Deep-frying oil and/or deep-frying fat sensor for determining a deep-frying oil and/or deep-frying fat quality
11287393 · 2022-03-29
Assignee
Inventors
Cpc classification
A47J37/1266
HUMAN NECESSITIES
International classification
Abstract
A frying oil and/or frying fat sensor (1) for determining a frying oil and/or frying fat quality, having a conductor structure (2) that is fixedly connected, at a proximal end, to an electronics part (5), wherein the conductor structure (2) has an inner conductor (6) and an outer conductor (7) that are arranged coaxially with respect to one another and are both connected fixedly to the electronics part at the proximal end. The inner conductor (6), at at least one free end, is guided so as to be able to move relative to the outer conductor (7) in the axial direction in order to compensate temperature-induced mechanical stresses.
Claims
1. A frying oil and/or frying fat sensor (1) for determining a frying oil and/or frying fat quality, the frying oil and/or frying fat sensor comprising: a conductor structure (2) including an inner conductor (6) and an outer conductor (7) that are arranged coaxially with respect to one another, an electronics part (5) arranged on a proximal end of the conductor structure (3), and the inner conductor (6) is guided so as to be able to move in an axial direction at least at one end thereof to compensate for temperature-induced mechanical stresses.
2. The frying oil and/or frying fat sensor (1) according to claim 1, further comprising a floating support (8), and the inner conductor (6), at the at least one end that is guided for movement in the axial direction, is guided by the floating support (8), which said end being supported only radially.
3. The frying oil and/or frying fat sensor (1) according to claim 1, wherein the inner conductor (6), at a proximal end thereof, is connected to the electronics part (5) in a positionally fixed manner by a fixed support (9) and, at a distal end, is guided for movement in the axial direction.
4. The frying oil and/or frying fat sensor (1) according to claim 1, wherein the frying oil and/or frying fat sensor (1) comprises a capacitive sensor that is configured to measure a capacitance that is dependent on the quality of the oil and/or of the fat, between the inner conductor (6) and the outer conductor (7), wherein the oil and/or the fat is adapted to form a dielectric whose permittivity is dependent on a usage time of the oil and/or of the fat.
5. The frying oil and/or frying fat sensor (1) according to claim 1, further comprising a measurement chamber (13) in which a measurement channel (14) is formed between the outer conductor (7) and the inner conductor (6), said measurement channel is configured such that, when the frying oil and/or frying fat sensor (1) is put into use, the oil and/or fat is adapted to flow through in at least one of a radial or axial direction.
6. The frying oil and/or frying fat sensor (1) according to claim 5, wherein the measurement chamber (13) has an inflow opening (16) and an outflow opening (17), and the measurement chamber (13) is configured such that, when the frying oil and/or frying fat sensor (1) is put into use, the oil and/or fat is adapted to flow through the inflow opening (16) into the measurement channel (14) and exits the measurement chamber (13) at the outflow opening (17).
7. The frying oil and/or frying fat sensor (1) according to claim 1, further comprising a first insulating element (18) on a distal end of the conductor structure (4) and a second insulating element (19) on a proximal end of the conductor structure (3) that electrically separate the outer conductor (7) and the inner conductor (6) from one another.
8. The frying oil and/or frying fat sensor (1) according to claim 7, further comprising a floating support (8) formed by the first insulating element (18) on the distal end of the conductor structure (4).
9. The frying oil and/or frying fat sensor (1) according to claim 7, wherein the first insulating element on the distal end of the conductor structure (4) is made from plastic or ceramic.
10. The frying oil and/or frying fat sensor (1) according to claim 1, wherein a proximal end of the outer conductor (7), is fixedly connected to the electronics part (5) by of a fixed support (9).
11. The frying oil and/or frying fat sensor (1) according to claim 1, wherein the inner conductor (6), at the at least one end that is guided, is guided for movement relative to the outer conductor (7).
12. The frying oil and/or frying fat sensor (1) according to claim 3, wherein the inner conductor (6) tapers to a mandrel (11) in a fixing region (10) of the fixed support (9) and the inner conductor (6) is fixedly connected to the electronics part (5) by a fixing element (12) via the mandrel (11).
13. The frying oil and/or frying fat sensor (1) according to claim 5, wherein an inside diameter of the measurement channel (14), in an inflow direction (15), is wider than an inside diameter, running perpendicular to the inflow direction (15), of the measurement channel (14).
14. The frying oil and/or frying fat sensor (1) according to claim 7, wherein the first insulating element is fixed on the distal end of the outer conductor (7).
15. The frying oil and/or frying fat sensor (1) according to claim 7, wherein the second insulating element on the proximal end of the conductor structure (3) is made from plastic or ceramic.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described in more detail with reference to exemplary embodiments, without however being limited to said exemplary embodiments. Further exemplary embodiments become apparent from the combination of the features of individual or a plurality of claims with one another and/or with individual or a plurality of features of the exemplary embodiments.
(2) In the Figures:
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) The conductor structure 2 has an inner conductor 6 and an outer conductor 7, between which an electric field is able to form. The inner conductor 6 and the outer conductor 7 are arranged inside a measurement chamber 13 formed by a housing of the conductor structure 2. A measurement channel 14 of a measurement capacitor whose capacitance is able to be measured is formed between the inner conductor 6 and the outer conductor 7. The inner conductor 6 and the outer conductor 7 are arranged coaxially with respect to one another, wherein a radial distance between the inner conductor 6 and the outer conductor 7 is constant in the measurement channel 14 and/or is the same size over the course of the entire measurement channel 14.
(9) In the capacitive measurement for determining the oil and/or fat quality, the oil and/or fat forms a dielectric whose permittivity ε.sub.r is dependent on the usage time of the oil and/or of the fat. In this case, the capacitance able to be measured between the inner conductor 6 and the outer conductor 7 changes with increasing usage time, as a result of which it is possible to draw a direct conclusion as to the quality of the oil and/or of the fat.
(10) The inner conductor 6 is guided so as to be able to move in the axial direction on the distal end 4 of the conductor structure 2 in order to be able to compensate temperature-induced mechanical stresses of the conductor material and other components of the frying oil and/or frying fat sensor 1.
(11) A floating support 8 is arranged on the distal end 4 of the conductor structure 2, by way of which floating support a distal end region of the inner conductor 6 is supported only radially, creating only axial mobility of the inner conductor 6. In this case, the inner conductor 6 is also guided so as to be able to move relative to the outer conductor 7 in the axial direction. It is thereby possible to avoid tensions of the inner conductor material caused by temperature-induced material changes, which may lead to the measured capacitance changing even though the quality of the oil and/or of the fat remains the same, since the distance between the capacitor electrodes, that is to say between the inner conductor 6 and the outer conductor 7, changes. As a result, the diameter of the measurement channel 14, even in the case of high temperatures above 200° C., remains constant over the entire length of the measurement channel 14.
(12)
(13) As already mentioned above and illustrated in
(14) The inner conductor 6 has a round cross section. The outer conductor 7 has a hollow cylindrical cross section, the inner wall of which is arranged at a constant distance from an outer wall of the inner conductor 6.
(15)
(16) An insulating element 19 is arranged on the proximal end 3 of the conductor structure 2, as illustrated in
(17) A further insulating element 18 is arranged on the distal end 4 of the conductor structure 2, which further insulating element is fixedly connected to the outer conductor 7. The insulating element 18 forms the floating support 8, in which a distal end section of the inner conductor 6 is guided so as to be able to move axially. The insulating element 18 is in this case preferably made from plastic, in particular from a thermoplastic and/or an elastomer. It is furthermore likewise conceivable for the insulating element 18 to be manufactured from ceramic, in particular from glass ceramic.
(18) The electronics part 5 has a connection point, designed as a fixed support 9, for the outer conductor 7. The outer conductor 7 is therefore fixedly connected to the electronics part 5 by way of the fixed support 9.
(19) To screen against interfering electric and/or magnetic fields, the inner conductor 6 and/or its electrical connection line is screened with a screening element 21 in the fixing region 10.
(20) To be able to guarantee better stability of the conductor structure 2, it may be expedient for a securing plate 22 to be arranged on the distal end 4, which securing plate externally closes off the conductor structure 2. The securing plate 22 may preferably have a tool engagement region, as a result of which disassembly is possible. As illustrated in
(21) The sealing elements 20 create a seal between the second insulating element 19 and the inner conductor 6 that prevents penetration of oil and/or fat into the electronics part 5 via the fixing region 10.
(22) As illustrated in
LIST OF REFERENCE SIGNS
(23) 1 Frying oil and/or frying fat sensor 2 Conductor structure 3 Proximal end of the conductor structure 4 Distal end of the conductor structure 5 Electronics part 6 Inner conductor 7 Outer conductor 8 Floating support 9 Fixed support 10 Fixing region 11 Mandrel 12 Fixing element 13 Measurement chamber 14 Measurement channel 15 Inflow direction 16 Inflow opening 17 Outflow opening 18 First insulating element 19 Second insulating element 20 Sealing element 21 Screening element 22 Securing plate 23 Temperature probe