In-Line Heating Device
20190150661 · 2019-05-23
Inventors
Cpc classification
F24H1/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H2250/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A47J31/4485
HUMAN NECESSITIES
International classification
A47J31/54
HUMAN NECESSITIES
F24H1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B6/10
ELECTRICITY
Abstract
The invention relates to an in-line heating device (100) for heating a fluid and/or a food product and/or a fluid foam and/or a food foam, the device (100) comprising a heating cartridge (120) and a primary heating unit (110). The heating cartridge (120) comprises an insert (121) made of an electrically conductive material and being inductively heatable by an oscillating magnetic field provided by the primary heating unit (110). The heating cartridge (120) further comprises an inner heating path (124) through which the fluid and/or food product and/or fluid foam and/or food foam circulates. The heating path (124) is arranged inside the insert (121) so that fluid is heated while circulating through the path (124) and before being delivered from the device (100).
The invention further relates to a foaming machine (200) providing a fluid foam and/or a food product foam, the machine being configured to receive an in-line heating device (100) as described. Still further, the invention relates to a system (300) for providing a hot fluid foam and/or a hot food product foam.
Claims
1-16. (canceled)
17. An in-line heating device for heating a fluid and/or a food product and/or a fluid foam and/or a food foam, the device comprising: a primary heating unit; and a heating cartridge comprising: an inner heating path through which the fluid and/or food product and/or fluid foam and/or food foam circulates; a heating insert with an inner shape configuring the inner heating path, wherein the heating insert is made of a thermally conductive material; and an insert made of an electrically conductive material and being inductively heatable by an oscillating magnetic field provided by the primary heating unit, and wherein the insert is configured as a sleeve surrounding the outer periphery of the heating insert; and wherein the inner heating path is arranged inside the insert so that fluid is heated while circulating through the path and before being delivered from the device.
18. The in-line heating device of claim 17, wherein the heating provided depends on the distance between the primary heating unit and the insert.
19. The in-line heating device of claim 17, wherein the primary heating unit and the insert are distanced by a separated heating space of a dimension allowing that the insert is at least partially positioned inside the magnetic field generated by the primary heating unit.
20. The in-line heating device of claim 17, wherein the primary heating unit comprises a primary induction coil.
21. The in-line heating device of claim 17, wherein the heating cartridge is removable from the rest of the device.
22. The in-line heating device of claim 17, wherein the heating cartridge is configured having an external cylindrical shape, the insert being configured as a cylindrical sleeve matching the external shape of the cartridge.
23. The in-line heating device of claim 17, wherein the heating insert is made of aluminum.
24. An in-line heating device for heating a fluid and/or a food product and/or a fluid foam and/or a food foam, the device comprising: a primary heating unit; and a heating cartridge comprising: an inner heating path through which the fluid and/or food product and/or fluid foam and/or food foam circulates; a heating insert with an inner shape configuring the inner heating path; and an insert made of an electrically conductive material and being inductively heatable by an oscillating magnetic field provided by the primary heating unit, and wherein the insert is configured as a sleeve surrounding the outer periphery of the heating insert, and wherein the insert is configured comprising at least two complementary shaped bodies, wherein the bodies are joined by means of joining means, allowing the assembly and disassembly of the bodies; and wherein the inner heating path is arranged inside the insert so that fluid is heated while circulating through the path and before being delivered from the device, and wherein the bodies of the insert configure internally the heating path when brought together.
25. An in-line heating device for heating a fluid and/or a food product and/or a fluid foam and/or a food foam, the device comprising: a primary heating unit; and a heating cartridge comprising: an inner heating path through which the fluid and/or food product and/or fluid foam and/or food foam circulates; a heating insert with an inner shape configuring the inner heating path; an insert made of an electrically conductive material and being inductively heatable by an oscillating magnetic field provided by the primary heating unit, and wherein the insert is configured as a sleeve surrounding the outer periphery of the heating insert; and a nozzle housing arranged to externally surround both the heating insert and the insert; and wherein the inner heating path is arranged inside the insert so that fluid is heated while circulating through the path and before being delivered from the device.
26. The in-line heating device of claim 25, wherein the nozzle housing is made of a non-conductive material.
27. A system for providing a hot fluid foam and/or a hot food product foam, the system comprising: an in-line heating device of claim 17; and a foaming machine providing a fluid foam and/or a food product foam, wherein the foaming machine is configured to receive the in-line heating device.
28. The system of claim 27, wherein the foaming machine comprises a temperature sensor arranged in such a way to have close contact with the insert of the cartridge.
29. A system for providing a hot fluid foam and/or a hot food product foam, the system comprising: an in-line heating device of claim 24; and a foaming machine providing a fluid foam and/or a food product foam, wherein the foaming machine is configured to receive the in-line heating device.
30. The system of claim 29, wherein the foaming machine comprises a temperature sensor arranged in such a way to have close contact with the insert of the cartridge.
31. A system for providing a hot fluid foam and/or a hot food product foam, the system comprising: an in-line heating device of claim 25; and a foaming machine providing a fluid foam and/or a food product foam, wherein the foaming machine is configured to receive the in-line heating device.
32. The system of claim 31, wherein the foaming machine comprises a temperature sensor arranged in such a way to have close contact with the insert of the cartridge.
33. A method comprising the step of: foaming a fluid and/or a food product and heating it using the system of claim 27.
34. A method comprising the step of: foaming a fluid and/or a food product and heating it using the system of claim 29.
35. A method comprising the step of: foaming a fluid and/or a food product and heating it using the system of claim 31.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Further features, advantages and objects of the present disclosure will become apparent for a skilled person when reading the following detailed description of non-limiting embodiments of the present disclosure, when taken in conjunction with the appended drawings, in which:
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] According to a first aspect, the present disclosure relates to an in-line heating device for heating a fluid and/or a food product and/or a fluid foam and/or a food foam, the device comprising a heating cartridge and a primary heating unit. The heating cartridge comprises an insert made of an electrically conductive material and being inductively heatable by an oscillating magnetic field provided by the primary heating unit; the heating cartridge further comprising an inner heating path through which the fluid and/or food product and/or fluid foam and/or food foam circulates; the heating path being arranged inside the insert so that fluid is heated while circulating through the path and before being delivered from the device.
[0020] In certain non-limiting embodiments, the heating provided depends on the distance between the primary heating unit and the insert. Typically, the primary heating unit and the insert are distanced by a separated heating space of a dimension allowing that the insert is at least partially positioned inside the magnetic field generated by the primary heating unit.
[0021] In certain non-limiting embodiments, the primary heating unit comprises a primary induction coil. Typically, the heating cartridge is configured removable from the rest of the device.
[0022] Typically, the heating cartridge is configured having an external cylindrical shape: the insert is configured as a cylindrical sleeve matching the external shape of the cartridge.
[0023] In certain non-limiting embodiments, the cartridge comprises a heating insert with an inner shape configuring the heating path: the cartridge typically further comprises the insert configured as a sleeve surrounding the outer periphery of the heating insert. In certain non-limiting embodiments, the heating insert is made of a thermally conductive material, such as (but not limited to) aluminium.
[0024] Typically, the insert is configured as a single ferromagnetic piece also configuring a heating insert with an inner heating path.
[0025] In certain non-limiting embodiments, the insert is configured comprising at least two complementary shaped bodies, the bodies configuring internally the heating path when brought together, and where the bodies are joined by means of joining means, allowing the assembly and disassembly of the bodies.
[0026] Typically, the cartridge further comprises a nozzle housing arranged to externally surround both the heating insert and the insert, the housing being, in certain non-limiting embodiments, made of a non-conductive material.
[0027] In certain non-limiting embodiments, the cartridge comprises a heating insert configuring itself a heating path with spiral shape, made in a non-conductive material, the path being surrounded by an insert shaped as a sleeve.
[0028] According to a second aspect, the present disclosure refers to a foaming machine providing a fluid foam and/or a food product foam, the machine being configured to receive an in-line heating device as the one described.
[0029] The foaming machine typically further comprises a temperature sensor arranged in such a way to have close contact with the insert of the cartridge.
[0030] According to a third aspect, the present disclosure further refers to a system for providing a hot fluid foam and/or a hot food product foam, the system comprising a foaming machine as the one described and an in-line heating device also as described.
[0031] According to a fourth aspect, the present disclosure refers to the use of such a system for foaming a fluid and/or a food product and further heating it.
[0032] According to a first aspect, the present disclosure is directed to a heating device 100 for heating a fluid and/or a food product and/or a fluid foam and/or a food foam, the fluid, food product or foams being provided by a machine to which the device is connected, as it will be further explained in more detail.
[0033] As represented in
[0034] In certain non-limiting embodiments, as shown in
[0035] The heating cartridge 120 further comprises an inner heating path 124 through which the fluid and/or food product and/or fluid foam and/or food foam circulates: as the heating path 124 is arranged facing the insert 121 or inside the insert 121, the insert being inductively heated thanks to the alternating electromagnetic field created by the primary coil 110; therefore, fluid is heated while circulating through this path 124 and before it is delivered from the device 100 into a cup 10.
[0036] According to the present disclosure, the heating cartridge 120 is configured removable from the rest of the device 100. Therefore, as shown for example in any of
[0037] As schematically represented in
[0038]
[0039] In a general manner, according to the present disclosure, the heating insert 125 is made of a thermally conductive material, while the insert 121 is made of an electrically conductive material. The idea behind is to cover the two main functionalities described: the insert 121 needs to be made of a material which can be inductively heated thanks to the alternating electromagnetic field created by the primary coil 110. On the other hand, the heating insert 125 needs to be made of a material allowing a good thermal transfer through it in order to heat the product flowing through or inside it. Aluminium is utilized, in certain non-limiting embodiments, as the thermally conductive material as it allows a very good dispersion of heat through it, in a short time, therefore making the heat transfer effective. The particular (but non-limiting) electrically conductive material for the insert 121 is a ferromagnetic material, such as steel, allowing the generation of Eddy currents in it creating an electromagnetic field opposed to the field created by the primary coil. The same material can be used for both inserts, 121 and 125; however, particular (but non-limiting) embodiments of the present disclosure use different materials for these inserts.
[0040]
[0041] This second embodiment (
[0042]
[0043] In certain non-limiting embodiments, the insert 125 is configured having two complementary shaped bodies which, once brought together, configure internally the heating path 124. The bodies can be brought together by means of different joining means or joints, but always easy means allowing their assembly and disassemble in order to be able to access their inner part (the path 124) for cleaning.
[0044] In the embodiments shown in
[0045] Finally,
[0046] The heating device 100 of the present disclosure is capable of delivering hot fluid or hot fluid foam on demand, the fluid or the foam being provided by the machine to which the device is connected, as shown in
[0047] In the third embodiment of the present disclosure, as shown in
[0048] Finally, in the fourth embodiment of the present disclosure, represented in
[0049] Further advantages of the device of the present disclosure are that it is made having a compact design, further allowing a cartridge temperature control (this would be explained later, with reference to the machine to which the device is connected) and also allowing the heating of cold foam, which provides a higher quality of foam, compared to hot foam creation. Also, traditional ways of heating a fluid or a foam using for example a thermoblock require a higher inertia than the solution proposed with the device of the present disclosure: this makes that longer time is needed for effectively being able to have the thermoblock prepared for heating the fluid/foam, whereas in the case of the present disclosure, it is the insert 121 the part that needs to be heated; this part is thin and has a low inertia, thus allowing the device be ready in a short time to heat the fluid flowing through, therefore allows quick heating operations.
[0050] According to a second aspect, the present disclosure is directed to a foaming machine 200 as schematically represented in
[0051] As the induction technology used is fast and powerful, there is the need to control the temperature of the product in order not to overheat it. This can be made either by measuring the product temperature or the heating element temperature. The second case is the one used by the present disclosure. The machine 200 is further provided with a sensor support 203 to place conveniently the temperature sensor 202 so that there is a close contact between the sensor 202 and the insert 121 so that the temperature of the heating element can be correctly determined. Other temperature sensing technologies can be used (e.g. infra-red).
[0052] As shown in any of
[0053] According to a third aspect, the present disclosure further relates to a system 300 for providing a hot fluid foam and/or a hot food product foam. The system 300 comprises a machine 200 and an in-line heating device 100 as previously described.
[0054] Some of the main advantages of the device of the present disclosure include (but are not limited to) the following: [0055] on-demand heating system based on induction technology; [0056] removable and cleanable cartridge (only part in contact with the product); [0057] safe construction for user; [0058] cartridge temperature control; [0059] compact design; [0060] allows cold foam heating (better quality than hot foam creation); [0061] no contact between product and machine; [0062] high reactivity thanks to high power density and low inertia; [0063] scalable technology.
[0064] Although the present disclosure has been described with reference to particular embodiments thereof, many modifications and alterations may be made by a person having ordinary skill in the art without departing from the scope of the present disclosure which is defined by the appended claims.