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Computational Modeling Simulation Multiphysics Jobs in Kansas

Computational Modeling Simulation Multiphysics information

What is the difference between Computational Modeling Simulation Multiphysics vs Computational Engineer?

AspectComputational Modeling Simulation MultiphysicsComputational Engineer
CredentialsTypically requires degrees in engineering, physics, or related fields; certifications in simulation software are commonSimilar educational background; often holds engineering degrees and software certifications
Work EnvironmentPrimarily in R&D labs, engineering firms, or manufacturing settings focusing on complex simulationsInvolved in product development, software development, or systems design in various industries
Industry UsageUsed in aerospace, automotive, energy, and manufacturing for advanced simulationsApplied across industries for designing, analyzing, and optimizing systems and products

While both roles involve computational skills and engineering principles, Computational Modeling Simulation Multiphysics specializes in complex, multi-physics simulations, whereas Computational Engineer focuses on designing and implementing computational solutions across various engineering projects.

What are the key skills and qualifications needed to thrive as a Computational Modeling Simulation Multiphysics Engineer, and why are they important?

A strong background in physics, engineering, mathematics, and computational science—typically with an advanced degree—is essential for a Computational Modeling Simulation Multiphysics Engineer. Proficiency in simulation software such as ANSYS, COMSOL Multiphysics, MATLAB, and programming languages like Python or C++ is commonly required, along with familiarity with high-performance computing environments. Analytical thinking, problem-solving skills, and effective communication set standout professionals apart in this field. These capabilities enable accurate modeling of complex physical phenomena, efficient collaboration, and successful project outcomes in research and industry settings.

What is computational modeling simulation multiphysics?

Computational modeling simulation multiphysics refers to the use of computer-based models to simulate and analyze systems that involve multiple interacting physical phenomena—such as fluid dynamics, heat transfer, electromagnetics, and structural mechanics—all at once. This approach allows researchers and engineers to predict complex real-world behavior, optimize designs, and reduce the need for expensive prototypes. Multiphysics simulations are widely used in industries like aerospace, automotive, energy, and biomedical engineering, where accurate modeling of coupled physical processes is critical.

What are some common challenges faced by professionals in Computational Modeling Simulation Multiphysics roles, and how can they be addressed?

One of the main challenges in Computational Modeling Simulation Multiphysics roles is managing the complexity of integrating multiple physical phenomena, such as thermal, structural, and fluid dynamics, into a single simulation. This often requires a deep understanding of both the underlying physics and the numerical methods used by simulation software. Collaborating closely with domain experts and maintaining clear communication within multidisciplinary teams can help address these challenges. Additionally, staying updated with advances in simulation tools and best practices through continuous learning is key to overcoming technical hurdles and ensuring accurate results.
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Prinicipal Piping Mechanical Engineer

Deep Fission, Inc

Parsons, KS

Full-time

Posted 18 days ago


Job description

Deep Fission is a nuclear technology company pioneering the development of a revolutionary deep borehole pressurized water reactor. We recently completed a private placement financing and Alternative Public Offering and are now operating as a public company while maintaining our startup agility and innovation focus. With strategic partnerships in place, strong private and public investment, and active engagement with the U.S. Nuclear Regulatory Commission (NRC), we are executing our next phase of growth as we advance our groundbreaking nuclear technology toward commercial deployment.

Job Summary

Deep Fission is seeking a highly skilled Piping Mechanical Engineer to join our engineering team. This role is central to ensuring the structural integrity, thermal performance, and safety of nuclear reactor components and systems through advanced computational modeling and simulation. The Piping Mechanical Engineer will perform complex analyses on piping systems, pressure vessels, and supporting structures, directly contributing to reactor design validation, licensing submittals, and regulatory compliance. This is an outstanding opportunity for an engineer passionate about applying advanced simulation techniques to solve critical challenges in next-generation nuclear energy.

Key Responsibilities and Duties

  • Perform various analyses including stress, fatigue, buckling, seismic, and vibration of piping systems, pressure vessels, heat exchangers and structural supports using classical tools like Mathcad and finite element analysis (FEA) software like ANSYS.
  • Conduct stress, fatigue, fracture mechanics, creep, and buckling analyses in accordance with ASME Boiler and Pressure Vessel Code (BPVC) Section VIII or III and other applicable codes and standards.
  • Perform thermal-hydraulic and coupled multiphysics simulations to evaluate component behavior under normal operating, transient, and accident conditions.
  • Support reactor design efforts by providing analytical justification for material selection, geometry optimization, and design modifications.
  • Prepare detailed analysis reports, calculation packages, and technical documentation suitable for internal design reviews and regulatory submittals.
  • Collaborate with multidisciplinary teams including nuclear engineers, structural engineers, CAD designers, and licensing specialists to integrate FEA results into overall design packages.
  • Develop and maintain analysis procedures, quality assurance documentation, and verification/validation (V&V) protocols for FEA software tools and methodologies.
  • Mentor junior engineers and contribute to the development of the team's FEA capabilities and best practices.

Requirements and Qualifications

  • Bachelor's or Master's degree in Mechanical Engineering, Structural Engineering, or a closely related engineering discipline.
  • Minimum of 5–8 years of professional experience performing piping design and analysis in an engineering environment, with at least 2 years in the nuclear, power generation, aerospace, or similarly regulated industry.
  • Advanced proficiency in one or more FEA software platforms such as ANSYS.
  • Advanced proficiency in one or more piping analysis software platforms such as AutoPIPE.
  • Strong working knowledge of ASME BPVC Section III or Section VIII for nuclear component design and analysis.
  • Strong working knowledge of ASME B31.1 and B31.3 for piping design and analysis.
  • Knowledge of the design, selection, and application of pipe supporting elements.
  • Working knowledge of commercially available piping products and their application.
  • Strong understanding of material properties and behavior under high-temperature, irradiation, and corrosive environments relevant to nuclear applications.
  • Excellent technical writing skills with the ability to produce clear, well-organized analysis reports and calculation packages.
  • Effective communication and collaboration skills for working across multidisciplinary engineering teams.
  • Must be a U.S. citizen or authorized to work in the United States.

Preferred Qualtifiations

  • Direct experience with nuclear piping, pressure vessels, heat exchangers, support structures, or primary system components.
  • Experience with seismic analysis (response spectrum, time-history) for nuclear safety-related structures, systems, and components (SSCs).
  • Experience with computational fluid dynamics (CFD) tools for coupled thermal-hydraulic/structural analyses.
  • Knowledge of probabilistic fracture mechanics and risk-informed analysis methods.
  • Experience developing automated analysis workflows using Python, APDL, or equivalent scripting languages.
  • Familiarity with nuclear quality assurance programs (NQA-1) and configuration management practices.

Our Commitment:

Deep Fission is an equal opportunity employer committed to building a diverse and inclusive workplace. We welcome applicants from all backgrounds who share our passion for advancing clean nuclear energy and creating a sustainable future. We do not discriminate on the basis of race, color, creed, religion, ancestry, age, sex, marital status, national origin, disability, veteran status, or any other characteristic protected by applicable law.