This specification describes a loudspeaker device that is a component of an audio system for a vehicle, such as a passenger vehicle or truck, or some other vehicle with a cabin, such as a construction vehicle, a farm vehicle, a military vehicle, or the like. Audio systems for vehicles typically include speakers positioned about the vehicle cabin, in locations such as the doors, the parcel shelves, the pillars, or the like. The audio signals for the speakers are typically equalized and amplified for each speaker and conducted to the individual speakers through wiring harnesses.
In one aspect, an apparatus includes an audio module for use in a vehicle cabin. The audio module includes an elongated substantially sealed enclosure having two ends in the lengthwise direction; a first acoustic driver mounted in the enclosure near one end of the enclosure for radiating acoustic energy from the one end of the enclosure; a second acoustic driver mounted in the enclosure near a second end of the enclosure for radiating acoustic energy from the second end of the enclosure; a bass augmenting for radiating low frequency acoustic energy from the enclosure. The audio module is constructed and arranged to be pre-assembled so that the audio module can be installed in the vehicle as a single assembly. The audio module is configured to be mounted to the vehicle so that the lengthwise direction is substantially vertical with the first end of the enclosure higher than the second end of the enclosure. The audio module may be configured to be mounted to an instrument panel of the vehicle so that the first acoustic driver radiates acoustic energy from an upper surface of the instrument panel, and so that the second acoustic driver and the bass augmenting device radiate acoustic energy from a lower surface of the instrument panel. The bass augmenting device comprises a plurality of passive radiators each including a passive radiator diaphragm. The passive radiators mounted in openings in the acoustic enclosure so that in operation, the inertial forces of the passive radiator diaphragms cancel. The volume of the elongated substantially sealed enclosure is greater than 1.5 liters and the first acoustic driver and the second acoustic driver are separated by at least 200 mm. The first acoustic driver and the second acoustic driver may be substantially full range acoustic drivers and the bass augmenting device may radiate acoustic energy below 100 Hz. The apparatus may further include a single receptacle for connection with a single wiring harness. The radiating element of the bass augmenting device may be closer to the second end of the enclosure than to the first end of the enclosure. The vehicle cabin may be configured so that there is an acoustic null of radiation from the first acoustic driver at a predetermined position in the vehicle cabin in a predetermined frequency range. The apparatus may include circuitry to cause the second acoustic driver to radiate in the predetermined frequency range and to roll off radiation from the second acoustic driver above and below the frequency range. The first end and the second end may be planar and the plane of the first end and the plane of the second end may be parallel or non-parallel.
In another aspect, an audio system for an automobile includes an acoustic module including an elongated substantially sealed enclosure having two ends in the lengthwise direction; a first acoustic driver mounted in one of the ends; a second acoustic driver mounted in the second end; and a first bass augmenting for radiating low frequency acoustic energy from the enclosure, mounted in the side of the enclosure, mounted near the second end. The acoustic module may be mounted in a vehicle cabin so that the first end faces substantially vertically upward from the upper surface on an instrument panel and the second end may face vertically downward into the footwell of the vehicle. The bass augmenting device may include a plurality of passive radiators each including a passive radiator diaphragm. The radiators may be mounted in openings in the acoustic enclosure so that in operation, the inertial forces of the passive radiator diaphragms cancel. The elongated enclosure may be substantially sealed and the volume of the substantially sealed enclosure may be greater than 2 liters and the first acoustic driver and the second acoustic driver may be separated by at least 300 mm. The first acoustic driver and the second acoustic driver may be substantially full range acoustic drivers. The bass augmenting device are passive radiators tuned to 55 Hz. The apparatus may further include a single receptacle for connection with a single wiring harness. The radiating element of the bass augmenting device may be closer to the second end of the enclosure than to the first end of the enclosure. The vehicle cabin may be configured so that there is an acoustic null of radiation from the first acoustic driver at a predetermined position in the vehicle cabin in a predetermined frequency range. The apparatus may include circuitry to cause the second acoustic driver to radiate in the predetermined frequency range and to roll off radiation from the second acoustic driver above and below the frequency range.
In another aspect, a method includes radiating, from the top of an instrument panel of a vehicle, acoustic energy from a first acoustic driver mounted near the end of an enclosure; radiating, into the footwell of the vehicle, acoustic energy from a second acoustic driver mounted near a second end of the enclosure; radiating, into the footwell of the vehicle, acoustic energy from a bass augmenting device mounted near the second end. The enclosure may be in the form of a rectangular prism, and the length of one edge of the prism may be more than four times the length of any other edge of the prism. The bass augmenting device may be a passive radiator. The vehicle cabin may be configured so that there is an acoustic null of radiation from the first acoustic driver at a predetermined position in the vehicle cabin in a predetermined frequency range, and the radiating into the footwell may include radiating in the predetermined frequency range and rolling off radiation from the second acoustic driver above and below the predetermined frequency range.
Other features, objects, and advantages will become apparent from the following detailed description, when read in connection with the following drawing, in which:
Though the elements of several views of the drawing may be shown and described as discrete elements in a block diagram and may be referred to as “circuitry”, unless otherwise indicated, the elements may be implemented as one of, or a combination of, analog circuitry, digital circuitry, or one or more microprocessors executing software instructions. The software instructions may include digital signal processing (DSP) instructions. Operations may be performed by analog circuitry or by a microprocessor executing software that performs the mathematical or logical equivalent to the analog operation. Unless otherwise indicated, signal lines may be implemented as discrete analog or digital signal lines, as a single discrete digital signal line with appropriate signal processing to process separate streams of audio signals, or as elements of a wireless communication system. Some of the processes may be described in block diagrams. The activities that are performed in each block may be performed by one element or by a plurality of elements, and may be separated in time. The elements that perform the activities of a block may be physically separated. Unless otherwise indicated, audio signals or video signals or both may be encoded and transmitted in either digital or analog form; conventional digital-to-analog or analog-to-digital converters may not be shown in the figures.
Vehicle cabins present challenges to designers of audio reproduction systems. It may be difficult to place speakers in optimum positions so, for example, each speaker may be significantly closer to one listening location that another location; the positioning of speakers and the large amount of reflective surface (windshields, windows etc.) may cause “hotspots” and nulls in the vehicle cabin; acoustic radiation, particularly at high amplitudes and low frequencies may result in mechanical vibration, resulting in buzzes and rattles; some speaker locations, for example doors, may be exposed environmentally, for example to moisture, detergents, and the like; and openings in acoustic devices may allow entry of debris into the enclosure.
For simplicity, the enclosure is shown with planar sides, top, and bottom; with a square cross section in the X-Y plane; and with a straight centerline 24 (
In order to fit into the desired location, the geometry of actual implementations may differ from the simplified view of
While the geometry of the module may be customized to fit into individual car models, a desirable predictability of performance can be achieved by standardizing some components, for example, the acoustic drivers, the passive radiators, and the material from which the enclosure is made. Some dimensions can be standardized, for example the volume enclosed by the enclosure, the volume and cross-sectional area of a port, the length of a waveguide, the dimensions and mass of a passive radiator diaphragm, or the tuning frequency of a port, waveguide, or passive radiator. Generally, the parameters that control acoustic performance can be standardized, while the geometries and dimensions that must be varied to fit into a vehicle cabin do not affect acoustic performance.
An acoustic module according to the previous figures has many advantages over conventional vehicle audio systems. The modules can radiate full range audio, eliminating the need for crossover networks, separate tweeters and woofers, and speakers in doors. Installing the full range module can be done in simple steps, one operation for a full range module as opposed to separate operations for woofers and tweeters. The two acoustic drivers provide two drive points, one above the instrument panel and one under the instrument panels which makes the acoustic system less prone to nulls that occur in vehicle cabins due to geometry, configuration, reflective surfaces, placement of acoustic drivers, and other factors. Placement of the bass augmenting devices near the bottom end of the enclosure desirably radiates bass frequencies near the vehicle floor. The internal (to the module) conductors permit electrical connection to two acoustic drivers through a single wiring harness 28. Conventional full range systems require a wire harness for each acoustic driver and conventional two-way audio systems may require a wire harness for each speaker for a total of four connections instead of the one required in the module of
The audio module of the previous figures can also be adapted for use in other locations of a vehicle cabin. For example, a module may be configured to fit in the rear of the vehicle cabin so that the acoustic driver at one end of enclosure faces upwardly from the parcel shelf, so that the acoustic driver in the second end of the enclosure faces the passenger compartment at a location lower than the first acoustic driver, and the passive radiators radiate low frequencies into the trunk. As with the implementation configured to be used in the front of the vehicle, the rear seat implementation can be custom shaped for the vehicle, but the components, the dimensions and tuning frequency of passive radiators and the volume of the enclosure can be standardized so that the modules have substantially the same acoustic characteristics as the module of
Numerous uses of and departures from the specific apparatus and techniques disclosed herein may be made without departing from the inventive concepts. Consequently, the invention is to be construed as embracing each and every novel feature and novel combination of features disclosed herein and limited only by the spirit and scope of the appended claims.
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Number | Date | Country | |
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20130259258 A1 | Oct 2013 | US |