 64-QAM, 256-QAM, 1024-QAM, 4096-QAM

Temperature Range:

Operating: -20°C to 70°C,

Storage: -40°C to 90°C

Humidity

Operating: 5% to 95% (non-condensing),

Storage: Max. 90% (non-condensing)

Reference Design:PN02 .7

Power Consumption:TBD

Dimensions (WxHxD):57mm x 63mm x 6mm

 


 MEDIATEK WIFI 6 MINIPICE MODULES BASED ON MT7915 CHIPSET WITH WIDE LINUX AND OPENWRT DRIVERS SUPPORT

WE DEVELOPPED NEW DBDC (DUAL BAND DUAL CONCURRENT) WIFI6 MODULE FOR HEAVY LOAD APPLICATIONS BASED ON MEDIATEK MT7915-DAN CHIPSET ! PLEASE READ OUR TEST REPPORT FOR THESE MODULES.

FIRST INDUSTRIAL CAPABLE WIFI 6 / 6E TRI-BAND

Sparklan WNFQ-268AXI(BT) / WPEQ-268AXI(BT) designed  with Tri-band capability, supports DBDC mode making integration easy and fast

SPARKLAN WIFI 6 / 6E SOLUTIONS

Sparklan wifi 6 6E solution

WIFI 6 FOR WINDOWS PLATFORM IS HERE !

Wifi 6 now with industrial life-cycle support with WNFT-238AX(BT)


QUECTEL 5G AND LTE-A MODEMS – 10X FASTER THAN LTE NETWORKS

New Quectel RM502Q-AE m.2 5G Global module -hot sell for better price !!

2023 NEW PRODUCTS – WIFI 7  QCA AP AND CLIENT SOLUTIONS FROM SPARKLAN:

Sparklan wifi 7 solution