ELECTRODYNAMIC DRIVE FOR FLAT LOUDSPEAKER SYSTEMS
20220345822 · 2022-10-27
Inventors
Cpc classification
H04R2440/00
ELECTRICITY
H04R2440/05
ELECTRICITY
H04R2440/01
ELECTRICITY
International classification
Abstract
Electrodynamic drive for a flat loudspeaker having an enclosure where the following components are installed: a magnetic system, a cylindrical coil fixed to the frame, a sound-emitting membrane attached to the cylindrical coil former, a system holding the coil within a magnetic gap, and flexible wires for supplying an electrical signal to the coil. While the magnetic system is made as a cylindrical permanent magnet, a ferrite ring with the above mentioned cylindrical magnet and washers, joining them into a single structure.
Claims
1. An electrodynamic drive for flat loudspeaker systems comprising: a cylindrical.sub.[ep1][ZX2][ZX3][ZX4] enclosure with an opening at a first end, said enclosure having disposed therein a magnetic system, and a cylindrical coil having a first end proximate the enclosure opening, and a second end; a membrane located proximate the enclosure opening and attached to the cylindrical coil through said enclosure opening; and flexible wires coupling the cylindrical coil to external contact terminals, wherein the flexible wires are adapted to supply an electrical signal to the cylindrical coil received from the contact terminals, wherein the magnetic system comprises: a cylindrical permanent magnet disposed proximate the cylindrical coil second end; a ferrite ring coaxially surrounding the cylindrical permanent magnet with a cylindrical gap formed therebetween; and two centering washers in the form of concentrically flexible corrugated disks and fixed at a predetermined distance from each other, each washer having a center hole for attaching to the cylindrical coil extending therethrough, and respective outer perimeters attached to the enclosure; and wherein a perimeter of the cylindrical coil at its second end is coaxially located proximate the gap between the cylindrical magnet and the ferrite ring.
2. An electrodynamic drive for flat loudspeaker systems according to claim 1, wherein the centering washers made of untreated fabric.sub.[ep5].
3. An electrodynamic drive for flat loudspeaker systems according to claim 1, wherein the membrane attached to the cylindrical coil by an intermediate ring.
4. An electrodynamic drive for flat loudspeaker systems according to claim 2, wherein the flexible wires are sewn into the fabric of the centering washer proximate the membrane.
5. An electrodynamic drive for flat loudspeaker systems according to claim 1, wherein the two centering washers have different diameters.
Description
[0013] The invention is illustrated by figures.
[0014]
[0015]
[0016]
[0017]
[0018] The figures indicate: [0019] 1. Enclosure, [0020] 2. Permanent cylindrical magnet, [0021] 3. Ferrite ring, [0022] 4. Steel washer, [0023] 5. System holding the coil within a magnetic gap, consisting of two centering washers of different diameters, [0024] 6. Wires supplying an electrical signal to the coil, [0025] 7. Ring, [0026] 8. Contacts, [0027] 9. Cylindrical coil, [0028] 10. Sound-emitting membrane.
[0029] The proposed electrodynamic drive for flat loudspeakers is a device for converting the electrical signal from the power amplifier into the mechanical energy of vibrations of the corresponding frequencies, exciting a resonating type sound-emitting membrane; its application in a flat loudspeaker is demonstrated in
[0030] The device is demonstrated in
[0038] This exciter's distinctive feature is the use of a ring made of ferrite material (ferrite ring) in the magnetic circuit. This material has a high magnetic permeability, despite the fact that its electrical conductivity is quite low. This property does not allow Foucault currents to be induced when the magnetic lines of the moving coil are crossed in the thickness of the magnetic circuit substance. The absence of back-EMF caused by this effect gives a high efficiency of the electrodynamic exciter in the lower frequencies register (about tens of hertz), when the coil vibrations amplitude becomes larger. The higher the movement speed of the magnetic lines crossing the body of the magnetic circuit, the more tangible Foucault currents will oppose the vector of application of the force that generates this speed. Thus, if a steel magnetic circuit is used, as is usually accepted, then the moving coil will “stick” in the opposing magnetic field under the influence of its own motion in the magnetic gap. Using ferrite as a magnetic circuit material leads to such a useful acoustic effect as an increase in efficiency, especially in a low frequency range, which in turn entails the possibility of a significant expansion of the device's operating range, up to the lower limit of audibility of 20 Hz.
[0039] The magnetic circuit of the proposed electrodynamic drive is composite and includes three parts: a permanent magnet of cylindrical or other shape 2, a steel washer 4 and a ferrite ring 3.
[0040] Using two centering washers of different diameters is a means of achieving the following technical result: a decrease in pronounced mechanical resonance at a certain frequency, which coincides with the frequency of the washers' own resonance. Washers with different geometrical parameters and rigidity will have two different frequencies of resonance excitation. As a result of this technical solution, the amplitude-frequency response graph of a loudspeaker equipped with such a drive smoothes out the frequency ejection corresponding to the excitation frequency of the described parts with a significant decrease in amplitude. As a result, the quality of the sound characteristics improves.
[0041] As a result: a loudspeaker equipped with a membrane reproduces a broad-spectrum acoustic signal; no signal filtering tools required; requires a two-channel power amplifier instead of a multi-channel one; reduced size of the product while maintaining consumer qualities; objective quality control parameters of the acoustic system (amplitude-frequency diagram, analysis graph of spectral-frequency magnitude, (spectral signal density), directional diagram of sound signal emission, measurements of phase nonlinear distortions . . . ) demonstrate noticeable advantages over the other acoustic systems. This makes the products equipped with the proposed broadband flat loudspeaker fully suitable for use in sound technology with increased demands on the sound reproduction quality. Including such a “challenging” area as the sound systems for classical music concerts.