System-Fit™ Engineering is VarStec’s application-first approach to medium-voltage reactive power systems. Rather than forcing a standard product onto the project, VarStec starts with the actual electrical system and the needs of the EPC. Because more than one solution may be technically suitable, the final design must also reflect project priorities such as equipment cost, operating cost, maintenance, and reliability. This page answers frequently asked questions about VarStec’s System-Fit™ Engineering approach for medium-voltage reactive power systems.

Technical Q&A

System-Fit™ Engineering means developing the reactive power solution around the actual requirements of the power system instead of forcing the application to fit a standard design. At VarStec, this means:

  • avoiding rule-of-thumb engineering,
  • avoiding assumptions based on what worked on previous projects,
  • avoiding one-size-fits-all product approaches.

Instead, VarStec develops each solution based on the specific needs of the project, including:

  • performance objectives,
  • system conditions,
  • operating requirements,
  • project constraints.

From there, VarStec engineers the complete solution to fit the application, including:

  • equipment topology,
  • ratings,
  • switching arrangement,
  • protection,
  • controls,
  • physical construction.

Where more than one technically valid approach exists, the final design is also aligned with project priorities such as:

  • equipment cost,
  • operating cost,
  • maintenance,

System-Fit™ Engineering is important because successful application depends on more than kvar. It also requires the right switching duty, grounding, stage sizing, protection, and control for the specific system. This applies to capacitor banks, harmonic filters, motor starting systems, and hybrid VAR solutions. Poor system fit can lead to performance issues, protection problems, and unnecessary cost.

VarStec evaluates the factors that matter most to the specific application because a System-Fit™ design must be matched to the actual power system, project requirements, and operating objectives. Depending on the project, this may include:

  • Power system characteristics and performance goals, including system voltage, short-circuit strength, harmonic conditions, power factor and voltage support objectives, voltage sag limits, motor starting requirements, and switching duty.
  • Equipment design and operating requirements, including grounding method, protection philosophy, stage sizing, control strategy, plant load profile, contingency operation, and long-term operating goals.
  • Future requirements, including plant expansion, changing power delivery needs, and designs that allow future conversion, such as a capacitor bank that is filter-ready if nonlinear loads may be added later.
  • Site conditions, including elevation, ambient temperature, corrosive atmospheres, dust, moisture, seismic requirements, and space limitations.
  • Communication and integration requirements, including SCADA, PLC, DCS, remote monitoring, and required communication protocols.

No. System-Fit™ Engineering applies across VarStec’s product range. It applies to standard power factor correction capacitor banks, harmonic filter banks, MotorVAR™ motor starting systems, and hybrid STATCOM + capacitor bank solutions. The common principle is the same in each case: the equipment must be engineered to the actual electrical duty and project requirements rather than selected as a generic catalog product.

A catalog product starts with a standard design and then asks whether it can be made to work. A System-Fit™ solution starts with the application and engineers the equipment to meet the project’s actual technical, operational, and economic objectives. That may still use proven standard components, but the overall solution is configured and integrated to fit the job.

System-Fit™ Engineering applies to harmonic filter projects by focusing first on what the filter must accomplish, not just on kvar. Project objectives may include:

  • harmonic current absorption,
  • resonance damping or prevention,
  • reactive power support.

Those objectives determine the appropriate:

  • filter topology,
  • tuning point,
  • damping,
  • component ratings.
  • Number of branches

This approach ensures the filter is engineered around the actual harmonic environment, system conditions, and plant performance requirements, rather than being treated as a standard capacitor bank with a reactor added.

System-Fit™ Engineering applies to motor starting applications because optimum MotorVAR™ sizing is not a one-size-fits-all kvar selection. It requires evaluation of:

  • the motor and connected load,
  • source impedance,
  • voltage sag limits,
  • Inrush current limits
  • starting torque.

In hybrid applications, the right solution depends on the dynamic VAR requirement, steady-state VAR requirement, switching characteristics, overload envelope, and overall system goals. VarStec’s hybrid material explains that the STATCOM provides the fast dynamic VARs while the capacitor bank provides the bulk slower VARs once switched in. The proper hybrid design is therefore application-specific, and the value of the concept comes from configuring the system for the best technical and economic result rather than defaulting to a fully rated STATCOM.

VarStec works with EPCs as early as the pre-feasibility (PFS) or feasibility (FS) stage to help define the technical details that matter most to the final design. By explaining the engineering reasoning behind a recommendation—rather than asking an EPC to “blindly trust” a vendor—we reduce application risk and ensure the equipment is properly specified for the tender process.

Yes. The goal of System-Fit™ Engineering is to avoid both under-design (which leads to failure) and unnecessary over-design (which leads to wasted capital). By identifying when a standard capacitor bank is sufficient versus when a Filter-Ready bank or a Hybrid STATCOM solution is required, we ensure the most cost-effective technical fit for the project’s lifecycle.

Related Technical Topics

VarStec’s System-Fit™ Engineering Approach

VarStec applies practical engineering experience and standards-based design to develop medium-voltage reactive power systems that are properly matched to the application. Our work starts with understanding what the system must actually do, then selecting and integrating the right topology, ratings, switching method, protection, controls, and physical design to achieve that objective. The result is equipment matched to your needs.