JBL Technical Note - Vol.1, No.22 电路原理图.pdf
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1、Technical Notes Volume 1, Number 22 JBLs New Super Vented Gap Maximum Output Low Frequency Transducers Introduction: Super Vented Gap (SVG) technology is the latest development in JBLs on-going improvements in the performance of low frequency transducers. It combines the benefits of JBLs previous SF
2、G and VGC designs with further improvements in distortion reduction and heat sinking. The result is two outstanding new transducers, the models 2227H (380 mm) and 2242H (460 mm), which provide greater maximum output capability in their respective performance classes than previous JBL transducers. Te
3、chnology Review: JBLs Symmetrical Field Geometry was developed in the 1 970s primarily as a means of eliminating dc flux modulation by the signal current in the voice coil. This problem had been traditionally associated with ferrite magnets, and as the industry moved away from Alnico V magnet materi
4、al, it was essential that we solve this problem. Basically, what happens in the normal ferrite structure is that the B-H curve (magnetization characteristic) of the ferrite material is such that strong program currents in the voice coil generate a magnetic field that alternately adds to and subtract
5、s from the static permanent field of the ferrite, varying the operating point along the B-H curve. The essence of SFG is the aluminum flux shorting ring located at the base of the pole piece. With its approximately one square centimeter cross-section area, the shorting ring has a resistance that is
6、measured in the thousandths of an ohm. Considerable current is induced into it by transformer action involving the voice coil and the magnetic return path. The countercurrent set up in the flux ring opposes the shift in operating point in the magnet structure itself, thus lowering the distortion. Or
7、iginally, as we made the transition from Alnico V to ferrite magnet material, the net result of SFG was a reduction of second harmonic distortion in JBL low frequency transducers of approximately 8 to 10 dB at low frequencies. In the new SVG designs the reduction of second harmonic distortion is in
8、the range of 15 to 20 dB. JBLs Technical Notes Volume 1, Number 9 presents additional details on SFG. JBLs Vented Gap Cooling was developed in the late 1980s as a means of pushing the upper envelope of performance by improving heat transfer from the voice coil. Traditionally, heat has been removed f
9、rom the voice coil by radiation to the nearby top plate and pole piece, with subsequent conduction to the outside of the loudspeaker structure and removal through convection. In VGC, air is drawn in directly from the outside through three openings in the back of the magnet structure. Air drawn into
10、the structure passes over and around the voice coil; it is exhausted immediately on the reverse movement of the voice coil. With VGC, JBL was able to make significant reductions in the amount of dynamic compression in transducers operated near their upper power limits. Here, the effect of rapid and
11、efficient removal of heat enables the VGC transducers to reach final thermal equilibrium with less residual power compression than traditional designs, and long term improvements of 3 to 4 dB can be made. JBLs Technical Notes Volume 1, Number 18 presents more information on VGC. Super Vented Gap Tec
12、hnology: SVG incorporates and extends the improvements of SFG and VGC. The salient structural differences are shown in transducer section view in Figure 1: 1. Thicker top plate and magnet structure. These afford better heat sinking and greater flux in the gap for a higher B1 product (magnetic flux t
13、imes voice coil length). This provides higher electromechanical damping and increased motor strength. Figure 1. 2. Extended pole piece. The extension of the pole piece above and below the gap provides better axial magnetic flux field symmetry for lower distortion at high excursions. At the same time
14、, it provides better thermal conductivity for heat generated in the voice coil because of its proximity to the coil at all positions of its excursion. 3. Copper shorting ring. This ring is located on the pole piece at a point midway relative to the voice coil at its normal rest position. It accompli
15、shes two things: acting as a shorted single turn secondary to the voice coil, it minimizes the effect of voice coil inductance. This in turn allows the on-axis response of the transducers to be maintained to a higher frequency, providing better transient response. Additionally, the copper shorting r
16、ing reduces mid- band third harmonic distortion due to flux modulation effects induced in the pole piece by the voice coil. Performance Advantages of SVG Technology: 1. Maximum Output Capability: Because of more effective heat sinking, the SVG transducers carry high power ratings and exhibit minimal
17、 dynamic compression when operated at full power for long periods of time. For example, the 2227H has an input power rating of 600 watts, the same as the VGC 2226H. However, the dynamic compression at extended operation at 600 watts is 3.2 dB for the 2227H and 4 dB for the 2226H. Additionally, the o
18、ne watt, one meter midband sensitivity of the 2227H is 100 dB, compared with 97 dB for the 2226H, for a net advantage in maximum output of 3.8 dB. Considering the 2242H, the power rating is 800 watts, as opposed to 600 watts for the 2241 H - an increase of 1.25 dB. The sensitivity of the 2242H is 99
19、 dB, compared to 98 for the 2241 H. Dynamic compression at full power for the 2242H 3.3 dB, compared with 4.3 dB for the 2241. These values add up to a net advantage in maximum output of 3.25 dB. We want to stress that the new SVG transducer models are not considered to be replacements for the VGC m
20、odels we have compared them with. For example in applications such as motion picture theater work, a direct replacement of the 2226H with the 2227H would result in an alignment shift (response change at low frequencies) that could be significant. Additionally, the increased midband output of the 222
21、7H would require additional equalization for motion picture applications. 2. Low Distortion Performance: The increased output capability of the SVG transducers would be of little significance if it were accompanied by high distortion levels. Figure 2 shows a comparison of the 2226H and 2227H, both o
22、perating at one-tenth rated power. The distortion curves have been raised 20 dB for ease in reading. The higher midband sensitivity and extended HF response of the 2227H are evident. Note that the increased damping of the 2227H produces more roll-off at low frequencies, with the 2226H actually produ
23、cing about 3 dB more output below about 60 Hz. Note that the second harmonic distortion, as a proportion of the fundamental, is lower in the 2227H at the lowest frequencies. Figure 2A. Figure 2B. In comparing the curves on the 2241 H and 2242H shown in Figure 3, we must carefully take into account t
24、hat the distortion of the 2241 H has been raised 20 dB, while the distortion of the 2242H has been raised 30 dB. This, in essence, makes the distortion of the 2242H look 10 dB greater than it really is, compared to the 2241 H. At 80 watts input, the third harmonic distortion of the 2242H is about 10
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