IP Library › Granted Patent US 10,570,924
Granted Patent B2
US 10,570,924 · App. 15/612,352 · Granted Feb 25, 2020

Integrated motor compressor for vapor compression refrigeration system

Inventors: Yilmaz Sozer (Hudson, OH); Jerald K. Cohen (Hudson, OH); Iftekhar Hasan (Akron, OH); Tausif Husain (Akron, OH)
Assignee: The University of Akron
F04D29/444F04D17/10F04D25/0653F04D29/284
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Quick Facts
Patent No.
US 10,570,924
App. No.
15/612,352
Granted
Feb 25, 2020
Kind
B2
Abstract

Embodiments provide an integrated motor-compressor assembly including a rotating impeller to compress a fluid passing therethrough, and diffuser vanes radially spaced from the impeller, each of the diffuser vanes including a stator winding therearound, the stator windings being supplied with current to generate sufficient magnetic flux for rotating the impeller. Embodiments provide an integrated motor-compressor assembly including a volute casing housing a rotating impeller to compress a fluid passing therethrough, a stator fixedly positioned in the volute casing proximate to the impeller, the stator including stator poles axially spaced from the impeller, each of the stator poles including a stator winding, the stator windings being supplied with current to generate sufficient axial magnetic flux for rotating the impeller.

Claims (17)

1. An integrated motor-compressor assembly comprising

a volute casing having an inlet, an outlet, and a volute between said inlet and said outlet,

a stator fixedly positioned in said volute casing, said stator having a central opening and a plurality of stator teeth with windings,

a rotating impeller having a plurality of ferromagnetic blades wherein said blades and said stator teeth axially face each other separated by an axial gap thereby achieving an integrated switch reluctance motor,

said stator windings being supplied with current to generate sufficient axial magnetic flux across said axial gap for rotating said impeller to draw a fluid via said inlet, through said central opening and onto said impeller blades to compress said fluid and discharge said fluid through said volute and out said outlet.

2. The assembly of claim 1 , wherein the assembly is devoid of an external motor having a coupling to drive the impeller, the impeller being driven solely by interaction between said stator windings and said impeller.

3. The assembly of claim 1 , further comprising an inverter coupled with said stator windings, said inverter supplying the current to said stator windings.

4. The assembly of claim 3 , further comprising diffuser vanes radially spaced from said impeller, said stator windings being made from magnet wire, cast copper, or cast aluminum, and said impeller including a rotor back iron, said rotor back iron and said diffuser vanes being made from a ferromagnetic material.

5. The assembly of claim 4 , wherein said stator windings are short-pitched winding.

6. The assembly of claim 4 , wherein said stator windings are full-pitched winding.

7. The assembly of claim 4 , further comprising an electronic control system to sequentially switch on the stator windings of successive pairs of said stator poles, thereby leading the rotation of said impeller.

8. The assembly of claim 4 , wherein the assembly is designed based on the following equations:

N S =2N ph N rep

N r =N s −2 N rep

where, N s is the number of stator poles, N r is the number of impeller blades, N ph is the number of phases for the stator windings, and N rep is the number of repetitions.

9. The assembly of claim 4 , wherein the stator windings are controlled via an H-bridge converter per phase.

10. The assembly of claim 4 , wherein the assembly is devoid of an external motor having a coupling to drive the impeller, the impeller being driven solely by interaction between said stator windings and said impeller blades.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded Mar 16, 2021
From: CHANDY, ABHILASH; TAKADDUS, AHMED TASNUB
To: THE UNIVERSITY OF AKRON
Reel/Frame 055603/0622 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 20, 2017
From: SOZER, YILMAZ; DE ABREU-GARCIA, JOSE ALEXIS; CHANDY, ABHILASH J.; HASAN, IFTEKHAR; HUSAIN, TAUSIF; TAKADDUS, AHMED TASNUB; ABD ELMUTALAB, MOHAMAD S.
To: THE UNIVERSITY OF AKRON
Reel/Frame 043051/0340 →
Continuity (2)
Provisional Application 62344588 · Jun 2, 2016
Related Publication 20170350405A1 · Dec 7, 2017