Abstract:
A LED lamp having a good heat-dissipating function includes a thermal radiator of solid metal including a top surface downwardly sloping from a peak point thereof to the border, a plurality of granular bumps raised from the top surface and defining a plurality of flow paths thereamong, a recess curved inwardly from a bottom surface thereof, an eave surrounding the recess and an inner slope located at the inner side of the eave and obliquely upwardly extended from the lowest edge of the eave to the recess, a vapor chamber bonded with the top surface thereof to the bottom surface of the recess, a circuit module bonded with the top surface thereof to the bottom surface of the vapor chamber, and a LED unit mounted at the bottom surface of the circuit module.
Abstract:
A flat loop heat pipe is formed of a first capillary core, a second capillary core, a first support member, and a second support member. The first capillary core and the first support member constitute an evaporation room. The second capillary core and the second support member constitute a compensation room. In light of this structure, it is not difficult to activate circulation of thermal dissipation under low-watt heat source and the first capillary core can avoid dry-out phenomenon.
Abstract:
A quick temperature-equalizing heat-dissipating device includes a hermetic container, a metallic sheet, and two metallic nets. The hermetic container contains a liquid working medium and has an internal top side and an internal bottom side. The metallic sheet is mounted inside the hermetic container, having a plurality of pores running therethrough and a plurality of support pieces protruding outward from its upper and lower surfaces respectively. The two metallic nets are supported by the support pieces to contact against the internal top and bottom sides of the hermetic container. Accordingly, the heat-dissipating device is based on the aforesaid heat-dissipating structure and the principle of working medium liquid phase transition to quickly equally dissipate the high heat flow density of an electronic component.
Abstract:
A planar micro parallel-link mechanism that provides fine planar motion to a platform in two translation directions and one rotation direction using comb-drive actuators with gear chain systems coupled to rack-and-pinions and struts. The micro parallel-link mechanism has a large operating envelope and can be fabricated using surface micromachining techniques. The kinematic and dynamic analyses of the micro parallel-link mechanism are integrated with closed-loop control system to monitor and supervise the position and velocity of the micro mechanism with three degree-of freedom motions. Methods of depositing and building miniaturized tools and parts on the platform are also disclosed to provide the basic building block for a number of products applicable for nano technology, sensor, actuators, and biotechnology applications.
Abstract:
This invention relates to a type of loop heat conducting device, comprising an evaporator and a condenser which are connected together by means of a loop pipe, in order to form a cyclic loop for a liquid working medium, wherein the evaporator has a wick network core, and multiple tunnels are formed on the wick network core, and one end of the tunnels converges at a vapor chamber and is connected to a loop pipe to form a gaseous working medium outlet, and the terminal end of the pipe extends into and comes into contact with the internal part of the wick network core, and a compensation chamber for liquid working medium is formed on the upper section of the wick network core. Consequently, the cyclic loop that separates the gas and liquid enables the optimal heat dissipation capacity, and also has a structure that is simplified, thereby allowing for easy mass production.
Abstract:
A micro heat spreader having an inside vacuum chamber, a bottom recess in the bottom wall thereof, a filling hole formed in the bottom recess in fluid communication with the inside vacuum chamber, a fluid filled into the inside vacuum chamber, and a bronze stopper fastened to the bottom recess to seal the filling hole and maintained in flush with the bottom wall.
Abstract:
The measuring system generates a temperature difference between a heating terminal and a terminal conductive device by setting the temperature of a metal heated block at the heating terminal and the temperature of a heat dissipating water jacket at a heat dissipating terminal, and judges the thermal conductive capability of the thermal conductive device by comparing the cooling speed of the metal heating bock to obtain a relative power value according to the variation of heat quantity of the metal heated block in practical temperature reduction process. The maximum thermal conductive quantity (Qmax value) of the thermal conductive device can be rapidly obtained by parameter conversion with respect to the maximum power value. In the case of confirming the cooling curve (cooling speed) of a standard sample, the object of screening the thermal conductive efficiencies of the thermal conductive devices can be achieved by using the cooling curve.
Abstract:
A method of making a length of heat conduction pipe from a long conduction pipe filled with heat transfer medium in vacuum environment comprises: a material preparation step in which a long heat conduction pipe with predetermined length sealed at both ends is prepared, a squelching and cutting step in which squelching and cutting is conducted on pre-determined point of said long heat conduction pipe in vacuum environment; a sealing step by which the cut end of said long heat conduction pipe is brazed and sealed in vacuum. There also provides an equipment for performing the method.
Abstract:
A heat-dissipating device includes a hermetic container, a metallic sheet, and two metallic nets. The hermetic container contains a liquid working medium and has an internal top side and an internal bottom side. The metallic sheet is mounted inside the hermetic container, having a plurality of pores running therethrough and a plurality of support pieces protruding outward from its upper and lower surfaces respectively. The two metallic nets are supported by the support pieces to contact against the internal top and bottom sides of the hermetic container.
Abstract:
A method of making a length of heat conduction pipe from a long conduction pipe filled with heat transfer medium in vacuum environment comprises: a material preparation step in which a long heat conduction pipe with predetermined length sealed at both ends is prepared, a squelching and cutting step in which squelching and cutting is conducted on pre-determined point of said long heat conduction pipe in vacuum environment; a sealing step by which the cut end of said long heat conduction pipe is brazed and sealed in vacuum. There also provides an equipment for performing the method.