Katsunori Nagano
- Development and application of a new calculation method for double spiral ground heat exchangers. In: Energy and Buildings, v. 291 (July 2023). (2023):
- Field studies on the energy consumption and thermal comfort of a nZEB using radiant ceiling panel and open-loop groundwater heat pump system in a cold region. In: Journal of Building Engineering, v. 67 (May 2023). (2023):
- An inverter-driven heat pump with a multi-tubular tube-in-tube heat exchanger for domestic hot water supply. In: Journal of Building Engineering, v. 54 (August 2022). (2022):
- Life cycle cost analysis of ground source heat pump system based on multilayer thermal response test. In: Energy and Buildings, v. 261 (April 2022). (2022):
- Numerical investigation of the thermal performance of a radiant ceiling cooling panel with segmented concave surfaces. In: Journal of Building Engineering, v. 42 (October 2021). (2021):
- Design and thermal analysis of a new multi-segmented mini channel based radiant ceiling cooling panel. In: Journal of Building Engineering, v. 40 (August 2021). (2021):
- Field measurement of indoor air quality and airborne microbes in a near-zero energy house with an earth tube in the cold region of Japan. In: Science and Technology for the Built Environment, v. 22, n. 7 (September 2016). (2016):
- A study of the energy consumption and airborne microbe concentration in the Sapporo underground walkway, in a cold region of Japan. In: Science and Technology for the Built Environment, v. 22, n. 7 (September 2016). (2016):
- Field performance of a Japanese low energy home relying on renewable energy. In: Energy and Buildings, v. 33, n. 8 (October 2001). (2001):
- Method for calculation of ground temperature in scenario involving multiple ground heat exchangers considering groundwater advection. In: Energy and Buildings, v. 220 (August 2020). (2020):
- Estimation of fast groundwater flow velocity from thermal response test results. In: Energy and Buildings, v. 206 (January 2020). (2020):
- Study on building surface and indoor temperature reducing effect of the natural meso-porous material to moderate the indoor thermal environment. In: Energy and Buildings, v. 191 (May 2019). (2019):
- Experimental study of the performance of porous materials to moderate the roof surface temperature by its evaporative cooling effect. In: Building and Environment, v. 44, n. 2 (February 2009). (2009):