Methods and apparatuses for controlling the harvest cycle of an ice maker using a harvest sensor and a temperature sensor

US10890368B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10890368-B2
Application numberUS-201816001351-A
CountryUS
Kind codeB2
Filing dateJun 6, 2018
Priority dateApr 9, 2015
Publication dateJan 12, 2021
Grant dateJan 12, 2021

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An ice maker for forming ice having a refrigeration system, a water system and a controller. The refrigeration system includes a freeze plate in which ice is formed and a hot gas valve for harvesting the ice therefrom. A harvest sensor is triggered when at least a portion of the ice is harvested from the freeze plate and at least one temperature sensor measures a temperature that indicates that all of the ice has been harvested from the freeze plate. The temperature sensors may include a temperature sensor for measuring the refrigerant temperature at the evaporator outlet, the refrigerant temperature at the evaporator inlet, and/or the temperature of the freeze plate. The controller closes the hot gas valve in response from the triggering of the harvest sensor and the temperature measured by the temperature sensor(s) indicating that all of the ice has been harvested from the freeze plate.

First claim

Opening claim text (preview).

What is claimed: 1. An ice maker for forming ice, the ice maker comprising: (i) a refrigeration system using a refrigerant capable of transitioning between liquid and gaseous states, the refrigeration system comprising: (a) a compressor for pressurizing the refrigerant; (b) a condenser for receiving the pressurized refrigerant and condensing the refrigerant into a substantially liquid refrigerant, wherein the condenser is in fluid communication with the compressor via a discharge line; (c) a thermal expansion valve for converting the high pressure liquid refrigerant leaving the condenser into low pressure liquid refrigerant, wherein the thermal expansion valve is in fluid communication with the condenser via a liquid line; (d) an evaporator for receiving the low pressure liquid refrigerant from the thermal expansion valve and discharging low pressure, substantially gaseous refrigerant via a suction line connected to the compressor; (e) a freeze plate thermally coupled to the evaporator; and (f) a hot gas valve which is adapted to be opened during a harvest cycle to direct warm refrigerant from the compressor to the evaporator through a hot gas bypass line; (ii) a water pump which, during a cooling cycle, pumps water over the freeze plate wherein the water collects in the freeze plate and freezes into ice; (iii) a harvest sensor for detecting ice falling from the freeze plate; (iv) a temperature sensor for measuring a temperature that indicates that all of the ice has been harvested from the freeze plate; and (v) a controller adapted to control the hot gas valve in response to an indication from the harvest sensor of ice falling from the freeze plate and the temperature measured by the temperature sensor indicating that all of the ice has been harvested from the freeze plate; wherein the controller is configured to execute an ice harvest routine in which the controller: opens the hot gas valve; after opening the hot gas valve, receives the indication from the harvest sensor of ice falling from the freeze plate; after receiving the indication from the harvest sensor, receives the indication that the temperature measured by the temperature sensor indicates that all of the ice has been harvested from the freeze plate after receiving the indication from the harvest sensor and until receiving the indication from the temperature sensor, keeps the hot gas valve open; and after receiving the indication from the temperature sensor, closes the hot gas valve. 2. The ice maker of claim 1 , wherein the temperature sensor is adapted to measure the temperature of the refrigerant exiting the evaporator. 3. The ice maker of claim 2 , wherein the controller is adapted to close the hot gas valve when the temperature of the refrigerant exiting the evaporator outlet is greater than or equal to a set temperature. 4. The ice maker of claim 3 , wherein the set temperature is stored in the controller. 5. The ice maker of claim 1 , further comprising a temperature sensor adapted to measure the temperature of the refrigerant entering the evaporator. 6. The ice maker of claim 5 , wherein the controller is adapted to close the hot gas valve when the temperature of the refrigerant exiting the evaporator outlet is equal to the temperature of the refrigerant entering the evaporator. 7. The ice maker of claim 1 , wherein the temperature sensor is adapted to measure the temperature of the freeze plate. 8. The ice maker of claim 7 , wherein the controller is adapted to close the hot gas valve when the temperature of the freeze plate is greater than or equal to a set temperature. 9. The ice maker of claim 8 , wherein the set temperature is stored in the controller. 10. The ice maker of claim 1 , wherein the ice maker further comprises a timer, and wherein the timer is adapted to be started when the hot gas valve is opened and wherein the controller is adapted to close the hot gas valve in the event the timer meets or exceeds a maximum harvest time. 11. An ice maker for forming ice, the ice maker comprising: (i) a refrigeration system comprising a compressor, a condenser, an evaporator, a freeze plate thermally coupled to the evaporator, and a hot gas valve, wherein the compressor, condenser, and evaporator are in fluid communication by one or more refrigerant lines, and wherein a refrigerant cycles through the refrigerant lines; (ii) a water system for supplying water to the freeze plate wherein the water collects in the freeze plate and freezes into ice; (iii) a harvest sensor for detecting ice falling from the freeze plate; (iv) a temperature sensor for measuring a temperature that indicates that all of the ice has been harvested from the freeze plate; and (v) a controller adapted to control the hot gas valve in response to an indication from the harvest sensor of ice falling from the freeze plate and the temperature measured by the temperature sensor indicating that all of the ice has been harvested from the freeze plate; wherein the controller is configured to execute an ice harvest routine in which the controller: opens the hot gas valve; after opening the hot gas valve, receives the indication from the harvest sensor of ice falling from the freeze plate; after receiving the indication from the harvest sensor, receives the indication that the temperature measured by the temperature sensor indicates that all of the ice has been harvested from the freeze plate after receiving the indication from the harvest sensor and until receiving the indication from the temperature sensor, keeps the hot gas valve open; and after receiving the indication from the temperature sensor, closes the hot gas valve. 12. A method of controlling the harvesting of ice from an ice maker, the ice maker ice maker comprising: (i) a refrigeration system comprising a compressor, a condenser, an evaporator, a freeze plate thermally coupled to the evaporator, and a hot gas valve, wherein the compressor, condenser, and evaporator are in fluid communication by one or more refrigerant lines, and wherein a refrigerant cycles through the refrigerant lines; (ii) a water system for supplying water to the freeze plate wherein the water collects in the freeze plate and freezes into ice; (iii) a harvest sensor for detecting ice falling from the freeze plate; (iv) a temperature sensor for measuring a temperature that indicates that all of the ice has been harvested from the freeze plate; and (v) a controller adapted to close the hot gas valve when all of the ice has been harvested from the freeze plate based on inputs from the harvest sensor and the temperature sensor, the method comprising: opening the hot gas valve to start harvesting ice from the freeze plate; receiving by the controller from the harvest sensor an indication of ice falling from the freeze plate; after receiving by the controller from the harvest sensor the indication of ice failing from the freeze plate, receiving by the controller a temperature measurement from the temperature sensor indicating that all of the ice has been harvested from the freeze plate after receiving by the controller from the harvest sensor the indication of ice falling from the freeze plate; after receiving by the controller from the harvest sensor the indication of ice falling and until receiving by the controller the temperature measurement from the temperature sensor indicating that all of the ice has been harvested, keeping the hot gas valve open; and after receiving by the controller the temperature measurement from the temperature sensor indicating that all of the ice has been harvested, closing the hot gas valve to terminate the harvesting of ice from the freeze.

Assignees

Inventors

Classifications

  • F25B49/02Primary

    for compression type machines, plants or systems · CPC title

  • with the valve member being actuated by electric means, e.g. by piezoelectric actuators · CPC title

  • Bypass valves · CPC title

  • F25C5/10Primary

    using hot refrigerant; using fluid heated by refrigerant · CPC title

  • of the refrigerant at the inlet of the evaporator · CPC title

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What does patent US10890368B2 cover?
An ice maker for forming ice having a refrigeration system, a water system and a controller. The refrigeration system includes a freeze plate in which ice is formed and a hot gas valve for harvesting the ice therefrom. A harvest sensor is triggered when at least a portion of the ice is harvested from the freeze plate and at least one temperature sensor measures a temperature that indicates that…
Who is the assignee on this patent?
True Mfg Co Inc
What technology area does this patent fall under?
Primary CPC classification F25B49/02. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Jan 12 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).