Abstract:
A selector includes a lever guide, an operating lever, and a stopper. The lever guide has first and second movable-path slits therein. The first movable-path slit extends from a first position to a second position along a first direction. The second movable-path slit extends along a second direction different from the first direction as to intersect the first movable-path slit at an intersection position. The second movable-path includes a third position. The operating lever is movable in along the first and second movable-path slits. The operating lever is configured to move to the first position through the first and second movable-path slits. The stopper slides and contacts the operating lever when the operating lever moves from the third position to the first position. The stopper slides and contacts the operating lever when the operating lever moves from the first position to the third position. The stopper opens and closes an opening-and-closing target path out of the first movable-path slit between the second position and the intersection position in conjunction with a movement of the operating lever.
Abstract:
A heat storage device includes: a heat storage material that absorbs or release latent heat with a phase transition between a liquid phase and a solid phase; and a heat conduction member that includes a contact surface contacting the heat storage material. The heat conduction member has a thermal conductivity higher than a thermal conductivity of the heat storage material. The contact surface includes an upstream region and a downstream region that is located at downstream side of the upstream region in a flowing direction of a heat medium. A wettability of the contact surface with respect to the heat storage material is higher in the downstream region than in the upstream region.
Abstract:
A connection device includes: a first substrate; a second substrate located above the first substrate and disposed opposite to the first substrate; a protrusion provided on an upper surface of the first substrate and protruding from the first substrate toward the second substrate; a first terminal provided on the protrusion; and a second terminal provided on a lower surface of the second substrate and disposed opposite to the first terminal. The first terminal includes a first connector and a second connector, and the first connector and the second connector are electrically joined together. The second terminal includes: a third connector that contacts the first connector; and a fourth connector that contacts the second connector, and the third connector and the fourth connector are electrically joined together. The third connector is located above the first connector. The second connector is located between a first side surface of the protrusion and the fourth connector. The third connector has elasticity and presses against the first connector. The fourth connector has elasticity and presses against the second connector.
Abstract:
A method for forming a crystal nucleus in a latent heat storage material contains a solvent and a dissolved substance. The solvent contains water as the main ingredient. The latent heat storage material retains latent heat in a supercooled state. The method includes: (a) separating out an anhydride of the dissolved substance by heating or cooling part of the latent heat storage material in the supercooled state; and (b) supplying a droplet comprising water to the anhydride, to terminate the supercooled state of the latent heat storage material, and make the latent heat storage material dissipate heat.
Abstract:
A heat storage device includes a pair of electrodes; an alternating-current power source that applies an alternating-current voltage to the pair of electrodes; and a latent heat storage material that is disposed between the pair of electrodes, a supercooled state of the latent heat storage material being maintained by the alternating-current voltage.