Portable formulating apparatus and system
US-2024299931-A1 · Sep 12, 2024 · US
US9468898B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9468898-B2 |
| Application number | US-201514698999-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 29, 2015 |
| Priority date | May 2, 2014 |
| Publication date | Oct 18, 2016 |
| Grant date | Oct 18, 2016 |
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A reactor and a reaction method are provided with which temperature changes due to a large amount of reaction heat generated immediately after confluence of raw material fluids can be suppressed. A reactor ( 2 ) includes reaction passages ( 22 ) and temperature control passages ( 42 ). Each reaction passage ( 22 ) includes first and second supply passage parts ( 24, 26 ), a confluence part ( 30 ), and a reaction passage part ( 28 ) connected in this order from upstream to downstream. Each temperature control passage ( 42 ) includes: first temperature control passage parts ( 44 ) extending at least along a particular range of the corresponding reaction passage part ( 28 ); and a second temperature control passage part ( 46 ) connected thereto, which is fewer in number than the first temperature control passage parts ( 44 ). Each second temperature control passage part ( 46 ) has a cross section area larger than that of each first temperature control passage part ( 44 ).
Opening claim text (preview).
What is claimed is: 1. A reactor comprising: a reaction passage that is a fine flow passage that allows a plurality of different raw material fluids to react with each other while the raw material fluids are being circulated therethrough; and a temperature control passage that is a fine flow passage that allows a temperature control fluid to be circulated therethrough, the temperature control fluid being used for controlling temperature of the raw material fluids flowing through the reaction passage, wherein the reaction passage includes: a plurality of supply passage parts to which the plurality of the different raw material fluids are introduced, respectively; a confluence part that is connected to downstream-side ends of the plurality of the supply passage parts and allows the plurality of the raw material fluids inflowing from the plurality of the supply passage parts to join; and a reaction passage part that is connected to a downstream side of the confluence part and allows the plurality of the raw material fluids inflowing from the confluence part to react with each other while being circulated therethrough, wherein the temperature control passage includes: a plurality of first temperature control passage parts each of which has a part that extends along at least a particular range from the confluence part to the reaction passage part on the downstream side, in the reaction passage; and a second temperature control passage part that is connected to downstream-side ends of the plurality of the first temperature control passage parts, the number of the second temperature control passage part being smaller than the number of the plurality of the first temperature control passage parts, and wherein an area of a cross section of the second temperature control passage part in a direction perpendicular to a flow direction of the temperature control fluid in the second temperature control passage part is greater than an area of a cross section of each first temperature control passage part in a direction perpendicular to a flow direction of the temperature control fluid in the first temperature control passage part. 2. The reactor according to claim 1 , wherein the area of the cross section of the second temperature control passage part is greater than a sum of the areas of the cross sections of the plurality of the first temperature control passage parts. 3. The reactor according to claim 1 , further comprising: a plurality of reaction passage layers in each of which a plurality of the reaction passages arranged in parallel are provided; and a plurality of temperature control passage layers in each of which a plurality of the temperature control passages arranged in parallel are provided, wherein the reaction passage layers and the temperature control passage layers are alternately stacked. 4. The reactor according to claim 2 , further comprising: a plurality of reaction passage layers in each of which a plurality of the reaction passages arranged in parallel are provided; and a plurality of temperature control passage layers in each of which a plurality of the temperature control passages arranged in parallel are provided, wherein the reaction passage layers and the temperature control passage layers are alternately stacked.
Plurality of plates · CPC title
Reactors comprising multiple separate flow channels · CPC title
Flow · CPC title
placed in parallel · CPC title
Geometry of the plates · CPC title
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