The disclosure relates to dispensing of frozen confectionary products such as soft-serve ice cream, ice milk, frozen yogurt, artificial substitutes therefor, and the like. More particularly, the disclosure relates to dispensing valves for dispensers of such product.
Frozen confection dispensing systems are commonly used in the food service industry. An exemplary system configuration comprises a cabinet containing a mixing vessel (e.g., hopper) for mixing the confection. From the mixing vessel, the confection passes to a freezing vessel (e.g., a freezing cylinder). An air pump may add air to the mix. A refrigeration system may refrigerate the confection in the mixing hopper and freeze the confection in the freezing cylinder (cooled to a frozen or semi-frozen state).
The cabinet may contain one or more stages of pumps for driving the confection from the vessel to a delivery head/valve assembly. An exemplary pump is positioned between the mixing upper and freezing cylinder, with a rotary action of a beater of the freezing cylinder acting as a further pump. An exemplary valve assembly is mounted on the front of the cabinet. The valve assembly typically has a downward-facing outlet for discharging the confection into a bowl, cup, cone, or the like. The valve may be manually-actuated (e.g., via a lever pivotable upward or downward about a transverse hinge axis from an off condition to a dispensing condition). The valve assembly body is often called a “door” mounted over a hole in the front face of the cabinet.
An exemplary beater comprises helical blade driven by a motor to rotate about an axis the rotation causes the blade to drive product toward an inlet port in the rear surface of the door. A fixed baffle may extend rearward from the door to prevent accumulation of a stagnant mass of product within the interior of the helix. Examples of such baffles and beaters are seen in U.S. Pat. No. 7,278,276 of Boyer et al., issued Oct. 9, 2007 and US Patent Application Publication 2013/0068331 of Matz et al., published Mar. 21, 2013.
One aspect of the disclosure involves a frozen product dispensing apparatus comprising a refrigeration system and a freezing cylinder. A source of the product or precursors of the product is coupled to an inlet of the freezing cylinder. An outlet valve has an open condition for discharging product from the freezing cylinder. A beater assembly is within the freezing cylinder and has an axis and an outer helical member. A motor is coupled to the beater assembly for driving rotation of the beater assembly about the axis so that when driving said rotation in a first direction, the outer helical member drives product toward the outlet valve. The beater further comprises an inner helical member within the outer helical member.
In one or more embodiments of any of the foregoing embodiments, the inner helical member has a spiral opposite to the outer helical member.
In one or more embodiments of any of the foregoing embodiments, the inner helical member is mounted to rotate as a unit with the outer helical member.
In one or more embodiments of any of the foregoing embodiments, the inner helical member has a spiral in the same direction as the outer helical member and the inner helical member is mounted to rotate opposite to rotation of the outer helical member.
In one or more embodiments of any of the foregoing embodiments, the inner helical member is mounted to remain stationary in operation.
In one or more embodiments of any of the foregoing embodiments, the outer helical member has a helix angle decreasing from a rear end toward a front end.
In one or more embodiments of any of the foregoing embodiments, the outer helical member is a blade integral to a frame having features for removably mounting wiper blades.
In one or more embodiments of any of the foregoing embodiments, the inner helical member has a blade integral to a shaft and an open cup at one end.
In one or more embodiments of any of the foregoing embodiments, the inner helical member, shaft, and open cup are a unitary non-metallic piece.
In one or more embodiments of any of the foregoing embodiments, the outlet valve comprises an outlet valve body. An axle has a first portion in threaded engagement with the outlet valve body and a second portion received in a compartment of the inner helical member.
In one or more embodiments of any of the foregoing embodiments, the beater assembly axis is within 10° of horizontal in a normal operational condition.
In one or more embodiments of any of the foregoing embodiments, wherein the outlet valve comprises: an inlet; an outlet; and a valve element. The valve element is shiftable between: a first condition providing communication between the inlet and the outlet; and a second condition blocking communication between the inlet and the outlet.
In one or more embodiments of any of the foregoing embodiments, an actuator is coupled to the valve element and manually engagable by a user to shift the valve element between the first condition and the second condition.
In one or more embodiments of any of the foregoing embodiments, the actuator comprises a lever, the lever being shiftable from a neutral condition to respective first and second lever conditions to, respectively, shift the valve element to the valve element's first and second conditions.
In one or more embodiments of any of the foregoing embodiments, a cabinet has a front, wherein the source is within the cabinet and the valve is mounted on the front.
In one or more embodiments of any of the foregoing embodiments, the apparatus is in combination with the confectionary product, the confectionary product being a frozen confectionary product.
In one or more embodiments of any of the foregoing embodiments, a method for operating the apparatus comprises: running the motor to drive said rotation in said first direction so that the outer helical member drives the product toward the outlet valve and the inner helical member drives product away from the outlet valve.
In one or more embodiments of any of the foregoing embodiments, the method further comprises opening the outlet valve from a closed condition to the open condition so as to discharge product from the freezing cylinder.
The details of one or more embodiments are set forth in the accompanying drawings and the description below. Other features, objects, and advantages will be apparent from the description and drawings, and from the claims.
Like reference numbers and designations in the various drawings indicate like elements.
A refrigeration system 50 (e.g., a vapor compression-expansion cycle) is provided to refrigerate the confection in the hopper. A freezing cylinder 52 is located between the hopper 42 and the valve assembly 38. The freezing cylinder contains a beater assembly (beater/scraper assembly) 53 (driven for rotation about an axis 502). The axis 502 is generally horizontal (e.g., within 10° of horizontal in a normal operating condition, more particularly within 5°). The refrigeration system includes appropriate heat absorption heat exchangers to cool the hopper 42 and freezing cylinder 52 to appropriate temperatures and maintain those temperatures. The heat absorption heat exchangers (which absorb heat in the normal mode (as distinguished from defrost mode, cleaning mode, or pasteurization mode)) may be integrated with the hopper 42 and cylinder 52. A compressor of the refrigeration system is schematically shown as 54, a normal mode heat rejection heat exchanger (e.g., condenser) as 56, its associated fan as 58, and an expansion device as 60. Also schematically shown are an electric motor 62 and a transmission 64 for driving the rotation of the beater assembly.
The exemplary valve assembly 38 serves as a door which closes the downstream end of the freezing cylinder. The exemplary valve assembly 38 is mounted via hand-actuated screws 72 (
The exemplary valve assembly 38 is a manually-actuated valve which the user may actuate via rotating a lever 84 (e.g., via a handle 86 at a distal end of a lever arm (driving arm) 88) about a lever axis 510. The lever, in turn, controls movement of a piston-like valve member (element) 90 within a vertical bore (valve compartment) 92 of the valve body 64.
The axle 76 is concentrically received within the beater/scrapper assembly (53 of
The freezing cylinder 52 includes an outer wall 130 with a space between the inner wall and the outer wall defining a heat exchanger (e.g., the heat rejection heat exchanger (evaporator) of the vapor compression refrigeration system 50).
The beater/scraper assembly 53 comprises a drive shaft 140 extending through the domed end 122 and coupled to the transmission 64 and motor to drive rotation of the beater assembly. In conventional manner, the shaft 146 is keyed to engage a rear end plate 150 of the beater/scraper assembly (
One or more stirring rods 180 may extend from the aft face of the plate 150 to maintain movement of material adjacent the freezing cylinder inlet 124.
The outer helical member 152 is generally helical/spiral with a first sense of direction and extending from a rear/upstream end 190 to a forward/downstream end 192. When rotated in a first direction 530 about the freezing cylinder axis 502, the outer helical member 152 drives product forward (flow 540) within the freezing cylinder. When the valve 38 is open, the outer helical member will drive product through the valve inlet port 80 and thus out the valve outlet port 82. The exemplary helix angle of the outer helical member may progressively change from end to end. In this example, the helix is relatively shallower near the forward end and relatively steeper (more nearly longitudinal) near the rear end.
The beater assembly also includes an inner helical member or screw 200. The exemplary inner helical member is non-metallic (e.g., polyoxymethylene or other acetal homopolymer or other engineering thermoplastic).
Manufacturing methods and materials may otherwise be the same as those of any baseline system. Similarly, use parameters of the baseline system may otherwise be the same. A notable addition is the molding of the inner helical member 200 (e.g., injection molding).
An alternative less ambitious reengineering/remanufacturing of a baseline unit involves replacing the fixed baffle of the baseline unit with a fixed inner helical member 300 (
An alternative more ambitious reengineering/remanufacturing would involve providing a transmission or other arrangement for counterrotation of the inner helical member 400 (
Although an embodiment is described above in detail, such description is not intended for limiting the scope of the present disclosure. It will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. For example, when implemented in the engineering of an existing system configuration or the remanufacturing of an existing system, details of the existing system or configuration may influence or dictate details of the particular implementation. Accordingly, other embodiments are within the scope of the following claims.
Benefit is claimed of U.S. Patent Application No. 62/095,882, filed Dec. 23, 2014, and entitled “Freezing Cylinder Beater”, the disclosure of which is incorporated by reference herein in its entirety as if set forth at length.
Filing Document | Filing Date | Country | Kind |
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PCT/US2015/064940 | 12/10/2015 | WO | 00 |
Number | Date | Country | |
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62095882 | Dec 2014 | US |