The Role of Substrate Roughness in Superfluid Film Flow Velocity
arXiv:1807.05685 · doi:10.1007/s10909-018-02119-w
Abstract
It is known that the apparent film flow rate of superfluid He increases significantly when the container wall is contaminated by a thin layer of solid air. However, its microscopic mechanism has not yet been clarified enough. We have measured under largely different conditions for the container wall in terms of surface area (0.77-6.15 m) and surface morphology using silver fine powders (particle size: μm) and porous glass (pore size: 0.5, 1 μm). We could increase by more than two orders of magnitude compared to non-treated smooth glass walls, where liquid helium flows down from the bottom of container as a continuous stream rather than discrete drips. By modeling the surface morphology, we estimated the effective perimeter of container and calculated the flow rate , where is the apparent perimeter without considering the microscopic surface structures. The resultant values for the various containers are constant each other within a factor of four, suggesting that the enhancement of plays a major role to change to such a huge extent and that the superfluid critical velocity, , does not change appreciably. The measured temperature dependence of revealed that values in our experiments are determined by the vortex depinning model of Schwarz (Phys. Rev. B , 5782 (1986)) with several nm size pinning sites.