The present invention relates, in general, to a knob assembly. More specifically, the present invention relates to a push button rotary knob assembly which provides contactless control of an electronic device residing in a housing, without direct physical contact with the interior of the housing.
In many electronic housings, in which space is at a premium, control functions are often consolidated in a single control knob. For example, a rotary knob which has several rotational positions for activating several electronic functions may be combined with a push button switch, which may have only one function for turning the electronics on/off. While enabling multiple control functions of the electronics in the housing, the rotary-push button control knob complicates the assembly of the housing and makes replacement of the control knob difficult.
An control knob of this type typically requires protrusion into the housing of the electronics, in order to transmit the various controls to the electronics. The protrusion creates an opening into the housing which may allow environmental contamination and electromagnetic interference (EMI) into the electronics.
To mitigate the risks associated with environmental contamination and EMI, operator control knobs of this type have utilized O-rings, gaskets, or other applied sealants. This, in turn, may be messy and may further complicate the assembly or maintenance of the control knob. Furthermore, because the control knob requires a protruding member to be inserted into the housing, the protruding member occupies a portion of the internal volume of the housing which may be better used for other purposes.
As will be explained, the present invention provides a rotary knob assembly that has advantages over conventional rotary knob assemblies, because the rotary knob assembly of the present invention does not require any intrusion into the housing, nor direct contact with the internal electronics of the housing. As will be described, the present invention provides a push button rotary knob assembly which contactlessly controls an electronic device, without protrusion into the housing of the electronics and without direct contact with the electronics.
To meet this and other needs, and in view of its purposes, the present invention provides a push button rotary knob assembly including an encoder disposed internally within a housing and a rotary knob disposed externally to the housing. A boundary surface of the housing is interposed between the encoder and the rotary knob and physically isolates the interior of the housing from the rotary knob. The boundary surface prevents environmental leakage and electromagnetic interference from entering the housing. The encoder is configured to decode the angular orientation of the rotary knob and transmit a corresponding control function to the electronics within the housing.
Another embodiment of the present invention provides an operator control unit including a push button rotary knob assembly. The push button rotary knob assembly includes an encoder disposed internally within a housing and a rotary knob disposed externally to the housing. The rotary knob provides rotational movement to the operator control unit. A push button is disposed within the rotary knob, providing axial translation of the push button. The push button may be depressed independently of any rotational movement to the rotary knob. A boundary surface of the housing is interposed between the encoder and the rotary knob and physically isolates the interior of the housing from the rotary knob. The boundary surface prevents environmental leakage and electromagnetic interference from entering the housing. The encoder is configured to decode the angular orientation of the rotary knob and the axial translation of the push button.
Furthermore, the present invention includes a method of controlling an electronic device disposed within a housing. The electronic device may be controlled by the steps of: (a) depressing a rotary knob disposed externally to the housing, (b) axially rotating the rotary knob, and (c) contactlessly communicating the translational and rotational positions of the rotary knob to an encoder disposed internally within the housing, without any physical contact between the rotary knob and the encoder. The encoder then decodes the translational and rotational positions of the rotary knob and transmits at least one control function to the electronic device.
It is understood that the foregoing general description and the following detailed description are exemplary, but are not restrictive, of the invention.
The invention is best understood from the following detailed description when read in connection with the accompanying drawings. Included in the drawings are the following figures:
The present invention includes a push button rotary knob assembly. As will be explained, the knob assembly provides rotational movement and translational travel along an axis. Unlike conventional knobs and switches, the present invention controls electronics within a housing, without requiring protrusion into the housing. The components of the present invention may operate without need for O-rings, gaskets, or any other applied sealants.
The push button rotary knob assembly of the present invention offers many advantages, because no portion of the rotary knob protrudes through the housing. For example, (1) there is no leakage path into the housing where environmental contamination or electromagnetic interference (EMI) may enter; (2) the internal volume of the housing, which is dedicated as an interface to the rotary knob, is much smaller than the internal volume required by a conventional rotary knob with the same control functions; (3) a large boss on the housing may be used to guide the rotation of the rotary knob, because the boss does not have to intrude into the housing; and (4) no messy sealants or adhesives are necessary to seal the rotary knob and any housing interface to the rotary knob.
In addition, conventional knobs and switches require multiple steps and tools to assemble the components of the switch assembly. The push button rotary knob assembly of the present invention, on the other hand, simplifies the assembly process. For example, (1) the rotary knob may be assembled and replaced without any tools; and (2) the rotary knob may be assembled and replaced without need to access the interior of the housing, thereby avoiding exposure of the internal components of the housing to environmental contaminants or electromagnetic interference. Furthermore, should the rotary knob be damaged, the housing seal is not compromised. These and other benefits may be understood by referring to the following description together with the figures.
Referring first to
The rotational and translational positions of magnet 22 are read by encoder 32, disposed internally to housing 24 (shown in
A snap dome 20 resides between push button 16 and external boundary surface 24c. The snap dome 20 is positioned with its central portion curved away from the housing in order to bias push button 16 away from external boundary surface 24c.
The O-rings 14 and 18 are optional in the present invention, but may be included to seal the rotary knob assembly and keep particulates from building up within the interior of rotary knob assembly 10.
The push button rotary knob assembly 10 engages housing 24 at housing boss 24b, as shown in
In operation, the push button rotary knob assembly includes rotational movement about z-axis 30 and translational travel along z-axis 30. The push button 16, which is inserted within the rotary knob, may be depressed along z-axis 30 toward housing 24, independently of any rotational movement to knob 12. The spring-like bias of snap dome 20 provides tactile feedback to a user upon depressing the push button to activate the electronics within the housing. The snap dome 20 springs back, forcing the push button to also spring back, when depression of the push button is stopped.
The angular and translational positions of magnet 22 with respect to z-axis 30 may be changed by sequentially depressing, rotating and releasing rotary knob 12. This change may be decoded, or interpreted by encoder 32 (
The snap dome 20 may be placed within a core of housing boss 24b beneath magnet 22 and push button 16 (
Because of its contactless communication capability, the rotary knob assembly 10 is ideally suited for harsh environments. It is reliable and immune from adverse environmental conditions, such as dust, moisture, vibration and electromagnetic interference. The magnet 22 and encoder 32 may be separated across boundary surface 24c by a thickness T varying between 0.5-1.8 mm (for example).
Although the invention is illustrated and described herein with reference to specific embodiments, the invention is not intended to be limited to the details shown. Rather, various modifications may be made in the details within the scope and range of equivalents of the claims and without departing from the invention.