
Premier Construction Software is an AI-powered cloud ERP built for growing general contractors who need tight control over job costs, WIP, and cash flow across multiple projects and entities. It unifies construction accounting, project management, and field operations so GCs can eliminate spreadsheets, speed up billing, and protect margins with real-time financial visibility.
How we help GCs win more work and protect margin:
• Construction cloud ERP built for general contractors, owners, and developers managing multi-project, multi-entity portfolios.
• Advanced construction accounting with detailed job costing, real-time WIP reporting, and cash-flow forecasting to spot issues before they hit the P&L.
• Integrated project and field management with RFIs, subcontracts, drawings, and change orders tied directly to the budget and schedule.
• Automated billing, approvals, and payroll workflows (including subcontractor and pay app portals) to reduce manual entry and speed up collections.
• Native AI and predictive intelligence that surface risks, recommend next actions, and provide executive-ready dashboards for owners and project leaders.
• Unlimited entities, consolidated reporting, and role-based dashboards so finance and operations see the same numbers in real time.
Trusted by GCs and Land Developers globally, Premier saves time, cuts risk, and helps you move forward with clarity. With Premier, you’re not just adopting software, you’re partnering with a trusted leader committed to your success.
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Azore is software for computational fluid dynamics. It analyzes fluid flow and heat transfers. CFD allows engineers and scientists to analyze a wide range of fluid mechanics problems, thermal and chemical problems numerically using a computer. Azore can simulate a wide range of fluid dynamics situations, including air, liquids, gases, and particulate-laden flow. Azore is commonly used to model the flow of liquids through a piping or evaluate water velocity profiles around submerged items. Azore can also analyze the flow of gases or air, such as simulating ambient air velocity profiles as they pass around buildings, or investigating the flow, heat transfer, and mechanical equipment inside a room. Azore CFD is able to simulate virtually any incompressible fluid flow model. This includes problems involving conjugate heat transfer, species transport, and steady-state or transient fluid flows.
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Ansys Rocky
Ansys Rocky is an advanced discrete element method simulation solution designed to help engineers accurately model particle behavior in complex industrial processes. The software specializes in analyzing granular materials and particle interactions using highly realistic representations of particle shapes, sizes, and physical properties. With multi-GPU acceleration, Ansys Rocky can process large particle counts efficiently, allowing users to tackle computationally demanding simulations with faster turnaround times. The platform supports sophisticated physics models, including wear analysis, particle breakage, cohesion effects, fluid-particle interactions, and multiphysics simulations. Integration with Ansys Fluent and other engineering tools enables users to combine DEM, CFD, and structural analysis for deeper insight into system performance. Engineers can import 3D scans, simulate non-spherical particles, and model fibers and shell-based materials with high accuracy. The software is used in industries such as manufacturing, mining, pharmaceuticals, agriculture, energy, and consumer products where particle flow behavior plays a critical role. Automation and scripting capabilities help streamline workflows and reduce manual setup effort. By providing detailed insight into particle dynamics and equipment interactions, Ansys Rocky supports better engineering decisions and faster product innovation.
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MercuryDPM
MercuryDPM is an open-source software designed for conducting discrete particle simulations, enabling the analysis of particle or atom movement through the application of forces and torques from external influences, such as gravitational and magnetic fields, as well as from laws governing particle interactions. In the context of granular particles, these interactions predominantly consist of contact forces, which can include elastic, plastic, viscous, and frictional effects, while molecular simulations may utilize interaction potentials like Lennard-Jones. This software is developed in a robust, object-oriented C++ framework, emphasizing clarity, flexibility, and extensibility to accommodate the needs of researchers and engineers tasked with developing new simulation models. Although primarily focused on granular material applications, MercuryDPM is designed to be versatile enough to handle various particle-based systems and accommodate long-range interaction scenarios. Users are supported by comprehensive documentation that walks them through the processes of installation, executing simulations, visualizing results, analyzing data, and creating custom MercuryDPM codes tailored to simulate their specific systems of interest. Overall, MercuryDPM represents a valuable tool for advancing the understanding of particle dynamics across a range of scientific fields.
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