
Resco Field Service+ empowers field service teams by transforming traditional service processes into streamlined digital workflows. Built to enhance operations in industries like utilities, telecommunications, manufacturing, and energy, Field Service+ combines offline functionality with advanced scheduling, routing, and data capture tools to keep teams productive in any environment.
With seamless integration into Dynamics 365 and Salesforce, Resco Field Service+ enables real-time data access and updates from the field, reducing manual entry and eliminating paper-based records. Field technicians can use their mobile devices to capture photos, scan barcodes, complete checklists, and access service history—even offline, which is critical for remote or high-traffic areas.
Features include drag-and-drop customization, allowing teams to create workflows, forms, and reports without coding. Its GPS and routing capabilities help technicians optimize their routes, and with real-time insights, supervisors can monitor job status and resource allocation on the go.
Resco Field Service+ makes managing field operations efficient and reliable, helping organizations improve response times, reduce errors, and enhance customer satisfaction.
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TimeControl is a timesheet system that can be used for both finance and project management. TimeControl was designed to serve multiple purposes at once. TimeControl tracks time task-bytask and project-byproject. Despite its project-based controls it is still a financial timesheet that meets all the requirements of payroll, human resource, billing, and finance. TimeControl is available for subscription in the cloud and for purchase for an installation on-premise. It includes both a browser interface as well as the TimeControl Mobile App for iOS or Android.
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NeuralMould
NeuralMould, developed by Emmi AI, is an advanced Large Engineering Model specifically designed for injection molding, setting a new benchmark in AI-driven engineering solutions by accommodating any geometry, material, and injection gate configuration within a single framework. Users can easily choose from various geometries while testing different parameters related to injection, materials, and gate placement, allowing for quick simulations of filling behavior, rapid scenario comparisons, optimization of key performance indicators, and the prevention of frozen flow fronts. The complexity of injection molding simulations arises from the necessity to conduct multi-physics calculations, which accurately model the transient flow of viscous plastics through intricately designed thin-walled shapes under high-pressure and high-temperature conditions. NeuralMould effectively captures these critical phenomena across diverse injection scenarios and mold designs, achieving results that rival traditional solvers but with significantly reduced computation times. Additionally, the model is capable of handling multi-material applications, facilitating quick prototyping, accommodating multi-gate setups, and managing a variety of processing parameters thanks to its scalable transformer-based architecture. This innovative approach uniquely positions NeuralMould as a vital tool for engineers seeking to enhance efficiency and precision in the injection molding process.
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NeuralWing
NeuralWing serves as a cutting-edge model for real-time neural simulation and design optimization specifically tailored for transonic aircraft aerodynamics. It leverages the most comprehensive 3D transonic wing dataset, derived from 30,000 steady-state CFD simulations that span a 3D wing operating within the transonic regime, incorporating variations in four distinct geometry parameters and two different inflow conditions. By utilizing Emmi’s AB-UPT surrogate model, which has been meticulously trained on this extensive dataset, NeuralWing empowers users to effortlessly alter wing geometries, conduct optimizations, and enhance aerodynamic efficiency within mere seconds. The model is designed to facilitate transonic 3D wing simulations, accommodating variations in geometry and inflow, while offering real-time inference and optimization of design parameters. Users input a geometry mesh in STL format along with speed and angle of attack, and in return, they receive outputs that include pressure, friction, velocity fields, and integral forces such as lift and drag. Geometry meshes are generated dynamically in response to four design parameters, employing a differentiable approach that allows for swift assessment of design modifications. Furthermore, NeuralWing boasts an impressive accuracy rate of 99.5%, making it an invaluable tool for aerodynamics research and development. This level of precision ensures that engineers can trust the results as they iterate on their designs.
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