F28D9/02

Plate heat exchanger and heat pump heating and hot water supply system including the plate heat exchanger

In a plate heat exchanger, a bypass passage and a main passage are formed upstream of first passages and second passages between adjacent ones of first heat transfer plates and second heat transfer plates. The bypass passage allows first fluid flowing from an inflow port of the first fluid or second fluid flowing from an inflow port of the second fluid to pass a side farther than a corresponding one of adjacent holes while spreading in a vertical direction in a front view and then flow into an inner fin or a corrugated heat transfer surface. The main passage allows the first fluid flowing from the inflow port of the first fluid or the second fluid flowing from the inflow port of the second fluid to directly flow toward the inner fin or the corrugated heat transfer surface without routing through the bypass passage. A flat space is formed around an entire circumference of each of the adjacent holes, between a circumferential wall and the inner fin or the corrugated heat transfer surface.

TOTAL HEAT EXCHANGE ELEMENT-PURPOSE FLOW CHANNEL PLATE, TOTAL HEAT EXCHANGE ELEMENT, TOTAL HEAT EXCHANGE VENTILATOR, AND TOTAL HEAT EXCHANGE ELEMENT-PURPOSE FLOW CHANNEL PLATE MANUFACTURING METHOD

A total heat exchange element-purpose flow channel plate is formed from a resin composition having heat conductivity and moisture permeability, containing at least one base material of a first base material and a second base material, and a moisture permeable material. The first base material is a polypropylene having a long chain branched hydrocarbon structure. The second base material is a polypropylene with addition of a low-density polyethylene having a branched structure. The moisture permeable material is a block copolymer based on a polyethylene glycol as a raw material.

TOTAL HEAT EXCHANGE ELEMENT-PURPOSE FLOW CHANNEL PLATE, TOTAL HEAT EXCHANGE ELEMENT, TOTAL HEAT EXCHANGE VENTILATOR, AND TOTAL HEAT EXCHANGE ELEMENT-PURPOSE FLOW CHANNEL PLATE MANUFACTURING METHOD

A total heat exchange element-purpose flow channel plate is formed from a resin composition having heat conductivity and moisture permeability, containing at least one base material of a first base material and a second base material, and a moisture permeable material. The first base material is a polypropylene having a long chain branched hydrocarbon structure. The second base material is a polypropylene with addition of a low-density polyethylene having a branched structure. The moisture permeable material is a block copolymer based on a polyethylene glycol as a raw material.

FLOW-PATH STRUCTURE

A flow-path structure through which fluid flows includes: a barrel body through which fluid flows in an inner circumference; and a frame body configured to connect a flow path member, the flow path member being configured to guide the fluid into the barrel body, wherein the frame body has: a ring-shaped frame part configured to be fitted into an outer surface of the barrel body; and an inner engagement portion configured to engage with an inner surface of the barrel body so as to hold a state in which the outer surface of the barrel body is brought into contact with the frame part.

Heat exchanger with sliding aperture valve

An apparatus is provided. The apparatus includes a heat exchanger providing heat transfer between a first medium and a second medium. The apparatus also includes a movable aperture integrated onto a face of the heat exchanger and regulating a flow of the first medium based on a position of the movable aperture. The apparatus further includes an actuator controlling the position of the movable aperture.

Heat exchanger with sliding aperture valve

An apparatus is provided. The apparatus includes a heat exchanger providing heat transfer between a first medium and a second medium. The apparatus also includes a movable aperture integrated onto a face of the heat exchanger and regulating a flow of the first medium based on a position of the movable aperture. The apparatus further includes an actuator controlling the position of the movable aperture.

Air-Oil Heat Exchanger

A heat exchanger includes a plurality of fins arranged as a network and delimiting corridors, and an envelope having an internal wall and an external wall, the internal and external walls delimiting between them a channel for a flow of a first fluid in a main direction, the network of fins being arranged in the channel and connected to the internal and external walls, at least one passage for a flow of a second fluid being embedded in at least one of the internal and external walls, the channel being, in the main direction, divergent and then convergent.

Methods and systems for a heat exchanger
10746484 · 2020-08-18 · ·

Methods and systems are provided for a heat exchanger. In one example, a method may include adjusting a flap to adjust a number of conduits configured to receive exhaust gas recirculate and exhaust gas within the heat exchanger.

Heat exchanger including furcating unit cells

A heat exchanger includes a core defining a first passageway configured for a first fluid to flow through and a second passageway configured for a second fluid to flow through. The core includes a plurality of unit cells coupled together. Each unit cell of the plurality of unit cells includes a sidewall at least partly defining a first passageway portion, a second passageway portion, a plurality of first openings for the first fluid to flow through, and a plurality of second openings for the second fluid to flow through. Each unit cell of the plurality of unit cells is configured to enable the first fluid to combine and divide in the first passageway portion. Each unit cell is further configured to enable the second fluid to combine and divide in the second passageway portion.

Heat exchanger including furcating unit cells

A heat exchanger includes a core defining a first passageway configured for a first fluid to flow through and a second passageway configured for a second fluid to flow through. The core includes a plurality of unit cells coupled together. Each unit cell of the plurality of unit cells includes a sidewall at least partly defining a first passageway portion, a second passageway portion, a plurality of first openings for the first fluid to flow through, and a plurality of second openings for the second fluid to flow through. Each unit cell of the plurality of unit cells is configured to enable the first fluid to combine and divide in the first passageway portion. Each unit cell is further configured to enable the second fluid to combine and divide in the second passageway portion.