Solder paste on demand apparatus
A system and method are presented for producing solder paste having undercooled metallic core-shell particles. In one or more arrangements, the system includes a reconstitution assembly, a dispenser assembly, and a mixer, among other components. The reconstitution assembly is configured to place the cores of the solid core metallic core-shell particles into an undercooled liquid state to form a plurality of undercooled metallic core-shell particles. The dispenser assembly is configured to dispense one or more of a set of available flux components. The mixer assembly is configured to mix the one or more of the set of flux components dispensed by the dispenser assembly with the plurality of undercooled metallic core-shell particles formed by the reconstitution assembly to form a solder paste.
1 . A system for manufacturing solder paste, the system comprising a reconstitution assembly configured to process solid core metallic core-shell particles, having a metallic core in a solid state surrounded by a shell, to place the metallic cores into an undercooled liquid state to form a plurality of undercooled metallic core-shell particles.
2 . The system of claim 1 , wherein the reconstitution assembly is configured to process the solid core metallic core-shell particles to undercool the metallic cores to a degree that the metallic cores are configured to transition into an amorphous metal state.
3 . The system of claim 1 , further comprising:
a set of containers; and
a first transfer mechanism configured to transfer the solid core metallic core-shell particles from one or more of the set of containers to the reconstitution assembly.
4 . The system of claim 3 , further comprising:
a dispenser assembly configured to dispense one or more of a set of flux components.
5 . The system of claim 1 , further comprising a dispenser assembly configured to dispense one or more of a set of flux components.
6 . The system of claim 1 , further comprising:
a dispenser assembly configured to dispense one or more of a set of flux components; and
a process control system is configured to control operation of the reconstitution assembly and the dispenser assembly.
7 . The system of claim 1 , further comprising:
a dispenser assembly configured to dispense one or more of a set of flux components; and
a process control system configured to control operation of the reconstitution assembly and the dispenser assembly to produce the solder paste with one or more characteristics specified by user commands input to the process control system.
8 . The system of claim 7 ,
wherein in response to the user commands, the process control system determines the one or more of the set of flux components and causes the dispenser assembly to dispense the one or more of the set of flux components.
9 . The system of claim 7 ,
wherein in response to the user commands, the process control system selects a type of solid core metallic core-shell particle from a plurality of different types of solid core metallic core-shell particles and causes the reconstitution assembly to form the plurality of undercooled metallic core-shell particles from the selected type of solid core metallic core-shell particle.
10 . The system of claim 7 ,
wherein the one or more characteristics are selected from a group including flow temperature, viscosity, slump, working life, tack, response-to-pause, conductivity, cleanability, and melting temperature.
11 . The system of claim 1 , further comprising a dispenser assembly configured to dispense a plurality of different flux components.
12 . The system of claim 1 , further comprising a dispenser assembly configured to dispense a plurality of different premixed fluxes.
13 . The system of claim 1 , further comprising a dispenser assembly configured to dispense one or more flux components and one or more premixed fluxes.
14 . The system of claim 1 , further comprising a transfer mechanism configured to meter and transfer the plurality of undercooled metallic core-shell particles one at a time.
15 . A method for manufacturing solder paste, comprising:
providing a plurality of solid core metallic core-shell particles, having a shell formed around a metal core; and
transitioning the metal cores of the solid core metallic core-shell particles into an undercooled liquid state to produce undercooled metallic core-shell particles.
16 . The method of claim 15 , further comprising transitioning the metal cores of the solid core metallic core-shell particles into an amorphous metal state.
17 . The method of claim 15 , wherein providing the plurality of solid core metallic core-shell particles includes:
producing a set of metallic core-shell particles with cores in an undercooled liquid state;
allowing cores of the set of metallic core-shell particles to transition to a solid state; and
returning the cores of the set of metallic core-shell particles from the solid state to the undercooled liquid state.
18 . The method of claim 15 , wherein providing the plurality of solid core metallic core-shell particles includes:
producing, at a first location, a set of metallic core-shell particles with cores in an undercooled liquid state;
allowing cores of the set of metallic core-shell particles to transition to a solid state;
shipping the set of metallic core-shell particles with cores in the solid state from the first location to a second location using non-refrigerated transportation; and
returning, at the second location, the cores of the set of metallic core-shell particles from the solid state to the undercooled liquid state.
19 . The method of claim 15 , wherein providing the plurality of solid core metallic core-shell particles includes:
producing a set of metallic core-shell particles with cores in an undercooled liquid state;
allowing cores of the set of metallic core-shell particles to transition to a solid state; and
storing, using non-refrigerated storage, the set of metallic core-shell particles with cores in the solid state.
20 . The method of claim 17 , wherein transitioning the metal cores of the solid core metallic core-shell particles to the undercooled liquid state includes:
heating a set of metallic core-shell particles to a first temperature higher than a melting temperature of cores of the set of metallic core-shell particles; and
cooling the set of metallic core-shell particles to a second temperature below the melting temperature while retaining the cores of the set of metallic core-shell particles in a liquid state.
21 . The method of claim 15 , wherein:
the plurality of solid core metallic core-shell particles are produced at a first location;
the metal cores of the solid core metallic core-shell particles are transitioned to the undercooled liquid state at a second location; and
the method further comprises:
mixing, at the second location, a first amount of the undercooled metallic core-shell particles with a first set of flux components to produce a first solder paste; and
mixing, at the second location, a second amount of the undercooled metallic core-shell particles with a second set of flux components to produce a second solder paste that has characteristics that are different from the first solder paste.
22 . The method of claim 15 , further comprising mixing the undercooled metallic core-shell particles with flux.