OIL QUALITY SENSOR AND ADAPTER FOR DEEP FRYERS
20190383781 ยท 2019-12-19
Inventors
- Martin BEHLE (Remscheid, DE)
- Jan CLAESSON (Land O'Lakes, FL, US)
- Janice M.K. JAFERIAN (Palm Harbor, FL, US)
Cpc classification
G01R27/26
PHYSICS
G01R27/02
PHYSICS
A47J37/1266
HUMAN NECESSITIES
G01N21/534
PHYSICS
International classification
G01R27/26
PHYSICS
Abstract
A system for measuring the state of degradation of cooking oil or fat includes at least one fryer pot. A conduit is fluidly connected to the fryer pot for transporting cooking oil from the fryer pot and returning the cooking oil back to the fryer pot. A pump is provided for re-circulating cooking oil to and from the fryer pot. A sensor is disposed in fluid communication with the conduit and measures an electrical property of the cooking oil as the cooking oil flows past the sensor and is returned to the at least one fryer pot.
Claims
1. A system for measuring the state of degradation of deep fryer cooking oils or fats in a deep fryer comprising: at least one fryer pot; at least one conduit in fluid communication with said at least one fryer pot for transporting said deep fryer cooking oil from said at least one fryer pot and/or returning said deep fryer cooking oil back to said at least one fryer pot; and an oil quality sensor that is in fluid communication with said conduit to measure an electrical property of said deep fryer cooking oil when it is external to said at least one fryer pot and as said deep fryer cooking oil flows past or comes into contact with said oil quality sensor.
2. The system of claim 1, wherein said oil quality sensor is a capacitance sensor, a coaxial sensor, a conductivity sensor or a resonant sensor.
3. The system of claim 1, further comprising a filtration unit, wherein said filtration unit is disposed in-line with said conduit.
4. The system of claim 1, wherein said conduit comprises a single pipe that drains said deep fryer cooking oil from said at least one fryer pot and returns said deep fryer cooking oil to said at least one fryer pot via said single pipe.
5. The system of claim 1, wherein said sensor is disposed in an adapter that is connected to either said return pipe or said drain pipe.
6. The system of claim 1, further comprising at least one pump for re-circulating said deep fryer cooking oil from and to said at least one fryer pot, and wherein said pump is disposed either upstream or downstream of said sensor and said at least one fryer pot to pump said cooking oil past said sensor to said at least one fryer pot.
7. The system of claim 5, wherein said oil quality sensor is disposed on a support surface contained within said adapter.
8. The system of claim 5, further comprising a connector in electrical communication with said oil quality sensor that extends from said adapter for connection to a controller and measurement electronics.
9. The system of claim 1, further comprising an indicator operatively connected to said oil quality sensor to provide an indication when said electrical property of said deep fryer cooking oil exceeds a predetermined threshold, and, optionally, wherein said indicator is a display or an alarm.
10. The system of claim 9, wherein said alarm is an audible or visible alarm.
11. The system of claim 9, wherein said display is on a display panel and shows measurements relating to degradation of said cooking oil.
12. The system of claim 10, wherein said visible alarm is color-coded to indicate a level of acceptability of said electrical property of said cooking oil.
13. The system of claim 12, wherein a color provided by said visible alarm indicates when said cooking oil needs replacement.
14. The system of claim 9, wherein said alarm comprises a staged alarm according to different values of degradation of said cooking oil.
15. A system for measuring the state of degradation of deep fryer cooking oil in a deep fryer comprising: at least one fryer pot; at least one conduit in fluid communication with said at least one fryer pot for carrying deep fryer cooking oil from said at least one fryer pot through a filtration unit back to said at least one fryer pot; and an oil quality sensor disposed between said filtration unit and said at least one fryer pot for measuring said deep fryer cooking oil when it is external to said at least one fryer pot and after said deep fryer cooking oil has been filtered by said filtration unit, said oil quality sensor being in fluid communication with said at least one conduit for measuring an electrical property of said deep fryer cooking oil, after said deep fryer cooking oil is pumped through said filtration unit.
16. The system of claim 15, wherein said oil quality sensor is disposed in an adapter that is connected to said conduit.
17. The system of claim 15, further comprising a pump, wherein said pump is disposed between said oil quality sensor and said at least one fryer pot to pump said cooking oil from said filtration unit to said at least one fryer pot.
18. A device for installation in a deep fryer for measuring the state of degradation of deep fryer cooking oil in at least one fryer pot comprising: an oil quality sensor disposed in a conduit with flowing deep fryer cooking oil to measure and sample an electrical property of said deep fryer cooking oil that is indicative of total polar materials of said deep fryer cooking oil; and a controller and measurement electronics operatively connected to said oil quality sensor to provide measurements and to calculate and average values of said total polar materials during return of said deep fryer cooking oil to said at least one fryer pot.
19. The device of claim 18, wherein said oil quality sensor is at least one selected from the group consisting of: a capacitance sensor, a coaxial sensor, a conductive sensor, and a resonant sensor.
20. A system for measuring the state of degradation of deep fryer cooking oils in a deep fryer comprising: a plurality of fryer pots, a filtration loop comprising a filter pan and drain plumbing that collects said deep fryer cooking oil that has been used for frying from said plurality of fryer pots and a return conduit that returns said deep fryer cooking oil to each of said plurality of fryer pots after said deep fryer cooking oil has been filtered; a pump for re-circulating said deep fryer cooking oil through said filtration loop to and from said plurality of fryer pots; and an oil quality sensor external to said plurality of fryer pots and disposed in fluid communication with said deep fryer cooking oil to measure an electrical property that is indicative of total polar materials of said deep fryer cooking oil as said deep fryer cooking oil flows past said oil quality sensor and is returned to said plurality of fryer pots, wherein said drain plumbing comprises at least one drain pipe associated with each of said fryer pots, wherein said drain pipe transports said deep fryer cooking oil from said plurality of fryer pots, and wherein said return conduit returns said deep fryer cooking oil to each of said plurality of fryer pots, and wherein said oil quality sensor is disposed in said return pipe between said filter pan and a return valve and measures said electrical property of said deep fryer cooking oil before said deep fryer cooking oil is returned to said plurality of fryer pots.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0018] Other and further benefits, advantages and features of the present disclosure will be understood by reference to the following specification in conjunction with the accompanying drawings, in which like reference characters denote like elements of structure.
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[0020]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0027] Referring to
[0028] Referring to
[0029] Referring again to
[0030] Referring to
[0031] Referring to
[0032] Referring to
[0033] Referring to
[0034] Oil sensor 100 is located in an adapter 105 in the filtration loop of fryer pot 15 as shown in
[0035] Oil sensor 100 is operatively connected to measurement electronics 44 and controller 20 of fryer 10 via plugs 110. Electronics 44 and controller 20 enable periodic measurements made by sensor 100 for calculation of TPM values are averaged before oil 75 returns to fryer pot 15.
[0036] Referring to
[0037] Prior to measurements, sensor 100 achieves operational temperatures by being in the flow of quickly moving cooking oil 75 caused by pump returning oil to fryer pot 15. The quickly flowing cooking oil 75 also acts as a scrubber to clean sensor front 106 and sensor back 107 as it passes thereby to be returned to fryer pot 15. Sensor 100 must be clean to provide accurate measurements of oil capacitance and an indication of when oil must be changed. Sensor 100 must be properly positioned such that sensor front 106 and sensor back 107 are cleaned. Thus, sensor 100 and support surface 115 on which sensor 100 is disposed are, optimally positioned/angled to take advantage of the approaching flow of oil 75 that is flowing through or in-line with both portions 71 and 72 of return pipe 70. The placement angle 130 of approximately 20 to 50 relative to the direction of oil flow shown by centerline or longitudinal axis of pipe 70 having portions 71 and 72 and adapter 105 ensures that the oncoming filtered cooking oil will clean sensor front 106. Sensor 100 is cleaned by the impulse of the flow on the high pressure side in front of sensor 100 and the vortex generation of the low pressure side down-stream of sensor 100. Thus, flow of oil contacts sensor front 106 at an angle of from 20 to 50. Were sensor 100 not properly angled, insufficient cleaning of the sensor front 106 and sensor back 107 would occur and the sensor measurements would be compromised and inaccurate. Additionally, sensor 100 must be clean to enhance the useful life of sensor 100.
[0038] Support surface 115 also includes a temperature sensor 120 proximate sensor 100. Temperature sensor 120 is preferably formed as an electrical resistor. Temperature sensor 120 is connected by electrical leads 103, as sensor 100, for connection to controller 20 and measurement electronics 44. Controller 20 continuously receives signals via amplifier and A/D converter from capacitance sensor 100 and temperature sensor 120, for measurements of oil capacitance and oil temperature. Thus, the dielectric constant of the oil is constantly being measured at various temperatures as oil flows through adapter 105 by sensor 100 at it returns to fryer pot 15. Measurements are provided to display to indicate the actual degree of decomposition of the oil 75, so that operator may know when oil should be changed.
[0039] Sensor 100 repeatedly samples TPM in cooking filtered cooking oil 75, these data are sent to measurement electronics 44 and controller 20 via cable 104 and connector 110. The measurements are averaged over the duration of the return of filtered cooking oil 75 to fryer pots 15. Thus, the calculated averaged value of the TPMs can be calculated and compared to known accurate values to detect the dielectric constant of the cooking oil. Controller 20 is capable of storing acceptable dielectric values of clean cooking oil for comparison to the measured values. Should the dielectric constant of filtered cooking oil 75 exceed a predetermined threshold, an indicator, such as an audible or visible alarm, is engaged. Additionally, display on display panel 31 shows measurements.
[0040] Optionally, visible alarms can be color-coded to indicate a level of measured dielectric acceptability. For example, a color such as green indicates good quality oil, amber would indicate that oil needs replacement shortly and red would indicate that the oil is of poor quality and needs to be immediately changed.
[0041] The present disclosure having been thus described with particular reference to the preferred forms thereof, it will be obvious that various changes and modifications may be made therein without departing from the spirit and scope of the present disclosure as defined in the appended claims.