HSBC Security and Fraud Risk, Technology and Service USA
Aug 2014 to 2000 Associate Fraud Prevention SpecialistWalden Ave Depew, NY Apr 2014 to Aug 2014 Contingent Fraud Prevention Operational SpecialistEmbassy Suites Buffalo, NY May 2011 to Apr 2014 Banquet AssociateQualitrol CO LLC Fairport, NY May 2010 to Sep 2010 Assistant shipping & receiving clerk
Education:
State University of New York at Buffalo Buffalo, NY Aug 2008 to May 2012 Bachelor of Art in SociologyMillard Fillmore College Paralegal Studies Certified
An embodiment of a heat exchanger assembly includes a first manifold adapted for receiving a first medium, a core adapted for receiving and placing a plurality of mediums, including the first medium, in at least one heat exchange relationship, and a core meeting the first manifold at a first core/manifold interface; The mounting structure supports a heat exchanger, and is metallurgically joined to at least one heat exchanger assembly component at a first joint integrally formed with the mounting structure.
Manifolding For Monolithic Redundant Loop Cold Plate Utilizing Adjacent Thermal Features
- Charlotte NC, US Jeremy M. Strange - Windsor CT, US Gabriel Ruiz - Broad Brook CT, US
International Classification:
F28D 1/053 F28F 1/04 F28F 1/08
Abstract:
The monolithic redundant loop cold plate core includes a core structure and a first cooling loop formed in the core structure. The first cooling loop including: a plurality of first cooling loop passageways extending across a heat exchanger core in one or more passes. The one or more passes include at least a first pass. The monolithic redundant loop cold plate core includes a second cooling loop formed in the core structure. The second cooling loop includes: a plurality of second cooling loop passageways extending across the heat exchanger core in the one or more passes. The plurality of first cooling loop passageways are intermixed in an alternating side-by-side arrangement with the plurality of second cooling loop passageways in a single cooling plane. The monolithic redundant loop cold plate core is a single piece including a unitary structure.
Monolithic Redundant Loop Cold Plate Core Utilizing Adjacent Thermal Features
- Charlotte NC, US Jeremy M. Strange - Windsor CT, US Gabriel Ruiz - Broad Brook CT, US
International Classification:
H05K 7/20 F28D 9/00
Abstract:
A monolithic redundant loop cold plate core includes a core structure and a first cooling loop formed in the core structure. The first cooling loop including one or more first cooling loop passageways extending across a heat exchanger core in one or more passes. The one or more passes include at least a first pass. The monolithic redundant loop cold plate core includes a second cooling loop formed in the core structure. The second cooling loop including one or more second cooling loop passageways extending across the heat exchanger core in the one or more passes. The one or more first cooling loop passageways are intermixed in an alternating side-by-side arrangement with the one or more second cooling loop passageways in a single cooling plane. The monolithic redundant loop cold plate core is a single piece including a unitary structure.
Heat Exchanger With Interleaved Manifolds And Layered Core
- Charlotte NC, US Gabriel Ruiz - Granby CT, US Nigel G. M. Palmer - West Granby CT, US Jessica M. Blamick - Enfield CT, US
International Classification:
F28D 7/00 F28F 1/04 B33Y 80/00
Abstract:
A heat exchanger includes a core, a first manifold, and a second manifold. The first and second manifolds include a primary fluid channel extending between a fluid port and a first branched region, a plurality of secondary fluid channels fluidly connected to the primary fluid channel at the first branched region, and a first overlap region of the plurality of secondary fluid channels downstream of the first branched region and connected to the core. The plurality of secondary fluid channels are interleaved at the first overlap region such that a first layer of secondary fluid channels of the first manifold forms a first flow layer within the core, a first layer of secondary fluid channels of the second manifold forms a second flow layer within the core, and the first flow layer is adjacent and parallel to the second flow layer.
- Charlotte NC, US Michele Hu - Manchester CT, US Feng Feng - South Windsor CT, US Michael Maynard - Springfield MA, US Michael Doe - Southwick MA, US Gabriel Ruiz - Granby CT, US Ephraim Joseph - South Windsor CT, US
International Classification:
F28D 1/02 F28D 1/047
Abstract:
A core arrangement for a heat exchanger includes a plurality of inlets arranged around an axis, a plurality of outlets arranged around the axis, and a plurality of bowed conduits arranged around the axis. The bowed conduits are structurally independent, connect the plurality of inlets to the plurality of outlets, bow outward from the axis between the plurality of inlets and the plurality of outlets, and provide thermal compliance to the core.
Radially Layered Helical Core Geometry For Heat Exchanger
- Charlotte NC, US Gabriel Ruiz - Granby CT, US Feng Feng - South Windsor CT, US Michael Maynard - Springfield MA, US Michael Doe - Southwick MA, US Michele Hu - Manchester CT, US Ephraim Joseph - South Windsor CT, US
International Classification:
F28D 1/047 F28D 1/053
Abstract:
A heat exchanger includes a first fluid manifold extending along a first fluid axis from a first fluid inlet to a first fluid outlet. The first fluid manifold includes a first fluid inlet header, a first fluid outlet header, and a nested helical core section. The first fluid inlet header is disposed to fork the first fluid inlet into a plurality of first fluid branches distributed circumferentially and radially about the first fluid axis. The first fluid outlet header is disposed to combine the plurality of first fluid branches into the first fluid outlet. The nested helical core section fluidly connects the first fluid inlet header to the first fluid outlet header via a plurality of nested helical tubes, and includes radially inner and outer groups of circumferentially distributed helical tubes.
Rectangular Helical Core Geometry For Heat Exchanger
- Charlotte NC, US Gabriel Ruiz - Granby CT, US Feng Feng - South Windsor CT, US Michael Maynard - Springfield MA, US Michael Doe - Southwick MA, US Michele Hu - Manchester CT, US Ephraim Joseph - South Windsor CT, US
International Classification:
F28D 1/047 F28D 1/02
Abstract:
A heat exchanger includes a first fluid manifold extending along a first fluid axis from a first fluid inlet to a first fluid outlet. The first fluid manifold comprises a inlet header, a outlet header, and a multi-helical core section. The inlet header is disposed to fork the first fluid inlet into a plurality of first fluid branches distributed laterally across a plane normal to the first fluid axis. The outlet header is disposed to combine the plurality of first fluid branches into the first fluid outlet. The multi-helical core section fluidly connects the inlet header to the outlet header via a plurality of laterally distributed helical tubes, each helical tube corresponding to one of the plurality of first fluid branches and oriented parallel to all others of the plurality of helical tubes at each axial location along the first fluid axis.
Cyllindrical Helical Core Geometry For Heat Exchanger
- Charlotte NC, US Gabriel Ruiz - Granby CT, US Feng Feng - South Windsor CT, US Michael Maynard - Springfield MA, US Michael Doe - Southwick MA, US Michele Hu - Manchester CT, US Ephraim Joseph - South Windsor CT, US
International Classification:
F28D 1/047
Abstract:
A heat exchanger includes a first fluid manifold extending along a first fluid axis from a first fluid inlet to a first fluid outlet. The first fluid manifold includes first fluid inlet and outlet headers, and a helical core section. The inlet header is disposed to branch the first fluid inlet into a plurality of first fluid branches, and the outlet header is disposed to combine the plurality of first fluid branches into the first fluid outlet. The core section fluidly connects the inlet header to the outlet header via a plurality of helical tubes, such that each helical tube corresponds to one of the plurality of first fluid branches.
Dr. Ruiz graduated from the Univ Nac De Colombia, Fac De Med, Bogota, Colombia in 1998. He works in Miami, FL and specializes in Traumatic Surgery. Dr. Ruiz is affiliated with Jackson Memorial Hospital and University Of Miami Hospital.
Friends: Susarregui Orvis, Darvelys Olascuagas, Erika Serrano, Carlota GaffaroLuis Gabriel Muoz Ruiz est en Facebook. nete a Facebook para conectarte con Luis Gabriel Muoz Ruiz y otras personas que tal vez conozcas.
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Gabriel Ruiz
Work:
Caesar Business Hotel (2012-2012)
Education:
Instituto Profesional Aiep - Ingeniería en Administración de Empresas, Mención RRHH., Instituto Profesional La Araucana - Técnico en Administración de Recursos Turísticos
About:
Bien, soy un hombre que disfruta de las cosas simples, apasionado con lo que haga, con los objetivos claros en la vida, viviéndola paso a paso. Mi gran amor, la Música, la guitarra y mi canto. Metas p...
Tagline:
''Hoy es un día normal, pero yo voy a hacerlo intenso''
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Logros por mérito propio
Gabriel Ruiz
Work:
American Reprographics Company - Manger (2003)
Education:
San Diego State University - Computer Science
Relationship:
In_a_relationship
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One B.A.M.F
Gabriel Ruiz
Education:
Inacap Osorno - Ingeniero mecanico, Liceo Industrial Osorno - Tecnico mecanico nivel medio, Inacap Osorno - Tecnico mecanico nivel superior