IP Library Granted Patent US 11,143,449
Granted Patent B2
US 11,143,449 · App. 12/858,228 · Granted Oct 12, 2021

Method for dehumidifying a refrigeration system

Inventor: Morten Nylykke (Graasten, DK)
Assignee: MAERSK CONTAINER INDUSTRY A/S
F25D17/042F25B2700/02F25B2700/2117F25D2317/0411F25D2317/04131F25D2400/02
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Quick Facts
Patent No.
US 11,143,449
App. No.
12/858,228
Granted
Oct 12, 2021
Kind
B2
Abstract

A method for dehumidifying a refrigeration system especially to dehumidify a refrigerated transporting container is disclosed. The refrigeration system includes a refrigeration circuit including an evaporator, a compressor, an expansion valve and a condenser. The refrigeration system also includes a control unit and a cooling space, the evaporator is placed in the cooling space and air blows over the evaporator to be cooled down. The dehumidification method is stepwise, and the method includes a dehumidification mode and a re-establish mode. During the dehumidifying process the system shifts between the dehumidification mode and a re-establish mode stepwise dehumidifying the air in the container in such a way that the measured parameters especially the compartment temperature stays within acceptable limits.

Claims (59)

1. A dehumidification method for a refrigeration system, the refrigeration system comprises a refrigeration circuit, a control unit, a cooling compartment, a target air temperature, a target air moisture percentage;

wherein the refrigeration circuit comprises:

a compressor,

an expansion valve,

a condenser,

an evaporator;

wherein the cooling compartment comprises a cooling space for cooling air, which is separated from the rest of the cooling compartment and which defines an air flow channel for providing cooled air into the cooling compartment, the cooling space comprising:

means to blow air through the cooling space,

the evaporator,

a temperature sensor placed adjacent to the surface of the evaporator,

a moisture sensor arranged upstream of the evaporator,

heating elements arranged downstream of the evaporator;

wherein the control unit determines a first shift condition to shift from a dehumidification mode to a re-establish mode, and a second shift condition to shift from the re-establish mode to the dehumidification mode;

wherein the first shift condition to shift from dehumidification mode to re-establish mode is when an air temperature in the cooling compartment is more than a first preselected non-zero number of degrees Celsius different from the target air temperature; and

the dehumidification method comprising the steps of:

the control unit entering the refrigeration system into the dehumidification mode,

the control unit shifting the refrigeration system to the re-establish mode when the first shift condition is reached,

the control unit shifting the refrigeration system to the dehumidification mode when the second shift condition is reached,

repeating the steps of shifting to the re-establish mode and shifting to the dehumidification mode until the target air moisture percentage is reached;

wherein the dehumidification mode comprises the steps of:

blowing air over the evaporator,

measuring with the moisture sensor an air moisture percentage and air temperature of air blown through the cooling space before the air reaches the evaporator,

determining by the control unit a dew point temperature based on the measured air moisture percentage and air temperature of the air blown through the cooling space,

determining by the control unit a target evaporator surface temperature that is lower than the dew point temperature,

regulating by the control unit the surface temperature of the evaporator by controlling the refrigeration circuit so the surface temperature of the evaporator corresponds to the determined target evaporator surface temperature, and

warming up the air with the heating elements after the air passes over the evaporator; and

wherein, during repeating the steps of shifting to the re-establish mode and shifting to the dehumidification mode until the target air moisture percentage is reached, each target evaporator surface temperature determined by the control unit is lower than the preceding determined target evaporator surface temperature

wherein the second shift condition to shift from re-establish mode to dehumidification mode is that an air temperature in the cooling compartment is less than a second preselected number of degrees Celsius different from the target air temperature, the second preselected number degrees being less than the first preselected numbers of degrees; and

wherein during the re-establish mode the refrigeration system is operated so as to cause the air temperature in the cooling compartment to increase up toward, or decrease down toward the target air temperature.

2. The dehumidification method according to claim 1 , wherein the dehumidification mode further comprises the steps of reducing the amount of refrigerant in the evaporator so the evaporation takes place in the first part of the evaporator.

3. The dehumidification method according to claim 1 , wherein the chosen target evaporator surface temperature is less than 10° C. lower than the dew point temperature.

4. The dehumidification method according to claim 1 , wherein dehumidification starts when the air moisture percentage is higher than a predefined value.

5. The dehumidification method according to claim 1 , wherein dehumidification starts when it is manually activated.

6. The dehumidification method according to claim 1 , wherein defrosting is performed to remove ice from the evaporator, the method comprising the steps of:

turning on the heating elements, and

turning off the means to blow air over the evaporator,

resuming previous operation when the ice is removed from the evaporator and the evaporator temperature T evap is above 20° C.

7. The dehumidification method according to claim 1 , wherein the target air moisture percentage is reached via the control of superheat in the refrigeration system during the dehumidification mode.

8. A dehumidification method for a refrigeration system of a transport container, the refrigeration system comprising a refrigeration circuit, a control unit, a cooling compartment, a target air temperature, and a target air moisture percentage;

wherein the refrigeration circuit comprises a compressor, an expansion valve, a condenser, and an evaporator;

wherein the cooling compartment comprises a cooling space for cooling air, which is separated from the rest of the cooling compartment and which defines an air flow channel for providing cooled air into the cooling compartment, the cooling space comprising means to blow air through the cooling space, the evaporator, a temperature sensor placed adjacent to the surface of the evaporator, a moisture sensor arranged upstream of the evaporator, and heating elements arranged downstream of the evaporator;

wherein the control unit determines a first shift condition to shift from a dehumidification mode to a re-establish mode, and a second shift condition to shift from the re-establish mode to the dehumidification mode;

wherein the first shift condition to shift from dehumidification mode to re-establish mode is when an air temperature in the cooling compartment is more than a first preselected non-zero number of degrees Celsius different from the target air temperature; and

the dehumidification method comprising the steps of:

the control unit entering the refrigeration system into the dehumidification mode,

the control unit shifting the refrigeration system to the re-establish mode when the first shift condition is reached,

the control unit shifting the refrigeration system to the dehumidification mode when the second shift condition is reached,

repeating the steps of shifting to the re-establish mode and shifting to the dehumidification mode until the target air moisture percentage is reached;

wherein the dehumidification mode comprises the steps of:

blowing air over the evaporator,

measuring with the moisture sensor an air moisture percentage and air temperature of air blown through the cooling space before the air reaches the evaporator,

determining by the control unit a dew point temperature based on the measured air moisture percentage and air temperature of the air blown through the cooling space,

determining by the control unit a target evaporator surface temperature that is lower than the dew point temperature,

regulating by the control unit the surface temperature of the evaporator by controlling the refrigeration circuit so the surface temperature of the evaporator corresponds to the determined target evaporator surface temperature, and

warming up the air with the heating elements after the air passes over the evaporator; and

wherein, during repeating the steps of shifting to the re-establish mode and shifting to the dehumidification mode until the target air moisture percentage is reached, each target evaporator surface temperature determined by the control unit is lower than the preceding determined target evaporator surface temperature

wherein the second shift condition to shift from re-establish mode to dehumidification mode is that an air temperature in the cooling compartment is less than a second preselected number of degrees Celsius different from the target air temperature, the second preselected number degrees being less than the first preselected numbers of degrees; and

wherein during the re-establish mode the refrigeration system is operated so as to cause the air temperature in the cooling compartment to increase up toward, or decrease down toward the target air temperature.

9. The dehumidification method according to claim 8 , wherein the target air moisture percentage is reached via the control of superheat in the refrigeration system during the dehumidification mode.

Assignments (2)
CHANGE OF NAME Recorded Jan 7, 2021
From: MAERSK CONTAINER INDUSTRI A/S
To: MAERSK CONTAINER INDUSTRY A/S
Reel/Frame 054923/0235 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2010
From: NYLYKKE, MORTEN
To: MAERSK CONTAINER INDUSTRI A/S
Reel/Frame 025025/0962 →
Priority Claims (1)
DK PA 2009 00944 · Aug 20, 2009 · national
Continuity (1)
Related Publication 20110041539A1 · Feb 24, 2011