ADJUSTABLE MECHANICAL STOP FOR A FOOD BAKING APPARATUS
20230398759 · 2023-12-14
Assignee
Inventors
- Johan VAN DE VIJVER (Zottegem, BE)
- Filip KEEREMAN (Zwalm, BE)
- Emmanuel Petre (Sint-Denijs Westrem, BE)
Cpc classification
B30B15/0029
PERFORMING OPERATIONS; TRANSPORTING
A23L7/126
HUMAN NECESSITIES
B29C33/34
PERFORMING OPERATIONS; TRANSPORTING
A23P10/28
HUMAN NECESSITIES
A21B1/42
HUMAN NECESSITIES
B30B15/022
PERFORMING OPERATIONS; TRANSPORTING
A21B5/02
HUMAN NECESSITIES
International classification
B30B15/02
PERFORMING OPERATIONS; TRANSPORTING
A23L7/126
HUMAN NECESSITIES
A21D13/047
HUMAN NECESSITIES
A21B5/02
HUMAN NECESSITIES
B30B15/00
PERFORMING OPERATIONS; TRANSPORTING
B29C33/34
PERFORMING OPERATIONS; TRANSPORTING
A21B1/42
HUMAN NECESSITIES
A23P10/28
HUMAN NECESSITIES
Abstract
A food baking apparatus includes a compressible die and a mechanical stop for controlling a die spacing of the compressible die. The mechanical stop includes a supporting system and a mounting element mounted onto the supporting system. The mounting element includes at least one protrusion having a particular amount of protrusion from the mounting element, which amount of protrusion may be adjustable for any single protrusion. By translation or rotation of the supporting system and/or the mounting element during operation of the apparatus, a protrusion is selected. The protrusions mechanically stop further compression of the dies during an operation of the food baking apparatus. Thus, the selection determines the die spacing applicable for the baking process, based on the amount of protrusion of the selected protrusion.
Claims
1-15. (canceled)
16. A food baking apparatus comprising: a transmission member; a drive system configured to push the transmission member; a first die and a second die, the first die and the second die being movable toward or away from each other by the transmission member when the transmission member is pushed by the drive system; and an adjustable mechanical stop that controls a die spacing defined between the first die and the second die for providing a food product to be baked by the food baking apparatus, the mechanical stop comprising: a supporting system; and at least one mounting element mounted onto the supporting system; wherein: the supporting system with the at least one mounting element mounted thereon is movable along an axis being perpendicular to the protrusions of the at least one mounting element; the at least one mounting element comprises one or more protrusions that stop movement of the transmission member, thereby stopping further compression of the first die and the second die at the die spacing, the one or more protrusions being selectable by the translational movement of the supporting system, such that a selected protrusion has an amount of protrusion that controls the die spacing, and the one or more protrusions of the at least one mounting element comprise at least one of (a) or (b): (a) at least one adjustable protrusion that is adjustable in amount of protrusion; and (b) at least two protrusions differing in amounts of protrusion amongst each other.
17. The food baking apparatus according to claim 16, wherein the one or more protrusions of the at least one mounting element have a direction of protrusion along a longitudinal axis of the protrusion parallel to the central axis of the supporting system.
18. The food baking apparatus according to claim 17, wherein the at least one mounting element comprises at least one adjustable protrusion that is adjustable in amount of protrusion, the food baking apparatus further comprising a motorized system that adjusts the amount of protrusion of the at least one adjustable protrusion.
19. The food baking apparatus according to claim 16, wherein the supporting system comprises a plate, onto which a first and a second mounting element are movably mounted, and each of said mounting elements comprises rod-shaped protrusions.
20. The food baking apparatus according to claim 19, wherein the first mounting element is mounted on one end of the supporting plate, and the second mounting element is mounted on the other end of the supporting plate.
21. The food baking apparatus according to claim 20, wherein the supporting plate comprises recesses at each end of the supporting plate, in a direction perpendicular to the direction of the rod shaped protrusions
22. The food baking apparatus according to claim 19, wherein the first mounting element, comprises the rod-shaped protrusions wherein rod-shaped protrusion is shorter or is less protruding than rod-shaped protrusion.
23. The food backing apparatus according to claim 22, wherein the second mounting element, is identical in shape and size, including rod-shaped protrusions, to the first mounting element with rod-shaped protrusions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF THE INVENTION
[0031] The invention relates to a solution for providing a better and more accurate way of controlling the distance between the dies, i.e. the mutual die distance, of a food baking apparatus. More in particular, a system is provided to obtain an accurate and repeatable way of controlling the die distance. Further, with the invention the possibility is offered of having different installable die distances in case of multiple compressions of the food ingredient such as for instance rice or other granular raw material. Very repeatable and unchanging processing conditions are herewith achieved, and thus an enhanced and much more constant quality of end product, being for example a cracker or chip, is reached.
[0032] Due to the entered control of the die distance, disturbing factors having an influence thereon can be eliminated, being for instance moisture content (and thus liquidity in the compressed status) of the food materials, temperature changes of food materials and/or dies, changes in response time of pneumatic, electrical, electronic or hydraulic components etc. Hence, with the invention, a system is provided to eliminate disturbing and varying factors and their influence on the die distance, and thus reducing varying processing conditions leading to irregular or unwanted end products. Moreover, it becomes possible to avoid so-called over-compression in a very repeatable way of certain food materials like for instance oily seeds where often too much oil is being pressed out as a result of heat and pressure.
[0033] In
[0034] With the design and positioning of mechanical adjustable stop 200, the drive system 100 is stopped along a more or less horizontal direction, i.e. more or less parallel with the cylindrical rods 110, 120 of the hydraulic drive system 100. In other words, the horizontal stopper is acting along a (more or less) horizontal direction. By means of the adjustable mechanical stop 200, the stroke of the driving parts for making the dies move is now controlled, or in other words, the die spacing or distance between the dies can be manipulated in a controlled way.
[0035] The adjustable mechanical stop 200 comprises of a supporting system, in this instance a plate or disk 210, onto which mounting elements are mounted, in this instance nut-shaped elements 220, 230, 240, 250, out of which protrusions, in this example bolts are protruding. According to this design, four nut-shaped mounting elements are pairwise provided onto a circular supporting system, in a circular symmetric manner, whereas other designs may also occur in accordance with the invention, wherein more or less nut-shaped mounting elements with bolts (protrusions) accordingly are present. For two of the nut-shaped mounting elements 220, 230 the corresponding protruding bolts 221, 231 are visible in
[0036] Referring now to
[0037] The supporting plate or disk 210 is circularly shaped having a central axis A being perpendicular to the plane of the drawing of
[0038] The respective protruding bolts 221, 241 of nut-shapes 220, 240 pair and corresponding bolts 231, 251 of nut-shapes 230, 250 pair are also lying onto corresponding axes Q1, Q2 respectively. The nut-shaped mounting elements 220, 230, 240, 250 are thus together with their respective bolts 221, 231, 241, 251 lying per pair onto a common disk diameter. In other words, a first pair of nut-shapes and bolts is formed by nut-shaped mounting elements 220, 240, and their corresponding bolts 221, 241, while a second pair is formed by nut-shaped mounting elements 230, 250, and their corresponding bolts 231, 251.
[0039] According to an embodiment, when a pair of nut-shaped mounting elements and respective bolts is positioned horizontally along the axis Q2, it will act as mechanical stop for the food baking apparatus, more in particular it will enable stopping the hydraulic drive of the apparatus. Even more in particular, the protruding bolts 231, 251 will determine the end stroke of the drive system 100, when touching the upper arm 160 of the transmission member 150 whenever pushed towards near vertical alignment of the arms.
[0040] According to a further embodiment, the amount of protrusion of the bolts is the same per pair, meaning that here e.g. the bolts 221, 241 from the first pair are protruding with the same amount, whereas the bolts 231, 251 from the second pair are also protruding with the same amount, although the amount of protrusion may differ from pair to pair. The supporting plate or disk 210 can be rotated around its central axis A, either manually, or else motor driven. This way, the nut-shaped mounting elements 220, 230, 240, 250 and their corresponding bolts 221, 231, 241, 251 can change in radial position. This way another pair may be selected into horizontal position for acting as stop for the hydraulic drive system 100.
[0041] As depicted in
[0042] In accordance with an embodiment, the number of nut shaped mounting elements, herein also referred to as nut-shapes, and corresponding bolts is not fixed to four, but can also be larger or smaller. The number of nut-shapes and corresponding bolts is even, in accordance with further embodiment, more in particular the nut-shapes and respective bolts come in pairs lying in line, or on the same diameter in case of a circularly shaped supporting plate or disk 210. As an example, the supporting plate or disk 210 is e.g. provided with eight nut-shapes and corresponding bolts, or either four pairs of nut-shapes with respective bolts. Suppose two pairs are added to the configuration of
[0043] With
[0044] The same adjustable mechanical stop 300 is depicted in
[0045] The mounting elements 320, 330 comprise two rod-shaped protrusions each, and the rod-shaped protrusion may differ in length, i.e. in amount of protrusion. A first mounting element 320 on one end of the supporting plate 310 comprises the rod-shaped protrusions 321, 322 wherein rod-shaped protrusion 321 is shorter or is less protruding than rod-shaped protrusion 322. A second mounting element 330 is mounted on the other end of the supporting plate 310, whereas this second mounting element 330 is identical in shape and size, including rod-shaped protrusions 331, 332, to the first mounting element 320 with rod-shaped protrusions 321, 322.
[0046] Referring further to
[0047] Whenever shifting or translating the mounting elements 320, 330 in the direction of the arrow of axis T, another position can be achieved, as shown in
[0048] This mechanical horizontal drive stopper can be combined in a food baking apparatus with the mechanical vertical drive stopper as herein described. Thus in a further aspect of the invention a food baking apparatus is provided, comprising a horizontal drive stopper and a vertical drive stopper according to the invention.
[0049] According to an embodiment of the invention, a mechanical adjustable drive stopper (for a food baking apparatus) is provided acting along a first direction, and another mechanical adjustable drive stopper (for a food baking apparatus) is provided acting along a second direction. According to a further embodiment, further (or multiple) mechanical adjustable drive stoppers (for a food baking apparatus) can be provided acting along a further direction. Having a plurality of mechanical adjustable drive stoppers within one food baking apparatus, acting along multiple different directions, may enable fine-tuning and highly accurate adjustability of the driving system, or herewith controlled compression mechanism, in particular referring to e.g. multiple or double compression or partial press mechanism.