[0001] The present invention relates to a vacuum pump comprising a housing and a cooling
element.
[0002] Common cooling elements for vacuum pumps are built by pressed in or cast in stainless
steel pipes in an aluminum block. However, the mating face contact between aluminum
and the stainless steel pipe in the cooling block is not perfect neither if pressed
in or cast into the aluminum block. Therefore, the thermal transfer from the housing
of the vacuum pump to the coolant flowing through the pipe is not sufficient. Further,
the thermal transfer is further reduced since usually there is a laminar flow within
the pipe diminishing the heat conductance from the vacuum pump to the coolant.
[0003] Further, the aluminum blocks are assembled to the housing of the vacuum pump by alloy
steel bolts at room temperature. During operation, the cooling block temperature cycles
between usually 20 to 160 °C. Since the alloy steel bolts have a lower thermal expansion
than the aluminum, stress is induced into the bolts causing fatigue failure on the
bolt. Thus, cooling effect can be diminished, and service of the vacuum pump may become
necessary.
[0004] Thus, it is an object of the present invention to provide a cooling element providing
an efficient heat transfer of the heat to the coolant and performing its function
more reliably.
[0005] DE 20 2013 009 654 describes a prior art vacuum pump having the features of the preamble to claim 1.
US 2020/106146 discloses a cooling plate for a traction battery cell.
[0006] A solution to the given problem is provided by the vacuum pump according to claim
1.
[0007] In accordance to the present invention the cooling element for vacuum pump comprises
a base element wherein by the base element an internal void is defined. Further, an
inlet is connected to the base element and is in fluid connection with the void. An
outlet is connected to the base element and is in fluid connection with the void such
that a coolant can flow from the inlet through the void to the outlet to dissipate
the heat transferred from the housing of the vacuum pump to the coolant. Therefore,
the base element is connectable to the housing of the vacuum pump. Due to the coolant
flowing through the internal void of the base element heat produced by the vacuum
pump is dissipated and reliably carried away from the vacuum pump.
[0008] According to the invention, the void has a flat shape. In this sense flat means that
the height of the void is smaller than the width of the void. The width is more than
twice as large as the height, preferably more than four-times as large as the height
and even more preferably more than 10-times as large as the height.
[0009] The height of the void is less than 3 mm, preferably less than 2 mm and even more
preferably less than 1 mm. In comparison the width of the void can be several tens
of mm, preferably more than 25 mm and more preferably more than 40 mm. Thus, by the
flat void a large surface is created that is in contact with the coolant when the
coolant is flowing through the void. Thus, efficiency of the heat transfer from the
vacuum pump to the coolant may be improved.
[0010] Preferably, also the base element has flat shape thereby reduction of the amount
of material and thus the costs of fabrication may be achieved. Therein, the shape
of the base element may be adapted to the shape of the void. Therein, the term flat
has the same meaning, i.e. that the base element has a height which is much smaller
than the width of the element.
[0011] Preferably, the void has a length exceeding the width of the void, preferably exceeding
the width of the a factor of two, more preferably by a factor of 4 and most preferably
by a factor of 8. Thus, the coolant may have a sufficient time in order to take up
the heat from the vacuum pump which is then dissipated by the coolant.
[0012] Preferably, the base element comprises a bottom surface to be directly attached to
the surface of the housing of the vacuum pump. Thus, the base element is in direct
contact with the housing of the vacuum pump which may provide sufficient heat conductivity
in order to transfer the heat from the housing of the vacuum pump to the bottom surface
of the base element, to the coolant in the internal void that is defined by the base
element. In particular, the bottom surface is flat in order provide full contact with
the surface of the housing of the vacuum pump.
[0013] In particular, the material thickness between the bottom surface of the base element
and the void is less than 3 mm, preferably less than 2 mm and more preferably less
than 1 mm. Thus, sufficient heat conductivity may be provided. Even if the base element
is made from stainless steel, there might be sufficient heat conductivity due to the
small material thickness of the bottom of the base element.
[0014] The internal void comprises at least one corrugated surface to create turbulent flow
within the void, the corrugated surface might be provided at least at the upper surface
which is at the opposite site of the bottom surface away from the surface of the housing
of the vacuum pump. More preferably, the upper surface as well as the bottom surface
might comprise a corrugated surface.
[0015] Therein the corrugated surface is provided by grooves which are arranged perpendicular
to the direction of flow through the void. Alternatively or additionally, the corrugated
surface might be provided by ribs arranged perpendicular to the direction of flow.
Thus, if only one corrugated surface is present, the corrugated surface can be built
as grooves or ribs. If two corrugated surfaces are present, the two surfaces can be
built both with grooves or both with ribs or one corrugated surface can be built as
ribs and one corrugated surface can be built as grooves.
[0016] Preferably, if no connecting element is present, the corrugated surface of the upper
surface is built as grooves wherein the corrugated surface of the bottom surface is
built as ribs. In particular, if the base element is surrounded by a connecting element
as described below then the bottom surface may be built as grooves or ribs in order
to ensure turbulent flow within the void. By the turbulent flow in the void heat transfer
to coolant might be improved.
[0017] Preferably the features of the corrugated surface of the upper surface and the features
of the corrugated surface of the bottom surface are arranged alternating along the
direction of flow.
[0018] Preferably, a turbulator element is disposed within the void to create turbulent
flow within the void. Preferably, the turbulator element is built as wire mesh introduced
into the void as separate element. In particular, if the void is constructed as pipe
the turbulator element can be easily introduced into the pipes in order to ensure
turbulent flow within the pipes enhancing the heat transfer to the coolant.
[0019] Preferably, the base element is built as one piece. Thus, there is no possibility
of leakage of the coolant. Alternatively, the base element is composed of two pieces
or more which are glued, welded, screwed or otherwise leaktight attached together.
[0020] Preferably, the base element is fabricated by 3D printing. In particular, if the
base element is built in one piece by 3D printing it may provide the possibility to
create internal voids with complex shapes such as a corrugated surface. Thus, 3D printing
facilitates fabrication of the cooling element.
[0021] Preferably, the base element is surrounded by a connecting element. In particular,
if the base element is not directly connected to the housing of the vacuum pump, the
connecting element connects the base element with the housing of the vacuum pump.
Therein, preferably, the connecting element is made from aluminum wherein the connecting
element is directly connected to the housing of the vacuum pump. Therein, the base
element can be cast-in or pressed-in into the connecting element to provide sufficient
contact between the base element and the connecting element.
[0022] Preferably, the base element is made of stainless steel. In particular, if aggressive
coolants are used stainless steel provides the benefit of being in urge and long-lasting.
Thus, if the cooling element is attached by alloy steel screws, cooling element and
screws have the same or similar thermal expansion. Thus, thermal stress induced might
be reduced.
[0023] The present invention will be described in detail with reference to the embodiments
according to the accompanied drawings.
[0024] It is shown:
Figure 1 a perspective view of the cooling element in accordance to the present invention,
Figure 2 a cross section of the cooling element according to figure 1,
Figure 3 another embodiment of the cooling element according to the present invention
and
Figure 4 an exemplary turbulator element.
[0025] The cooling element 10 according to the present invention comprises a base element
12 which is according to Figure 1 built as flat base element 12. Further, to the base
element an inlet 14 and an outlet 16 is connected. A coolant is flowing through the
inlet 14 as depicted by the arrow 18, flowing through an internal void 20 built in
the base element (Figure 2) and leaving the cooling element 10 through the outlet
16 as depicted by the arrow 22. Therein the base element 12 comprises a bottom surface
24 which is in direct contact with the surface 26 of the housing 28 of the vacuum
pump as depicted in figure 2.
[0026] Due to the flat shape of the void 20 in the base element 12 most of the coolant is
close to the bottom surface 24 and able to take up heat energy transferred from the
housing 28 of the vacuum pump to the cooling element 10. Therein, the cooling element
10 might be built from stainless steel. Even though stainless steel has a low heat
conductivity, enough heat is transferred from the vacuum pump to the coolant since
the material thickness D between the bottom surface 24 of the cooling element 10 and
the lower surface of the internal void 20 is small and in particular less than 2 mm.
[0027] In accordance to the present invention an upper surface 30 of the internal void 20
is built as corrugated surface by a plurality of grooves 32 which are perpendicular
to the direction of flow (as indicated by arrow 34). In addition, the lower surface
31 of the internal void 20 also comprises a corrugated surface as depicted in Fig.
2, wherein the corrugated surface in Fig. 2 is built by ribs 33 arranged perpendicular
to the direction of flow and interchangeably arranged to the grooves 32 of the upper
surface 30. Thereby, the coolant is forced into turbulent flow enhancing the possibility
of the coolant to take up heat from the vacuum pump.
[0028] Preferably, the base element 12 is built as one piece by 3D printing. Thereby, the
complex shape of the void 20 can be easily achieved and further a leak tight design
is provided.
[0029] The method of fabrication of the cooling element comprises the steps of:
- a) Printing a base element by 3D printing from stainless steel, wherein the base element
comprises an internal void; and
- b) Attaching an inlet and an outlet to the base element in fluid communication to
the internal void either also by 3D printing of any other method, such as welding,
brazing or the like.
[0030] Therein the cooling element may have the features as described above or below.
[0031] Figure 3 shows another embodiment wherein the base element 12 comprises a first corrugated
surface 32 as the embodiment of Figures 1 and 2 and also has a second corrugated surface
36 opposite to the first corrugated surface 32 wherein both are built identically
by grooves. Thus, the opposite surface, i.e. the lower surface defining the void in
between are built as corrugated surfaces. Therein, the base element 12 is placed into
a connecting element 38 which is then connected to the surface 26 of a housing 28
of the vacuum pump. Therein the base element 12 might be casted into the connecting
element 28 which is preferably made from aluminum. Thereby, both surfaces can be built
as corrugated surfaces enhancing the possibility to take up heat by the coolant. In
addition, features of Figure 3 which are the same or similar to features of the former
figures are indicated by the same reference numbers.
[0032] Therein, in Figure 3, the flat base element is parallel arranged in the connecting
element 38 to the surface 26 of the housing of the vacuum pump. Therein, parallel
means that the bottom surface 24 and/or the top surface 30 of the base element 12
are parallel to the surface of the housing of the vacuum pump. Alternatively, the
base element 12 can be arranged perpendicular within the connecting element 38 relative
to the surface of the housing of the vacuum pump.
[0033] Figure 4 shows a wire mesh turbulator as turbulator element 40 which can be introduced
into the void, in particular, if the void is built as pipe in order to ensure turbulent
flow within the void, i.e. pipe.
1. A vacuum pump comprising:
a housing (28) and a cooling element (10), the cooling element comprising:
a base element (12), wherein by the base element (12) an internal void (20) is defined,
an inlet (14) connected to the base element (12) and in fluid connection with the
void (20) and
an outlet (16) connected to the base element (12) and in fluid connection with the
void (20) such that a coolant can flow from the inlet (14) through the void (20) to
the outlet (16) to dissipate heat,
wherein the base element (12) is connected to the housing (28) of the vacuum pump,
characterized in that
the void (20) has a flat shape such that the width of the void (20) is more than twice
as large as the height of the void (20), and the height of the void (20) is less than
3mm; and in that
the internal void (20) comprises at least one corrugated surface (32, 36) to create
turbulent flow within the void (20), wherein the at least one corrugated surface (32,
36) provides grooves (32) or ribs (33) which are arranged perpendicular to the direction
of flow through the void (20).
2. The vacuum pump according to claim 1, characterized in that the base element (12) has a flat shape.
3. The vacuum pump according to any of claims 1 or 2, characterized in that the base element (12) comprises a bottom surface (24) to be directly attached to
a surface (26) of the housing (28) of the vacuum pump.
4. The vacuum pump according to claim 3, characterized in that the material thickness between the bottom surface (24) and the void (20) is less
than 3mm, preferably less than 2mm and more preferably less than 1mm.
5. The vacuum pump according to any of claims 1 to 4, characterized by a turbulator element (40) disposed within the void (20) to create turbulent flow
within the void (20).
6. The vacuum pump according to any of claims 1 to 5, characterized in that the base element (12) is one piece.
7. The vacuum pump according to any of claims 1 to 6, characterized in that the base element (12) is fabricated by 3D printing.
8. The vacuum pump according to any of claims 1 to 7, characterized in that the base element (12) is surrounded by a connecting element (38) directly connected
to the housing (28) of the vacuum pump.
9. The vacuum pump according to claim 8, characterized in that the connecting element (38) is made from aluminum.
10. The vacuum pump according to any of claims 1 to 9, characterized in that the base element (12) is made of stainless steel.
1. Vakuumpumpe umfassend:
ein Gehäuse (28) und ein Kühlelement (10), wobei das Kühlelement umfasst:
ein Basiselement (12), wobei durch das Basiselement (12) ein interner Hohlraum (20)
definiert ist,
einen Einlass (14), verbunden mit dem Basiselement (12) und in Fluidverbindung mit
dem Hohlraum (20), und
einen Auslass (16), verbunden mit dem Basiselement (12) und in Fluidverbindung mit
dem Hohlraum (20), sodass ein Kühlmittel vom Einlass (14) durch den Hohlraum (20)
zum Auslass (16) strömen kann, um Wärme abzuführen,
wobei das Basiselement (12) mit dem Gehäuse (28) der Vakuumpumpe verbunden ist,
dadurch gekennzeichnet, dass
der Hohlraum (20) eine flache Form aufweist, sodass die Breite des Hohlraums (20)
mehr als doppelt so groß wie die Höhe des Hohlraums (20) ist und die Höhe des Hohlraums
(20) kleiner als 3 mm ist; und dadurch, dass
der interne Hohlraum (20) mindestens eine gewellte Oberfläche (32, 36) umfasst, um
in dem Hohlraum (20) eine turbulente Strömung zu erzeugen, wobei die mindestens eine
gewellte Oberfläche (32, 36) Rillen (32) oder Rippen (33), die senkrecht zur Strömungsrichtung
durch den Hohlraum (20) angeordnet sind, bereitstellt.
2. Vakuumpumpe nach Anspruch 1, dadurch gekennzeichnet, dass das Basiselement (12) eine flache Form aufweist.
3. Vakuumpumpe nach einem der Ansprüche 1 oder 2, dadurch gekennzeichnet, dass das Basiselement (12) eine Unterseite (24), die direkt an einer Oberfläche (26) des
Gehäuses (28) der Vakuumpumpe anzubringen ist, umfasst.
4. Vakuumpumpe nach Anspruch 3, dadurch gekennzeichnet, dass die Materialdicke zwischen der Unterseite (24) und dem Hohlraum (20) kleiner als
3 mm, vorzugsweise kleiner als 2 mm und stärker bevorzugt kleiner als 1 mm ist.
5. Vakuumpumpe nach einem der Ansprüche 1 bis 4, gekennzeichnet durch ein Turbulatorelement (40), angeordnet innerhalb des Hohlraums (20), um innerhalb
des Hohlraums (20) turbulente Strömung zu erzeugen.
6. Vakuumpumpe nach einem der Ansprüche 1 bis 5, dadurch gekennzeichnet, dass das Basiselement (12) ein Stück ist.
7. Vakuumpumpe nach einem der Ansprüche 1 bis 6, dadurch gekennzeichnet, dass das Basiselement (12) durch 3D-Drucken hergestellt ist.
8. Vakuumpumpe nach einem der Ansprüche 1 oder 7, dadurch gekennzeichnet, dass das Basiselement (12) von einem direkt mit dem Gehäuse (28) der Vakuumpumpe verbundenen
Verbindungselement (38) umgeben ist.
9. Vakuumpumpe nach Anspruch 8, dadurch gekennzeichnet, dass das Verbindungselement (38) aus Aluminium hergestellt ist.
10. Vakuumpumpe nach einem der Ansprüche 1 bis 9, dadurch gekennzeichnet, dass das Basiselement (12) aus nicht rostendem Stahl hergestellt ist.
1. Pompe à vide comprenant:
un boîtier (28) et un élément de refroidissement (10), l'élément de refroidissement
comprenant:
un élément de base (12), dans laquelle par l'élément de base (12) un vide interne
(20) est défini,
une entrée (14) reliée à l'élément de base (12) et en liaison fluidique avec le vide
(20) et
une sortie (16) reliée à l'élément de base (12) et en liaison fluidique avec le vide
(20) de sorte qu'un fluide de refroidissement peut s'écouler depuis l'entrée (14)
à travers le vide (20) jusqu'à la sortie (16) pour dissiper la chaleur,
dans laquelle l'élément de base (12) est relié au boîtier (28) de la pompe à vide,
caractérisée en ce que
le vide (20) a une forme plate de sorte que la largeur du vide (20) est plus de deux
fois supérieure à la hauteur du vide (20), et la hauteur du vide (20) est inférieure
à 3 mm; et en ce que
le vide interne (20) comprend au moins une surface ondulée (32, 36) pour créer un
écoulement turbulent à l'intérieur du vide (20), dans laquelle la au moins une surface
ondulée (32, 36) présente des rainures (32) ou des nervures (33) qui sont disposées
perpendiculairement à la direction d'écoulement à travers le vide (20).
2. Pompe à vide selon la revendication 1, caractérisée en ce que l'élément de base (12) a une forme plate.
3. Pompe à vide selon l'une quelconque des revendications 1 ou 2, caractérisée en ce que l'élément de base (12) comprend une surface inférieure (24) destinée à être fixée
directement à une surface (26) du boîtier (28) de la pompe à vide.
4. Pompe à vide selon la revendication 3, caractérisée en ce que l'épaisseur de matériau entre la surface inférieure (24) et le vide (20) est inférieure
à 3 mm, de préférence inférieure à 2 mm, et de préférence encore inférieure à 1 mm.
5. Pompe à vide selon l'une quelconque des revendications 1 à 4, caractérisée par un élément turbulateur (40) disposé à l'intérieur du vide (20) pour créer un écoulement
turbulent à l'intérieur du vide (20).
6. Pompe à vide selon l'une quelconque des revendications 1 à 5, caractérisée en ce que l'élément de base (12) est monobloc.
7. Pompe à vide selon l'une quelconque des revendications 1 à 6, caractérisée en ce que l'élément de base (12) est fabriqué par impression 3D.
8. Pompe à vide selon l'une quelconque des revendications 1 à 7, caractérisée en ce que l'élément de base (12) est entouré par un élément de liaison (38) relié directement
au boîtier (28) de la pompe à vide.
9. Pompe à vide selon la revendication 8, caractérisée en ce que l'élément de liaison (38) est en aluminium.
10. Pompe à vide selon l'une quelconque des revendications 1 à 9, caractérisée en ce que l'élément de base (12) est en acier inoxydable.