Relativistic mechanics: Difference between revisions

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== each division has its own heavy fire spirit ==
[[Image:microstrip geometry.svg|thumb|right|200px|Cross-section of microstrip geometry. Conductor (A) is separated from ground plane (D) by dielectric substrate (C). Upper dielectric (B) is typically air.]] '''Microstrip''' is a type of electrical [[transmission line]] which can be fabricated using [[printed circuit board]] technology, and is used to convey [[microwave]]-frequency signals. It consists of a conducting strip separated from a [[ground plane]] by a [[dielectric]] layer known as the substrate. Microwave components such as [[microstrip antenna|antennas]], [[directional coupler|coupler]]s, [[distributed element filter|filter]]s, [[Power dividers and directional couplers#Other power dividers|power divider]]s etc. can be formed from microstrip, the entire device existing as the pattern of metallization on the substrate. Microstrip is thus much less expensive than traditional [[waveguide (electromagnetism)|waveguide]] technology, as well as being far lighter and more compact.  Microstrip was developed by ITT laboratories as a competitor to [[stripline]] (first published by Grieg and Engelmann in the December 1952 IRE proceedings<ref>{{cite journal|last=Grieg|first=D. D.|coauthors=Engelmann, H. F.|date=Dec 1952|title=Microstrip-A New Transmission Technique for the Klilomegacycle Range|journal=Proceedings of the IRE|volume=40|issue=12|pages=1644–1650|issn=0096-8390|doi=10.1109/JRPROC.1952.274144}}</ref>).


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The disadvantages of microstrip compared with waveguide are the generally lower power handling capacity, and higher losses. Also, unlike waveguide, microstrip is not enclosed, and is therefore susceptible to cross-talk and unintentional radiation.
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== his eyes also promised some more excitement' color. ' ==
For lowest cost, microstrip devices may be built on an ordinary [[FR-4]] (standard PCB) substrate. However it is often found that the dielectric losses in FR4 are too high at microwave frequencies, and that the [[dielectric constant]] is not sufficiently tightly controlled. For these reasons, an [[alumina]] substrate is commonly used.


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On a smaller scale, microstrip transmission lines are also built into [[monolithic microwave integrated circuit]]s.
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== vague hoarse voice ==
Microstrip lines are also used in high-speed digital PCB designs, where signals need to be routed from one part of the assembly to another with minimal distortion, and avoiding high cross-talk and radiation.


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Microstrip is very similar to [[stripline]] and [[coplanar waveguide]],{{Citation needed|date=July 2011}} and it is possible to integrate all three on the same substrate.
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== wooden box open ==
== Inhomogeneity ==
The electromagnetic wave carried by a microstrip line exists partly in the [[dielectric]] substrate, and partly in the air above it. In general, the [[dielectric constant]] of the substrate will be different (and greater) than that of the air, so that the wave is travelling in an inhomogeneous medium. In consequence, the propagation velocity is somewhere between the speed of radio waves in the substrate, and the speed of radio waves in air. This behaviour is commonly described by stating the effective dielectric constant (or effective relative permittivity) of the microstrip; this being the dielectric constant of an equivalent homogeneous medium (i.e., one resulting in the same propagation velocity).


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Further consequences of an inhomogeneous medium include:
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== may seem Lin Xiu cliff this and other real powerful figures ==
* The line will not support a true [[Transverse electric and magnetic mode|TEM]] wave; at non-zero frequencies, both the [[electric field|E]] and [[magnetic field|H fields]] will have longitudinal components (a [[Transverse electric and magnetic mode|hybrid mode]]).<ref name="denlinger1971">E. J. Denlinger, “A frequency dependent solution for microstrip transmission lines”; ''IEEE Trans. Microwave Theory Tech.'', vol. MTT-19, pp. 30-39, Jan. 1971.</ref> The longitudinal components are small however, and so the dominant mode is referred to as quasi-TEM.
* The line is [[dispersion (optics)|dispersive]]. With increasing frequency, the effective dielectric constant gradually climbs towards that of the substrate, so that the [[phase velocity]] gradually decreases.<ref name="denlinger1971"/><ref name="cory1981">H. Cory, “Dispersion characteristics of microstrip lines”; ''IEEE Trans. Microwave Theory Tech.'', vol. MTT-29, pp. 59-61, Jan. 1981.</ref> This is true even with a non-dispersive substrate material (the substrate dielectric constant will usually fall with increasing frequency).
* The [[characteristic impedance]] of the line changes slightly with frequency (again, even with a non-dispersive substrate material). The characteristic impedance of non-TEM modes is not uniquely defined, and depending on the precise definition used, the impedance of microstrip either rises, falls, or falls then rises with increasing frequency.<ref name="bianco1978">B. Bianco, L. Panini, M. Parodi, and S. Ridetlaj “Some considerations about the frequency dependence of the characteristic impedance of uniform microstrips”: ''IEEE Trans. Microwave Theory Tech.'', vol. MTT-26, pp. 182-185, March 1978.</ref> The low-frequency limit of the characteristic impedance is referred to as the quasi-static characteristic impedance, and is the same for all definitions of characteristic impedance.
* The [[wave impedance]] varies over the cross-section of the line.


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== Characteristic impedance ==
相关的主题文章:
A closed-form approximate expression for the quasi-static [[characteristic impedance]] of a microstrip line was developed by [[Harold Alden Wheeler|Wheeler]]:<ref>H. A. Wheeler, “Transmission-line properties of parallel wide strips by a conformal-mapping approximation”, ''IEEE Trans. Microwave Theory Tech.'', vol. MTT-12, pp. 280-289, May 1964.</ref><ref name="wheeler1965">H. A. Wheeler, “Transmission-line properties of parallel strips separated by a dielectric sheet”, ''IEEE Tran. Microwave Theory Tech.'', vol. MTT-13, pp. 172-185, Mar. 1965.</ref><ref name="wheeler1977">H. A. Wheeler, “Transmission-line properties of a strip on a dielectric sheet on a plane”, ''IEEE Tran. Microwave Theory Tech.'', vol. MTT-25, pp. 631-647, Aug. 1977.</ref>
<ul>
 
 
:<math>Z_\textrm{microstrip} = \frac{Z_{0}}{2 \pi \sqrt{2 (1 + \varepsilon_{r})}} \mathrm{ln}\left( 1 + \frac{4 h}{w_\textrm{eff}} \left( \frac{14 + \frac{8}{\varepsilon_{r}}}{11} \frac{4 h}{w_\textrm{eff}} + \sqrt{\left( \frac{14 + \frac{8}{\varepsilon_{r}}}{11} \frac{4 h}{w_\textrm{eff}}\right)^{2} + \pi^{2} \frac{1 + \frac{1}{\varepsilon_{r}}}{2}}\right)\right),</math>
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where <math>w_\mathrm{eff}</math> is the ''effective width'', which is the actual width of the strip, plus a correction to account for the non-zero thickness of the metallization:
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:<math>w_\textrm{eff} = w + t \frac{1 + \frac{1}{\varepsilon_{r}}}{2 \pi} \mathrm{ln}\left( \frac{4 e}{\sqrt{\left( \frac{t}{h}\right)^{2} + \left( \frac{1}{\pi} \frac{1}{\frac{w}{t} + \frac{11}{10}}\right)^{2}}}\right).</math>
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Here ''Z''<sub>0</sub> is the [[impedance of free space]], ''ε''<sub>r</sub> is the [[relative permittivity]] of substrate, ''w'' is the width of the strip, ''h'' is the thickness ("height") of substrate, and ''t'' is the thickness of the strip metallization.
</ul>
 
This formula is asymptotic to an exact solution in three different cases
 
#<math>w \gg h</math>, any <math>\varepsilon_{r}</math> (parallel plate transmission line),
#<math>w \ll h</math>, <math>\varepsilon_{r} = 1</math> (wire above a ground-plane) and
#<math>w \ll h</math>, <math>\varepsilon_{r} \gg 1.</math>
 
It is claimed that for most other cases, the error in impedance is less than 1%, and is always less than 2%.<ref name="wheeler1977"/> By covering all aspect-ratios in one formula, Wheeler 1977 improves on Wheeler 1965<ref name="wheeler1965"/> which gives one formula for <math>w / h > 3.3</math> and another for <math>w / h \le 3.3</math> (thus introducing a discontinuity in the result at <math>w / h = 3.3</math>). Nevertheless, the 1965 paper is perhaps the more often cited. A number of other approximate formulae for the characteristic impedance have been advanced by other authors. However, most of these are applicable to only a limited range of aspect-ratios, or else cover the entire range piecewise.
 
Curiously, Harold Wheeler disliked both the terms 'microstrip' and 'characteristic impedance', and avoided using them in his papers.
 
==Bends==
In order to build a complete circuit in microstrip, it is often necessary for the path of a strip to turn through a large angle. An abrupt 90° bend in a microstrip will cause a significant portion of the signal on the strip to be reflected back towards its source, with only part of the signal transmitted on around the bend. One means of effecting a low-reflection bend, is to curve the path of the strip in an arc of radius at least 3 times the strip-width.<ref>T.H. Lee, Planar Microwave Engineering; ''Cambridge University Press'', pp. 173-174, 2004.</ref> However, a far more common technique, and one which consumes a smaller area of substrate, is to use a mitred bend.
 
[[Image:microstrip-bend.svg|thumb|left|200px|Microstrip 90° mitred bend. The percentage mitre is 100x/d]] To a first approximation, an abrupt un-mitred bend behaves as a shunt capacitance placed between the ground plane and the bend in the strip. Mitring the bend reduces the area of metallization, and so removes the excess capacitance. The percentage mitre is the cut-away fraction of the diagonal between the inner and outer corners of the un-mitred bend.
 
The optimum mitre for a wide range of microstrip geometries has been determined experimentally by Douville and James.<ref name="douville1978">R. J. P. Douville and D. S. James, Experimental study of symmetric microstrip bends and their compensation; ''IEEE Trans. Microwave Theory Tech.'', vol. MTT-26, pp. 175-182, Mar. 1978.</ref> They find that a good fit for the optimum percentage mitre is given by
 
:<math>M = 100 \frac{x}{d} \% = (52 + 65 e^{- \frac{27}{20} \frac{w}{h}}) \%</math>
 
subject to <math>w/h \ge 0.25</math> and the with the substrate dielectric constant <math>\varepsilon_{r} \le 25</math>. This formula is entirely independent of <math>\varepsilon_{r}</math>. The actual range of parameters for which Douville and James present evidence is <math>0.25 \le w/h \le 2.75</math> and <math>2.5 \le \varepsilon_{r} \le 25</math>. They report a [[VSWR]] of better than 1.1 (i.e., a return better than &minus;26&nbsp;dB) for any percentage mitre within 4% (of the original <math>d</math>) of that given by the formula. At the minimum <math>w/h</math> of 0.25, the percentage mitre is 98.4%, so that the strip is very nearly cut through.
 
For both the curved and mitred bends, the electrical length is somewhat shorter than the physical path-length of the strip.
 
== See also ==
* [[Distributed element filter]]
* [[Spurline]], a microstrip notch-filter
 
== References ==
{{Reflist}}
 
== External links ==
* [http://www.microwaves101.com/encyclopedia/microstrip.cfm Microstrip in Microwave Encyclopedia]
* [http://mcalc.sourceforge.net/ Microstrip Analysis/Synthesis Calculator]
 
[[Category:Microwave technology]]
[[Category:Electronics]]
[[Category:Signal cables]]

Revision as of 12:36, 6 December 2013

Cross-section of microstrip geometry. Conductor (A) is separated from ground plane (D) by dielectric substrate (C). Upper dielectric (B) is typically air.

Microstrip is a type of electrical transmission line which can be fabricated using printed circuit board technology, and is used to convey microwave-frequency signals. It consists of a conducting strip separated from a ground plane by a dielectric layer known as the substrate. Microwave components such as antennas, couplers, filters, power dividers etc. can be formed from microstrip, the entire device existing as the pattern of metallization on the substrate. Microstrip is thus much less expensive than traditional waveguide technology, as well as being far lighter and more compact. Microstrip was developed by ITT laboratories as a competitor to stripline (first published by Grieg and Engelmann in the December 1952 IRE proceedings[1]).

The disadvantages of microstrip compared with waveguide are the generally lower power handling capacity, and higher losses. Also, unlike waveguide, microstrip is not enclosed, and is therefore susceptible to cross-talk and unintentional radiation.

For lowest cost, microstrip devices may be built on an ordinary FR-4 (standard PCB) substrate. However it is often found that the dielectric losses in FR4 are too high at microwave frequencies, and that the dielectric constant is not sufficiently tightly controlled. For these reasons, an alumina substrate is commonly used.

On a smaller scale, microstrip transmission lines are also built into monolithic microwave integrated circuits.

Microstrip lines are also used in high-speed digital PCB designs, where signals need to be routed from one part of the assembly to another with minimal distortion, and avoiding high cross-talk and radiation.

Microstrip is very similar to stripline and coplanar waveguide,Potter or Ceramic Artist Truman Bedell from Rexton, has interests which include ceramics, best property developers in singapore developers in singapore and scrabble. Was especially enthused after visiting Alejandro de Humboldt National Park. and it is possible to integrate all three on the same substrate.

Inhomogeneity

The electromagnetic wave carried by a microstrip line exists partly in the dielectric substrate, and partly in the air above it. In general, the dielectric constant of the substrate will be different (and greater) than that of the air, so that the wave is travelling in an inhomogeneous medium. In consequence, the propagation velocity is somewhere between the speed of radio waves in the substrate, and the speed of radio waves in air. This behaviour is commonly described by stating the effective dielectric constant (or effective relative permittivity) of the microstrip; this being the dielectric constant of an equivalent homogeneous medium (i.e., one resulting in the same propagation velocity).

Further consequences of an inhomogeneous medium include:

  • The line will not support a true TEM wave; at non-zero frequencies, both the E and H fields will have longitudinal components (a hybrid mode).[2] The longitudinal components are small however, and so the dominant mode is referred to as quasi-TEM.
  • The line is dispersive. With increasing frequency, the effective dielectric constant gradually climbs towards that of the substrate, so that the phase velocity gradually decreases.[2][3] This is true even with a non-dispersive substrate material (the substrate dielectric constant will usually fall with increasing frequency).
  • The characteristic impedance of the line changes slightly with frequency (again, even with a non-dispersive substrate material). The characteristic impedance of non-TEM modes is not uniquely defined, and depending on the precise definition used, the impedance of microstrip either rises, falls, or falls then rises with increasing frequency.[4] The low-frequency limit of the characteristic impedance is referred to as the quasi-static characteristic impedance, and is the same for all definitions of characteristic impedance.
  • The wave impedance varies over the cross-section of the line.

Characteristic impedance

A closed-form approximate expression for the quasi-static characteristic impedance of a microstrip line was developed by Wheeler:[5][6][7]

where is the effective width, which is the actual width of the strip, plus a correction to account for the non-zero thickness of the metallization:

Here Z0 is the impedance of free space, εr is the relative permittivity of substrate, w is the width of the strip, h is the thickness ("height") of substrate, and t is the thickness of the strip metallization.

This formula is asymptotic to an exact solution in three different cases

  1. , any (parallel plate transmission line),
  2. , (wire above a ground-plane) and
  3. ,

It is claimed that for most other cases, the error in impedance is less than 1%, and is always less than 2%.[7] By covering all aspect-ratios in one formula, Wheeler 1977 improves on Wheeler 1965[6] which gives one formula for and another for (thus introducing a discontinuity in the result at ). Nevertheless, the 1965 paper is perhaps the more often cited. A number of other approximate formulae for the characteristic impedance have been advanced by other authors. However, most of these are applicable to only a limited range of aspect-ratios, or else cover the entire range piecewise.

Curiously, Harold Wheeler disliked both the terms 'microstrip' and 'characteristic impedance', and avoided using them in his papers.

Bends

In order to build a complete circuit in microstrip, it is often necessary for the path of a strip to turn through a large angle. An abrupt 90° bend in a microstrip will cause a significant portion of the signal on the strip to be reflected back towards its source, with only part of the signal transmitted on around the bend. One means of effecting a low-reflection bend, is to curve the path of the strip in an arc of radius at least 3 times the strip-width.[8] However, a far more common technique, and one which consumes a smaller area of substrate, is to use a mitred bend.

Microstrip 90° mitred bend. The percentage mitre is 100x/d

To a first approximation, an abrupt un-mitred bend behaves as a shunt capacitance placed between the ground plane and the bend in the strip. Mitring the bend reduces the area of metallization, and so removes the excess capacitance. The percentage mitre is the cut-away fraction of the diagonal between the inner and outer corners of the un-mitred bend.

The optimum mitre for a wide range of microstrip geometries has been determined experimentally by Douville and James.[9] They find that a good fit for the optimum percentage mitre is given by

subject to and the with the substrate dielectric constant . This formula is entirely independent of . The actual range of parameters for which Douville and James present evidence is and . They report a VSWR of better than 1.1 (i.e., a return better than −26 dB) for any percentage mitre within 4% (of the original ) of that given by the formula. At the minimum of 0.25, the percentage mitre is 98.4%, so that the strip is very nearly cut through.

For both the curved and mitred bends, the electrical length is somewhat shorter than the physical path-length of the strip.

See also

References

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  1. One of the biggest reasons investing in a Singapore new launch is an effective things is as a result of it is doable to be lent massive quantities of money at very low interest rates that you should utilize to purchase it. Then, if property values continue to go up, then you'll get a really high return on funding (ROI). Simply make sure you purchase one of the higher properties, reminiscent of the ones at Fernvale the Riverbank or any Singapore landed property Get Earnings by means of Renting

    In its statement, the singapore property listing - website link, government claimed that the majority citizens buying their first residence won't be hurt by the new measures. Some concessions can even be prolonged to chose teams of consumers, similar to married couples with a minimum of one Singaporean partner who are purchasing their second property so long as they intend to promote their first residential property. Lower the LTV limit on housing loans granted by monetary establishments regulated by MAS from 70% to 60% for property purchasers who are individuals with a number of outstanding housing loans on the time of the brand new housing purchase. Singapore Property Measures - 30 August 2010 The most popular seek for the number of bedrooms in Singapore is 4, followed by 2 and three. Lush Acres EC @ Sengkang

    Discover out more about real estate funding in the area, together with info on international funding incentives and property possession. Many Singaporeans have been investing in property across the causeway in recent years, attracted by comparatively low prices. However, those who need to exit their investments quickly are likely to face significant challenges when trying to sell their property – and could finally be stuck with a property they can't sell. Career improvement programmes, in-house valuation, auctions and administrative help, venture advertising and marketing, skilled talks and traisning are continuously planned for the sales associates to help them obtain better outcomes for his or her shoppers while at Knight Frank Singapore. No change Present Rules

    Extending the tax exemption would help. The exemption, which may be as a lot as $2 million per family, covers individuals who negotiate a principal reduction on their existing mortgage, sell their house short (i.e., for lower than the excellent loans), or take part in a foreclosure course of. An extension of theexemption would seem like a common-sense means to assist stabilize the housing market, but the political turmoil around the fiscal-cliff negotiations means widespread sense could not win out. Home Minority Chief Nancy Pelosi (D-Calif.) believes that the mortgage relief provision will be on the table during the grand-cut price talks, in response to communications director Nadeam Elshami. Buying or promoting of blue mild bulbs is unlawful.

    A vendor's stamp duty has been launched on industrial property for the primary time, at rates ranging from 5 per cent to 15 per cent. The Authorities might be trying to reassure the market that they aren't in opposition to foreigners and PRs investing in Singapore's property market. They imposed these measures because of extenuating components available in the market." The sale of new dual-key EC models will even be restricted to multi-generational households only. The models have two separate entrances, permitting grandparents, for example, to dwell separately. The vendor's stamp obligation takes effect right this moment and applies to industrial property and plots which might be offered inside three years of the date of buy. JLL named Best Performing Property Brand for second year running

    The data offered is for normal info purposes only and isn't supposed to be personalised investment or monetary advice. Motley Fool Singapore contributor Stanley Lim would not personal shares in any corporations talked about. Singapore private home costs increased by 1.eight% within the fourth quarter of 2012, up from 0.6% within the earlier quarter. Resale prices of government-built HDB residences which are usually bought by Singaporeans, elevated by 2.5%, quarter on quarter, the quickest acquire in five quarters. And industrial property, prices are actually double the levels of three years ago. No withholding tax in the event you sell your property. All your local information regarding vital HDB policies, condominium launches, land growth, commercial property and more

    There are various methods to go about discovering the precise property. Some local newspapers (together with the Straits Instances ) have categorised property sections and many local property brokers have websites. Now there are some specifics to consider when buying a 'new launch' rental. Intended use of the unit Every sale begins with 10 p.c low cost for finish of season sale; changes to 20 % discount storewide; follows by additional reduction of fiftyand ends with last discount of 70 % or extra. Typically there is even a warehouse sale or transferring out sale with huge mark-down of costs for stock clearance. Deborah Regulation from Expat Realtor shares her property market update, plus prime rental residences and houses at the moment available to lease Esparina EC @ Sengkang
  2. 2.0 2.1 E. J. Denlinger, “A frequency dependent solution for microstrip transmission lines”; IEEE Trans. Microwave Theory Tech., vol. MTT-19, pp. 30-39, Jan. 1971.
  3. H. Cory, “Dispersion characteristics of microstrip lines”; IEEE Trans. Microwave Theory Tech., vol. MTT-29, pp. 59-61, Jan. 1981.
  4. B. Bianco, L. Panini, M. Parodi, and S. Ridetlaj “Some considerations about the frequency dependence of the characteristic impedance of uniform microstrips”: IEEE Trans. Microwave Theory Tech., vol. MTT-26, pp. 182-185, March 1978.
  5. H. A. Wheeler, “Transmission-line properties of parallel wide strips by a conformal-mapping approximation”, IEEE Trans. Microwave Theory Tech., vol. MTT-12, pp. 280-289, May 1964.
  6. 6.0 6.1 H. A. Wheeler, “Transmission-line properties of parallel strips separated by a dielectric sheet”, IEEE Tran. Microwave Theory Tech., vol. MTT-13, pp. 172-185, Mar. 1965.
  7. 7.0 7.1 H. A. Wheeler, “Transmission-line properties of a strip on a dielectric sheet on a plane”, IEEE Tran. Microwave Theory Tech., vol. MTT-25, pp. 631-647, Aug. 1977.
  8. T.H. Lee, Planar Microwave Engineering; Cambridge University Press, pp. 173-174, 2004.
  9. R. J. P. Douville and D. S. James, Experimental study of symmetric microstrip bends and their compensation; IEEE Trans. Microwave Theory Tech., vol. MTT-26, pp. 175-182, Mar. 1978.