The field of the disclosure relates generally to induction heating, and more specifically, to methods and an apparatus for heating a material.
Adhesive-based materials, or appliqués, are widely used for both decoration and protection of various surfaces. For example, appliqués may be used on various types of vehicles such as automobiles, aircraft, and/or boats. At least some known appliqués require a uniform adhesion to an installation surface to prevent wrinkles, tears, bubbles, and/or creases. However, known methods of appliqué installation involving applying pressure with fingertips or with a scraper, are generally time-consuming and labor intensive processes. Moreover, such methods may be particularly difficult for some applications, such as with aircraft surfaces that are commonly studded with fasteners, such as, for example, rivets, screws, and the like, which have heads that protrude above the aircraft surface. Such protrusions may create bubbles in the appliqué which may be unacceptable according to the specification requirements of the appliqué. Moreover, the protrusions may make it difficult to apply uniform pressure to the appliqué to ensure correct bonding of the appliqué's adhesive backing to the aircraft surface.
Moreover, some appliqués may require specific temperature ranges for proper adhesion to the installation surface. As such, it may be difficult to make quick repairs without moving the installation surface into a controlled environment. To prevent from moving the surface into a controlled environment, at least some known methods use a heat gun to warm the installation surface before the appliqué is applied. However, such methods do not enable temperature control, and as such, a user cannot know whether the surface is too hot or too cold, which may result in poor adhesion of the appliqué to the installation surface.
In one aspect, an apparatus for heating a material is provided. The apparatus includes a roller that includes at least one susceptor contained therein, and at least one induction coil coupled to the roller. The induction coil is configured to induce a magnetic field in the susceptor to facilitate increasing a temperature of the roller.
In another aspect, a method is provided for heating a material using a roller. The method includes inducing a magnetic field in at least one susceptor contained in the roller using at least one induction coil coupled to the roller, and contacting the material with the roller.
In yet another aspect, a method is provided for installing an apliqué. The method includes positioning the appliqué on an installation surface, the appliqué including an adhesive for adhering to the installation surface. The method further includes heating the appliqué using a heating apparatus that includes a roller having at least one susceptor contained therein and at least one induction coil coupled to the roller, the at least one induction coil configured to induce a magnetic field in the at least one susceptor to facilitate increasing a temperature of the roller.
As used herein, an element or step recited in the singular and proceeded with the word “a” or “an” should be understood as not excluding plural elements or steps unless such exclusion is explicitly recited. Furthermore, references to “one implementation” of the present invention or the “exemplary implementation” are not intended to be interpreted as excluding the existence of additional implementations that also incorporate the recited features.
The exemplary methods and apparatus described herein relate to using induction heating to heat a material. In general, the exemplary implementations generate a magnetic field using an induction coil coupled to a roller. The magnetic field induces eddy currents in susceptors contained in the roller to generate heat. As a result, a temperature controlled heating apparatus is provided that is accurate and convenient for a user.
In the exemplary implementation, roller 102 is a hollow cylindrical body that is rotatable about its longitudinal axis A-A. Roller 102 has a length L and is formed of a non-electrically conductive material. In the exemplary implementation, roller 102 is a handheld device that is easily portable. Moreover, in the exemplary implementation, roller 102 has a length L between 4 inches and 8 inches. In other implementations, roller 102 may have any length L that enables roller 102 to function as described herein. In the exemplary implementation, roller 102 has sufficient flexibility in an axial direction to enable flexible contact with a surface (not shown in
As portions of smart susceptors 200 are heated to the Curie temperature, the magnetic permeability of those portions is reduced, thus limiting generation of heat by those portions at the Curie temperature. Susceptors 200 are variably selected to have a Curie temperature that is appropriate for each individual application. In the exemplary implementation, when a desired maximum operating temperature of heating apparatus 100 is known, a thickness (if a sheet) or a diameter (if wires) of susceptors 200 may be calculated to achieve a particular Curie temperature for susceptors 200. Moreover, the frequency required to reach a particular Curie temperature is at least partially dependent on the diameter of susceptors 200. For example, smaller diameter of susceptors 200 reduces the weight of heating apparatus 100, and generally operates at higher frequencies.
Induction coil 104 is coupled to a power supply (not shown) to enable electrical current to be generated in induction coil 104. The current induces a magnetic field in roller 102. More specifically, in the exemplary implementation, the power supply supplies a high-frequency electric current to induction coil 104. More specifically, in the exemplary implementation, the power supply supplies an alternating current within a range of approximately 10 kHz to 4 MHz.
In some implementations, housing 106 may be coupled about induction coil 104 to facilitate shielding a user from magnetic fields produced by induction coil 104. Housing may be fabricated from a ferrite or magnetic metal cladding coupled about an outer surface of induction coil 104. End caps 108 may also be coupled to each end 110 and 112 (shown in
During operation, in the exemplary implementation, the power supply generates electrical current in induction coil 104, which induces a magnetic field in the interior of roller 102. More specifically, induction coil 104 induces eddy currents in susceptors 200 causing susceptors 200 to increase in temperature until susceptors 200 reach their Curie temperature.
As heating apparatus 100 is traversed, i.e., rolled, along an installation surface (not shown), portions of roller 102 within induction coil 104 are continuously reheated to maintain the Curie temperature required for the particular application. As roller 102 is moved out of induction coil 104 and contacts the installation surface, roller 102 transfers heat to the surface. By the time the temperature of a portion of roller 102 external to induction coil 104 starts to lower, that portion reenters the area within induction coil 104 to be reheated. Overheating of heating apparatus 100 is prevented by the Curie temperature intrinsic to susceptors 200. Underheating is prevented by operating roller 102 at or below a predefined rotational speed for the specific application.
Although described herein as being used to heat an appliqué for installation on a surface, heating apparatus may also be used to facilitate appliqué removal. Appliqués are designed to stay on surfaces regardless of the environment they are used in. However, heating apparatus 100 may be used to heat the adhesive used to secure these appliqués to a high enough temperature such that the appliqués may be peeled off the surface.
In the exemplary implementation, as eddy currents are induced in susceptors 200, electrical current is supplied 404 to induction coil 104 and heat is generated 406 from the magnetic field within the interior of a solenoid formed by induction coil 104. The material is contacted 408 with roller 102. In the exemplary implementation, the method also includes preventing 410 overheating of roller 102 after a Curie temperature of the at least one susceptor 200 is obtained, and preventing 412 underheating of roller 102 by controlling a rotational speed of roller 102.
In the exemplary implementation, after the appliqué is positioned, the appliqué is heated 504 using a heating apparatus that includes a roller having at least one susceptor contained therein and at least one induction coil coupled to the roller, the at least one induction coil configured to induce a magnetic field in the at least one susceptor to facilitate increasing a temperature of the roller. In one implementation, heating the appliqué includes supplying electrical current to the at least one induction coil, generating heat using the magnetic field within the interior of a solenoid formed by the induction coil, and contacting the appliqué with the heating apparatus to heat the adhesive. In another implementation, heating the appliqué includes heating the appliqué to a predetermined temperature using the heating apparatus.
In the exemplary implementation, the method of installing an appliqué may further include rolling the heating apparatus about the appliqué to induce adhesion of the appliqué to the installation surface.
Referring more particularly to the drawings, embodiments of the disclosure may be described in the context of an aircraft manufacturing and service method 600 as shown in
Each of the processes of method 600 may be performed or carried out by a system integrator, a third party, and/or an operator (e.g., a customer). For the purposes of this description, a system integrator may include without limitation any number of aircraft manufacturers and major-system subcontractors; a third party may include without limitation any number of venders, subcontractors, and suppliers; and an operator may be an airline, leasing company, military entity, service organization, and so on.
As shown in
Apparatus and methods embodied herein may be employed during any one or more of the stages of the production and service method 600. For example, components or subassemblies corresponding to production process 608 may be fabricated or manufactured in a manner similar to components or subassemblies produced while the aircraft 702 is in service. Also, one or more apparatus embodiments, method embodiments, or a combination thereof may be utilized during the production stages 608 and 610, for example, by substantially expediting assembly of or reducing the cost of an aircraft 702. Similarly, one or more of apparatus embodiments, method embodiments, or a combination thereof may be utilized while the aircraft 702 is in service, for example and without limitation, to maintenance and service 616.
The description of the different advantageous implementations has been presented for purposes of illustration and description, and is not intended to be exhaustive or limited to the implementations in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art. Further, different advantageous implementations may provide different advantages as compared to other advantageous implementations. The implementation or implementations selected are chosen and described in order to best explain the principles of the implementations, the practical application, and to enable others of ordinary skill in the art to understand the disclosure for various implementations with various modifications as are suited to the particular use contemplated. This written description uses examples to disclose various implementations, which include the best mode, to enable any person skilled in the art to practice those implementations, including making and using any apparatuses or systems and performing any incorporated methods. The patentable scope is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.