Assembled Material Tube Of Hot And Cold Foods Supplying Machine
20200300549 ยท 2020-09-24
Assignee
Inventors
Cpc classification
F28D7/0016
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23G9/22
HUMAN NECESSITIES
F28F9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23G9/228
HUMAN NECESSITIES
F28D7/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23G9/22
HUMAN NECESSITIES
Abstract
The present invention relates to an assembled material tube of hot and cold foods supplying machine, including a plurality of material tube bodies, in which penetrating feed channels are provided internally; each of the material tube bodies has a path provided with an inlet and an outlet to respectively and correspondingly input and output a working fluid through the path for performing thermal exchanges, whereby cooling occurs in segmentations for each of the feed channels; a plurality of temperature measurement units each of which is provided with a detecting end for detecting a temperature in the corresponding feed channel; and a plurality of heating units perform heating in segmentations for each of the feed channels. Accordingly, said machine can be separately used as hot food supplying machine or cold food supplying machine, so as to achieve the aim of using one machine for two purposes.
Claims
1. An assembled material tube of hot and cold foods supplying machine, comprising: a plurality of material tube bodies, each of the material tube bodies having a feed channel penetrating therethrough and a path circularly provided around a periphery of the feed channel, two ends of the path of each material tube body being formed into an inlet and an outlet respectively for inputting and outputting a working fluid; and a plurality of heating units corresponding in number and respectively fixed to the material tube bodies; wherein the plurality of material tube bodies are mutually and serially connected in assembly so that the feed channels thereof are mutually communicated; the path of each material tube body enables the working fluid to flow therethrough and the feed channel of each material tube body is configured to be heated by a corresponding one of the heating units, thereby allowing the material tube bodies to be cooled and heated by means of the working fluid and the corresponding heating units respectively and separately.
2. The assembled material tube of claim 1, wherein each material tube body is provided with a temperature measurement unit, the temperature measurement unit having a detecting end extended into the feed channel of said material tube body to detect a temperature therein.
3. The assembled material tube of claim 2, wherein each material tube body has a surface thereof provided with a first fixing hole, the first fixing hole penetrating into the feed channel of said material tube body for the temperature measurement unit to be fixed therein.
4. The assembled material tube of claim 2, wherein the temperature measurement unit is a contact-type thermal sensor.
5. The assembled material tube of claim 1, wherein each material tube body has a surface thereof provided with a second fixing hole, and the heating unit is fixed in the second fixing hole.
6. The assembled material tube of claim 1, wherein the path of each material tube body is encompassingly reciprocally and circuitously provided along an axial direction of the feed channel in a wall around the feed channel.
7. The assembled material tube of 1, wherein each material tube body has at least one end thereof being provided with a joining portion on which a plurality of screw holes are disposed, and the joining portions of two adjacent said material tube bodies are fixed together by screwing a plurality of screw elements into the screw holes thereof.
8. The assembled material tube of claim 7, wherein the plurality of material tube bodies are serially connected to form as an assembled set of material tube bodies, and outer most two ends thereof are respectively defined with an input end and an output end.
9. The assembled material tube of claim 7, wherein the joining portion of each material tube body is configured as a flange.
10. The assembled material tube of claim 1, wherein the working fluid is a refrigerant or a coolant.
11. The assembled material tube of claim 1, wherein the inlet formed on the path of each material tube body is connected to a respective capillary tube for inputting the working fluid.
12. The assembled material tube of claim 1, wherein the outlet formed on the path of each material tube body is connected to a respective refrigerant tube for outputting the working fluid.
13. The assembled material tube of claim 1, wherein each heating unit is transversely disposed at a middle position or a near-middle position of the corresponding material tube body relative to an axial direction of the corresponding material tube body.
14. The assembled material tube of claim 8, wherein the path of each material tube body includes a plurality of axial paths and a plurality of communicating paths, the axial paths are directly drilled into said material tube body, and two adjacent said axial paths have portions thereof at a position close to the input end or close to the output end being connected and therefore communicated to each other through one of said communicating paths, in which the communicating paths close to the input end and the communicating paths close to the output end are distributed in an alternate manner on an annulus of said material tube body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033] Referring to
[0034] one or more said material tube body (1) can be selected randomly and serially connected in assembly according to different requirements for temperatures of hot and cold foods to be made or a distance of conveying. In this embodiment of the present invention, three said material tube bodies (1) are serially connected in assembly, and the three material tube bodies (1) can be configured to be different appearances according to different installation spaces; however, the three material tube bodies (1) are substantially structurally identical. Each of the material tube bodies (1) are internally provided with a penetrating feed channel (11), and at least one end of each of the material tube bodies (1) is formed into a joining portion (111), wherein the joining portion (111) is configured as a flange for mutually and serially connecting the material tube bodies (1) in assembly. The joining portion (111) of each of the material tube bodies (1) has a plurality of screw holes (112) provided thereon, so that the joining portions (111) of two adjacent material tube bodies (1) can be joined together by using a plurality of screw elements (113) screwed into the screw holes (112), in which the screw elements (113) consists of screws and nuts. Further, once the material tube bodies (1) are serially connected in assembly, each feed channel (11) is mutually communicated with each other, such that the outer most two ends of an assembled set of the material tube bodies (1) can be respectively defined with an input end (114) and an output end (115). Furthermore, a surface of each of the material tube bodies (1) is respectively provided with a first fixing hole (12) and a second fixing hole (13) (as shown in
[0035] Each of the material tube bodies (1) is provided with a temperature measurement unit (2) fixed in the first fixing hole (12) thereof (as shown in
[0036] Each of the material tube bodies (1) is provided with a heating unit (3) fixed in the second fixing hole (13) thereof (as shown in
[0037] Upon assembly, as shown in
[0038] When being used as a hot food supplying machine for various hot foods such as porridges, hot soups, hot tea, boiled herbal jelly, soy milk, coffee, red bean soup and the like, as shown in
[0039] When being used as a cold food supplying machine for various cold foods such as cold drinks, ice cream, smoothies, milk shakes and the like, as shown in
[0040] If the above-mentioned cold foods are cold drinks, for example, ice coffee, iced juices, ice tea and the like, the material tube bodies (1) are simply required to be controlled at an adequate working temperature, for example, 5 C. to 15 C., so as to enable the output cold drinks to be kept icy. The cold foods can also be frost cream; a formulated frost cream is to poured into the material barrel (B), and then the material tube bodies (1) are controlled at an adequate working temperature, for example, 5 C. to 7 C. The cold foods can also be smoothies; a formulated smoothie raw material is poured into the material barrel (B), and then the material tube bodies (1) are controlled at an adequate working temperature, for example, 10 C. to 20 C., so as to enable the smoothie raw material to be frozen on a wall of the feed channels (11) of the material tube bodies (1) upon outputting, and be scraped off for conveying by using the spiral scraper, finally output for consumption via the discharge valve (C).
[0041] Accordingly, the present invention realizes the aim of using one machine for two purposes by using the assembled material tube device, which is capable of being respectively used as a hot food supplying machine or a cold food supplying machine, thereby achieving great convenience and practical uses, and significantly saving purchase costs. By using the segmented structure designed for the material tube, the actual temperature change of hot foods or cold foods in each feed channel (11) can be accurately and directly detected, and further applying, according to a usage requirement for making hot and cold foods, heating or temperature reduction in segmentations to the assembled set of the material tubes, so as to enable the hot foods or the cold foods to reach an optimal intake state.
[0042] In summary of the explanations of the above-mentioned embodiments, operations and uses of the present invention and effects produced thereby can be sufficiently understood. However, it should be understood that the aforesaid embodiments are merely preferred embodiments of the present invention and are not intended to limit the scope of the present invention; therefore, simple alterations and equivalent modifications based on the claims and the description of the present invention shall be likewise included within the scope of present invention.