# Quasi-Steady Model of a Pumping Kite Power System

**Authors:** Rolf van der Vlugt, Anna Bley, Michael Noom, Roland Schmehl

arXiv: 1705.04133 · 2018-08-24

## TL;DR

This paper introduces a quasi-steady analytical model for a kite power system that predicts energy output over a cycle, including gravity effects, aiding system optimization and economic analysis.

## Contribution

A novel quasi-steady modeling framework that accurately predicts kite power system performance, incorporating gravity effects and suitable for optimization and scaling.

## Key findings

- Model agrees well with experimental data
- Gravity significantly impacts system performance
- Effective for moderate and strong wind conditions

## Abstract

The traction force of a kite can be used to drive a cyclic motion for extracting wind energy from the atmosphere. This paper presents a novel quasi-steady modelling framework for predicting the power generated over a full pumping cycle. The cycle is divided into traction, retraction and transition phases, each described by an individual set of analytic equations. The effect of gravity on the airborne system components is included in the framework. A trade-off is made between modelling accuracy and computation speed such that the model is specifically useful for system optimisation and scaling in economic feasibility studies. Simulation results are compared to experimental measurements of a 20 kW kite power system operated up to a tether length of 720 m. Simulation and experiment agree reasonably well, both for moderate and for strong wind conditions, indicating that the effect of gravity has to be taken into account for a predictive performance simulation.

## Full text

_Full body text omitted from this summary view._ Fetch the complete paper as Markdown: https://tomesphere.com/paper/1705.04133/full.md

## Figures

47 figures with captions in the complete paper: https://tomesphere.com/paper/1705.04133/full.md

## References

43 references — full list in the complete paper: https://tomesphere.com/paper/1705.04133/full.md

---
Source: https://tomesphere.com/paper/1705.04133