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WiBotic Launches Cutting-Edge Charges and Transmitters for Drones and Autonomous Mobile Robots
WiBotic’s expertise in developing effective charging solutions for robots that operate in various situations, including the harshest, is demonstrated by these products.
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Applied Technology Review | Thursday, September 09, 2021
WiBotic’s expertise in developing effective charging solutions for robots that operate in various situations, including the harshest, is demonstrated by these products.
FREMONT, CA: WiBotic, a Seattle-based company specializing in advanced charging and power optimization solutions for the rapidly growing ecosystem of aerial, marine, mobile, space, and industrial robots, has announced several new cutting-edge chargers and transmitters for drones and autonomous mobile robots. WiBotic’s expertise in developing effective charging solutions for robots that operate in various situations, including the harshest, is demonstrated by these products.
Paul Wiener, VP of Strategic Marketing at GaN Systems, congratulated WiBotic on the announcement: “These new products are just as exciting for GaN Systems as they are for WiBotic. We continue to believe the market for high-power wireless charging systems is going to explode in the coming years and companies like WiBotic are going to lead the way through the use of GaN technology.”
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The following are some of the new products:
Onboard charger OC-262: The OC-262 is a ruggedized onboard charger that was originally created for the Department of Defense but is now being made available to the general public in response to consumer demand. The OC-262 provides major benefits to customers in the oil and gas, mining, construction, maritime exploration, and agriculture industries, as passive cooling is particularly advantageous in severe settings where water, dust, filth, and corrosion are key problems.
The OC-262 has no moving parts, supports all popular robot battery chemistries, and pairs with a weatherproof receiver antenna for a complete outdoor solution, delivering up to 300W of power.
The OC-262 is now available in two models:
An IP20-rated ST model for applications that require passive cooling but are more exposed to the elements.
For usage in outdoor or harsh settings, a WP variant with an IP67 rating is available.
Onboard Charger OC-150: The OC-150 is a tiny and lightweight onboard charger designed for UAVs and smaller robots that produces up to 150W of total power and up to 10A of current depending on battery voltage. It supports several battery chemistries and has an output voltage range of 9V to 58.5V, just like other OCs.
TR-150 Transmitter: The TR-150 is a small transmitter that uses high-efficiency GaN transistors from WiBotic partner GaN Systems. It is primarily intended for use with the new OC-150 onboard charger, although it works with all WiBotic OCs in various robot fleets. Its new GaN-driven power amplifier, which can deliver up to 150W of power, has a remarkable 95 percent efficiency, resulting in end-to-end wireless power system efficiencies of 85 percent or more.
TR-300 Transmitter: The TR-300 is a tiny wireless power transmitter that uses GaN Systems' technology for optimal efficiency, just like the TR-150. When combined with WiBotic's OC-262 or OC-301 onboard chargers, the TR-300 provides the same fundamental benefits as the TR-150 while also delivering up to 300W of power.
“When it comes to power delivery for autonomous drones and mobile robots, it’s crucial to innovate with new technologies such as GaN to maximize efficiency,” said Ben Waters, CEO, WiBotic. “These new products not only push that technical envelope but are also designed to survive in the most extreme operational conditions. And when used together with WiBotic software, they now let operators track and strengthen the performance of individual batteries within large and diverse collections - whether charging is performed manually or fully autonomously.”
WiBotic showed an interesting new use for onboard chargers at the AUVSI Xponential event held in Atlanta, GA, August 17-19. When vast collections of varied batteries are manually charged for repetitive field use, as drone service providers will attest, it can be difficult to maintain track of individual battery status. WiBotic OCs can now track and report on individual battery charge cycles, charge rate (amps), termination voltage, and other crucial characteristics that influence how a battery will function day-to-day when used with WiBotic’s new Commander Fleet Energy Management software.
Robots that can function in a warehouse setting without direct human supervision are known as autonomous mobile robots (AMR). Instead of using magnetic strips or tracks, it employs sensors and maps to detect and avoid obstacles, navigate the warehouse floor, and analyze its surroundings.
An AMR can perform a variety of warehouse and order fulfillment functions, including executing pick strategies, transporting goods and materials, and guiding associates. Here are a few ways autonomous mobile robots can make warehouse operations more efficient.
Integrating automation easily: Warehouses and order fulfillment centers can deploy AMRs relatively easily compared to conveyor systems and other automation systems. Implementing AMRs does not require permanent, expensive, or structural changes. Since they do not interfere with the organization's facility's day-to-day operations, they can be implemented during working hours.
Walking time can be reduced: Traditional warehouses require associates to walk to the picking area, identify and retrieve the SKUs to be picked, and then walk back to sorting stations. Picking tasks becomes more time-consuming as a result of this walking back and forth.
With AMRs, especially collaborative robots, order fulfillment operations are more productive by automating the journey between the place where orders are allocated to a cart and the pick-up area, as well as the journey between the end of a picking cycle and the sorting station. In addition to reducing trips, AMRs enable warehouse associates to pick items for multiple orders at the same time. Moreover, reducing overall travel time through the warehouse also reduces physical and mental fatigue, resulting in fewer mistakes and accidents. It is particularly useful in facilitating zone and pick-and-pass picking methodologies when AMRs can be used to determine and follow optimized picking routes.
Flexible capital expenditures: Businesses can enjoy the benefits of AMRs on a tight budget without requiring permanent or expensive infrastructure changes to warehouses and distribution centers.
Using maps, AMRs navigate dynamically through warehouse floors, autonomously avoiding obstacles. Therefore, there is no need to install tracks and magnetic strips, create dedicated paths, or even prohibit forklifts and humans from operating in the areas where the robots are deployed. By deploying collaborative robots like Chuck within the facility, businesses do not need to make any costly capital investments. As a result of their ease of deployment, they can also be moved from one facility to another easily.
Human labor can be enhanced: AMRs can move products between workers and stations while human workers can focus on other high-value tasks. Human workers are less physically strained by eliminating the need to transport orders from one area to another. In addition, AMRs work alongside human associates and keep them on task. The robots can be programmed to travel optimal routes for an assignment, thus setting the pace for associates and guiding them on how to accomplish their goals. ...Read more
Following World War II, weather information became accessible through television and the internet, shifting from specialized use to a public utility. The internet facilitated access to meteorological data, and advancements in computing power led to improved forecasting techniques. Artificial intelligence is transforming weather technology, and future technological innovations will likely follow suit.
Significant technology businesses have shifted their focus to weather forecasting. This spike in interest is unsurprising given the unique characteristics of weather data that make it perfect for artificial intelligence applications: it is copious, historical, and globally relevant. Weather is an excellent approach to engage my audience while displaying complex machine learning technologies.
Weather and technology have grown inextricably linked, with AI at the vanguard of this collaboration. AI applications in weather are fast-growing, ranging from local point predictions to massive gridded worldwide forecasts and support for essential judgments. These technologies excel at bridging gaps in our existing understanding and computing capabilities, advancing meteorology science, and adding vital context to weather data.
The next frontier of AI's impact on weather will be sophisticated large language models (LLMs) like the well-known Generative Pre-trained Transformer (GPT). This technology, sometimes called generative AI, provides remarkable flexibility and customization, allowing anyone to contextualize complex meteorological data swiftly. This facet of AI is changing how we comprehend and communicate weather occurrences. It is also being investigated as a potential step change in producing accurate weather predictions. This technology will profoundly alter meteorologists' and scientists' roles in the following years. ...Read more
SCADA systems have long formed the backbone of industrial automation. They play a central role in many processes, from manufacturing to utility management, providing an overview and regulation. With the advancement of technology, the future looks set to change considerably for SCADA systems. Emerging trends redefine how SCADA works, further enhancing its capabilities and integrating it into the bigger context of industrial technology.
As it has evolved, SCADA has become integrated with the Internet of Things (IoT), generating massive data that leads to better decisions and process optimization. SCADA systems have begun integrating with IoT devices to provide more accurate and timely data across numerous inputs, improving operational efficiency and giving more profound insights into system performance.
It is revolutionizing the industry by adopting scalable, flexible, and cost-effective solutions that are much sought after by industrial requirements. These enable remote access to system data and controls, making management and troubleshooting easier. The shift towards the cloud has improved data storage and analysis capabilities for robust analytics and historical data review.
Cybersecurity is essential because SCADA systems are rapidly intertwining with other digital platforms. With increased cyber threats today, more security systems are needed to protect sensitive industrial information and ensure the system's integrity. Future SCADA systems will likely incorporate more complex cybersecurity features, including advanced encryptions, multi-factor authentication, and continuous monitoring against potential threats. Advanced security protocols would be crucial in protecting these systems from cyberattacks while ensuring the dependability of critical infrastructure.
AI and machine learning are also increasingly making headlines in the future of SCADA systems. AI algorithms can read vast volumes of data generated by SCADA systems to identify trends, predict when a piece of equipment needs to be serviced, and optimize all related processes. AI-powered predictive analytics can help prevent equipment failures, minimize time loss, and enhance system efficiency. Thus, AI in SCADA has marked a significant milestone in managing industrial processes more proactively, intelligently, and streamlined.
The trend toward edge computing impacts SCADA systems. Edge computing is a form of data processing closer to the source rather than being sent to the centralized cloud or data center. Since this reduces latency and improves response times, it also reduces the amount of data needing to be transmitted over networks. This can enhance SCADA's real-time monitoring and control, making management decisions more efficient. ...Read more
IoT technology enables water care monitors to monitor water systems in real time for efficiency, sustainability, and cost reductions. Leak detection and distribution optimization prevent wastage and conserve water resources while maintaining the reliability of the infrastructure.
Real-Time Monitoring and Data-Driven Insights
One of the most significant benefits of IoT in water management is the ability to monitor water systems in real-time. By installing IoT sensors on pipes, reservoirs, treatment plants, and water distribution networks, utilities can gather critical data on water quality, flow rates, pressure, and temperature. These sensors continuously send information to a centralized system, providing instant insights into the status of water infrastructure.
This real-time monitoring enables utilities to detect potential leaks, blockages, or contamination before they escalate into costly and disruptive problems. For example, by identifying small leaks early, maintenance teams can fix them before significant water loss occurs, which is particularly vital in water scarcity areas. Real-time data helps optimize water usage and distribution by ensuring that water is delivered where needed most and preventing wasteful practices.
IoT-driven data analytics can provide actionable insights to improve decision-making processes. Utilities can analyze historical data trends, predict future demand patterns, and adjust operations accordingly. This leads to better resource allocation, fewer water shortages, and a more sustainable approach to managing this precious resource.
Improved Efficiency and Cost Savings
In traditional water management systems, inefficiencies are often caused by outdated infrastructure, human error, and delayed responses to problems. IoT addresses these inefficiencies by automating processes and providing tools for continuous optimization. For instance, automated systems powered by IoT can adjust water distribution in real time, ensuring that pressure levels are consistent and water flow is balanced throughout the system.
In treatment plants, IoT can monitor the performance of filtration and chemical treatment processes, ensuring they operate at peak efficiency and with minimal waste. By continuously monitoring energy usage and chemical consumption, utilities can reduce operational costs and lower the environmental impact of water treatment.
IoT enables utilities to manage water storage better. By optimizing reservoir levels based on real-time consumption patterns and weather forecasts, utilities can reduce the need for over-reservation, preventing water wastage and ensuring that water resources are available when needed most. ...Read more