IP Library Granted Patent US 11,879,670
Granted Patent B2
US 11,879,670 · App. 17/143,456 · Granted Jan 23, 2024

Absorption refrigerator

Inventors: Motomi Inagaki (Hamamatsu, JP); Yohsuke Yamada (Hamamatsu, JP)
Assignee: YAZAKI ENERGY SYSTEM CORPORATION
F25B15/06B67D1/0857
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Quick Facts
Patent No.
US 11,879,670
App. No.
17/143,456
Granted
Jan 23, 2024
Kind
B2
Abstract

An absorption refrigerator using a circulation cycle of a regenerator, a condenser, an evaporator, and an absorber includes temperature sensors, a storage unit storing the approximation function for obtaining the second concentration based on second detection results obtained by each of the temperature sensors, a calculation unit to apply the second detection results to the approximation function to obtain the second concentration and a control unit to execute control in accordance with the second concentration. The approximation function is obtained using a response surface method by interpolation or approximation, based on data including first detection results obtained by temperature sensors and first concentrations each corresponding to when each of the first detection results has been obtained.

Claims (39)

1. An absorption refrigerator configured to obtain a cold water by a circulation cycle of a regenerator, a condenser, an evaporator, and an absorber, the absorption refrigerator comprising:

a plurality of temperature sensors provided in the regenerator, the condenser, the evaporator, and the absorber;

a concentrated solution proportional valve configured to guide a concentrated solution obtained via regeneration in the regenerator to a lower part of the absorber without spraying the concentrated solution from an upper part of the absorber;

an anti-freeze valve configured to mix a diluted solution into a refrigerant sprayed from an upper part of the evaporator;

a storage storing an approximation function by which a second concentration of an absorption liquid is obtained, the approximation function being obtained in advance using a response surface method, based on a mass of data including: a plurality of first detection results obtained by each of the plurality of temperature sensors; and a plurality of first concentrations of the absorption liquid each corresponding to when each of the plurality of first detection results has been obtained;

a calculator configured to apply a plurality of second detection results obtained by each of the plurality of temperature sensors to the approximation function in order to obtain the second concentration of the absorption liquid; and

a controller configured to execute control in accordance with the second concentration obtained by the calculator to control an opening degree of the concentrated solution proportional valve and opening and closing of the anti-freeze valve.

2. The absorption refrigerator according to claim 1 ,

wherein the plurality of temperature sensors include:

a first sensor configured to detect a regenerator temperature in the regenerator;

a second sensor configured to detect a cooling water inlet temperature being a temperature of a cooling water on an inlet side of the absorber, the cooling water configured to be supplied to the condenser via the absorber;

a third sensor configured to detect a cooling water outlet temperature being a temperature of the cooling water on an outlet side of the condenser, the cooling water being configured to be supplied to the condenser via the absorber;

a fourth sensor configured to detect a cold water outlet temperature being a temperature of a cold water configured to be supplied from the evaporator to an air conditioner; and

a fifth sensor configured to detect a cold water inlet temperature being a temperature of the cold water returning from the air conditioner to the evaporator,

wherein the calculator is further configured to apply the plurality of second detection results to the approximation function in order to obtain the second concentration of concentrated solution, and

wherein the controller is configured to control, in accordance with the second concentration of the concentrated solution obtained by the calculator, an opening degree of a refrigerant proportional valve configured to control an amount of a refrigerant supplied from the condenser to the evaporator.

3. The absorption refrigerator according to claim 1 ,

wherein the approximation function includes a first function and a second function,

wherein the plurality of temperature sensors include:

a first sensor configured to detect a regenerator temperature in the regenerator;

a second sensor configured to detect a cooling water inlet temperature being a temperature of a cooling water on an inlet side of the absorber, the cooling water being to be supplied to the condenser via the absorber;

a third sensor configured to detect a cooling water outlet temperature being a temperature of the cooling water on an outlet side of the condenser, the cooling water to be supplied to the condenser via the absorber;

a fourth sensor configured to detect a cold water outlet temperature being a temperature of a cold water to be supplied from the evaporator to an air conditioner; and

a fifth sensor configured to detect a cold water inlet temperature being a temperature of the cold water returning from the air conditioner to the evaporator,

wherein the calculator is configured to:

apply the plurality of second detection results to the first function to obtain the second concentration of a concentrated solution; and

apply the plurality of second detection results to the second function to obtain the second concentration of a diluted solution, and

wherein the controller is configured to execute abnormality determination of a circulation amount of the absorption liquid in accordance with a concentration difference between the concentrated solution and the diluted solution obtained by the calculator.

4. An absorption refrigerator configured to obtain a cold water by a circulation cycle of a regenerator, a condenser, an evaporator, and an absorber,

the absorption refrigerator comprising:

a plurality of temperature sensors provided in the regenerator, the condenser, the evaporator, and the absorber;

a concentrated solution proportional valve configured to guide a concentrated solution obtained via regeneration in the regenerator to a lower part of the absorber without spraying the concentrated solution from an upper part of the absorber;

an anti-freeze valve configured to mix a diluted solution into a refrigerant sprayed from an upper part of the evaporator;

a storage storing an approximation function by which a second concentration of an absorption liquid is obtained, the approximation function being obtained in advance using a response surface method, based on a mass of data including: a plurality of first detection results obtained by each of the plurality of temperature sensors; and a plurality of first concentrations of the absorption liquid each corresponding to when each of the plurality of first detection results has been obtained;

a calculator configured to apply a plurality of second detection results obtained by each of the plurality of temperature sensors to the approximation function in order to obtain the second concentration of the absorption liquid; and

a controller configured to execute control in accordance with the second concentration obtained by the calculator,

wherein the approximation function is defined as

CS=α 1 ×f ( x 1 )+α 2 ×f ( x 2 )+α 3 ×f ( x 3 )+α 4 ×f ( x 4 )+ . . . α n ×f ( x n ),

where CS is a concentration of absorption, α 1 to α n are numerical constants, and f(x 1 ) to f(x n ) are functions of the plurality of temperature sensors.

Assignments (2)
CHANGE OF ADDRESS Recorded Jun 5, 2023
From: YAZAKI ENERGY SYSTEM CORPORATION
To: YAZAKI ENERGY SYSTEM CORPORATION
Reel/Frame 063845/0751 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 7, 2021
From: INAGAKI, MOTOMI; YAMADA, YOHSUKE
To: YAZAKI ENERGY SYSTEM CORPORATION
Reel/Frame 054846/0556 →
Priority Claims (1)
JP 2020-009717 · Jan 24, 2020 · national
Continuity (1)
Related Publication 20210231350A1 · Jul 29, 2021