APPARATUS AND METHODS FOR MANUFACTURING HIGH-DENSITY COIL WITH FORMED COOLING CHANNELS
20210234424 · 2021-07-29
Assignee
Inventors
Cpc classification
H02K15/0093
ELECTRICITY
International classification
H02K3/24
ELECTRICITY
H02K15/00
ELECTRICITY
Abstract
A conductive coil for an electric application having a cooling channel for a coolant liquid or gas. The coil includes a wire winding of a plurality of wire turns. The wire winding is compressed about a cooling channel which is disposed between adjacent turn segments of the plurality of wire turns. The wire winding is formed and pressed against a shaping element to form the coolant channel within the compressed winding.
Claims
1. A coil for an electric application, the coil comprising: a winding including a plurality of winding turns of at least one coil element wound about a winding axis, wherein the winding comprises a cooling channel extending a length of the winding.
2. The coil of claim 1, further comprising: a wire winding including a plurality of wire turns of at least one wire wound about the winding axis, wherein the wire winding comprises a cooling channel disposed between adjacent turn segments of the plurality of wire turns.
3. The coil of claim 2, wherein the wire winding is compressed at least partially about the cooling channel.
4. The coil of claim 1, wherein the cooling channel extends at least substantially perpendicular to the winding axis.
5. The coil of claim 1, wherein an outer side of the winding comprises the cooling channel.
6. The coil of claim 5, wherein the cooling channel comprises a channel groove in the outer side of the winding.
7. The coil of claim 1, wherein the cooling channel is formed between at least two protuberances extending from an outer side of the winding.
8. The coil of claim 1, wherein the cooling channel is surrounded on all sides by a plurality of winding turns.
9. The coil of claim 1, further comprising a closure covering the cooling channel.
10. The coil of claim 9, wherein the cooling channel is configured to face a stator frame, and the stator frame covers and closes the cooling channel.
11. The coil of claim 1, wherein the cooling channel is press-formed into the wire winding.
12. The coil of claim 1, wherein the cooling channel is formed between two partial windings or separate coils.
13. The coil of claim 1, further comprising a manifold disposed over at least one side of the winding, the manifold connected to the cooling channel.
14. A coil for an electric application, the coil comprising: a compressed wire winding including a plurality of wire turns of at least one wire wound about a winding axis, wherein the wire winding is compressed at least partially about a cooling channel.
15. The coil of claim 14, wherein the cooling channel is press-formed into the wire winding between adjacent turn segments of the plurality of wire turns.
16. The coil of claim 14, wherein the cooling channel comprises a channel groove in an outer side of the wire winding or a partial subwinding.
17. A method of forming a coil for an electric application, the method comprising: winding a wire about a bobbin element to obtain a wire winding; compressing the wire winding against a shaping element, wherein the shaping element forms a channel groove in the wire winding.
18. The method of claim 17, wherein the wire winding is compressed at least partially about a cooling channel.
19. The method of claim 17, further comprising inserting the coil into a stator frame with the channel groove facing the stator frame.
20. The method of claim 17, further comprising: inserting the coil into a stator frame; and molding a manifold over the coil, wherein the manifold is configured to introduce a coolant to the cooling channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0031] The present invention provides a coil winding, for use as, for example, an electric motor coil, an inductor coil, a reactor coil, or a transformer coils. Exemplary coils are commonly referred to as a field coil/winding, an armature coil/winding, a stator coil/winding, a rotor coil/winding, etc. Coils of this invention provide for higher torque and power density in electric machines. Example applications include pure or hybrid electric vehicles, electric aircraft, electric drones, generators, servo motors, etc.
[0032] The invention further includes an apparatus and method for die compression as a means for increasing slot fill and providing a cooling functionality. The advantages of the invention include providing coils or windings using higher current densities due to improved heat transfer and thermal management. The coils of this invention desirably have both a high slot fill (the amount of copper cross-sectional area as a proportion of the slot area) and a press-formed cooling channel for through-slot fluid (e.g., gas or liquid) cooling. Better cooling of the windings can also improve the efficiency of electric machines.
[0033] Coil embodiments of the invention include at least one cooling channel, each allowing for a flow of a liquid or gas coolant. The cooling channel(s) are desirably formed during the manufacturing of the high-density coils. The cooling channel features allow for direct cooling of the conductors in the coil with no additional thermal interfaces to maximize the heat transfer. If direct liquid or gas cooling is not desired, the formed channel can be coated or inserted with another channel element, e.g., a tube, to encapsulate the coolant.
[0034] Embodiments of the invention include one or more cooling channels formed in the coil/winding through the use of a compression die. The die compressed windings have a high slot fill factor, i.e., the proportion of conductor to the non-conductor area is high. A high compression force is used, and the conductors may deform, in the process to reduce or eliminate air voids. The deformation of the conductors and elimination of the air voids can also prevent leakage of the liquid or gas in the formed channels. Additional encapsulant maybe used to seal any leakage. The position and shape of the formed channel can vary depending on need or other factors such as the winding configuration, e.g., a single or double layer in an electric machine slot or if multiple subcoils are used in the slot.
[0035]
[0036] The coil 20 includes two cooling channels 30 and 32. The cooling channels 30 and 32 are formed as a channel groove in an outer side surface of the wire winding 22. The channel groove extends a full length of the coil 20, perpendicular to the winding axis W, and is open at turn ends 28 of the coil 20, as best shown in
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[0039] The appropriate surface of the die component corresponding to the side(s) of the coil where the channel is desired will have a shaped surface to displace the compressed wire segments and form the cooling channel. The shaped feature(s) that form the cooling channel maybe positive or negative. As shown in
[0040] Positive or negative features are added to the surfaces of compression dies to form channels or protuberances to carry liquid or gas coolants. The surface of the compression die may also be textured to enhance the heat transfer properties of the coil through increased surface area and the formation of turbulence, such as within or external of the channel(s). In addition to features added to the surface of compression dies, additional shaping objects can be inserted into the compression dies to form channels inside the coils.
[0041] Various sizes, shapes, amounts, and/or configurations of the cooling channels are available, depending on need. The cooling channels can be straight or curved, and extend in one or more surfaces, such as, for example, wrapping around more than one side for example, a helical configuration.
[0042] In embodiments of this invention, the coil is placed into the support structure (e.g., stator or equivalent) with the cooling channel facing a surface of the support.
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[0044] In embodiments of this invention, the coil alternatively or additionally includes one or more central cooling channels, such as fully surrounded on all sides by wire turn segments. Cooling channels in the middle of the coil, and thus the stator slot, can be formed, for example, by forming two separate subwinding pieces 450 each with a cooling channel feature 452.
[0045]
[0046] To form a single compressed coil with an internal cooling channel (i.e., at least not fully open on one coil side) an additional shaping object can be inserted into the pre-compression wire winding, compressed with the coil and extracted.
[0047] Various sizes, shapes, amounts, and/or configurations of the cooling channels are also available, depending on need. The central channel can also be used in combination with at least one surface groove, either connected continually or sporadically along a length, or fully separate along a length.
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[0049] Thus, the invention provides a winding coil for electrical applications with enhanced cooling. The cooling channel can be applied in various configurations depending on need. The cooling channel provides a relatively easy to apply cooling feature, adaptable to various winding coil shapes.
[0050] The invention illustratively disclosed herein suitably may be practiced in the absence of any element, part, step, component, or ingredient which is not specifically disclosed herein.
[0051] While in the foregoing detailed description this invention has been described in relation to certain preferred embodiments thereof, and many details have been set forth for purposes of illustration, it will be apparent to those skilled in the art that the invention is susceptible to additional embodiments and that certain of the details described herein can be varied considerably without departing from the basic principles of the invention.