CA1328310C - Antenna structure used in portable radio device - Google Patents

Antenna structure used in portable radio device

Info

Publication number
CA1328310C
CA1328310C CA 604693 CA604693A CA1328310C CA 1328310 C CA1328310 C CA 1328310C CA 604693 CA604693 CA 604693 CA 604693 A CA604693 A CA 604693A CA 1328310 C CA1328310 C CA 1328310C
Authority
CA
Canada
Prior art keywords
antenna
conductor
battery
loop antenna
coil spring
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CA 604693
Other languages
French (fr)
Inventor
Takashi Oda
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
NEC Corp
Original Assignee
NEC Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by NEC Corp filed Critical NEC Corp
Application granted granted Critical
Publication of CA1328310C publication Critical patent/CA1328310C/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/29Combinations of different interacting antenna units for giving a desired directional characteristic
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/27Adaptation for use in or on movable bodies
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q7/00Loop antennas with a substantially uniform current distribution around the loop and having a directional radiation pattern in a plane perpendicular to the plane of the loop

Landscapes

  • Support Of Aerials (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

Abstract of the Disclosure An antenna structure comprises a loop antenna electrically connected to a high-frequency circuit of a portable radio device. The antenna structure also comprises a supplemental antenna including a coil spring which is used for fixing a dry battery powering the portable radio device, and a negative cylindrical conductor of the dry battery which conductor is electrically connected with the coil spring. The coil spring is placed to be inductively coupled to the loop antenna. The longitudinal axis of the dry battery is substantially perpendicular to a plane including the loop antenna. Thus, deterioration in signal reception sensitivity due to the directivity of the loop antenna can be compensated by the supplemental antenna.

Description

ANTENNA STRUCTURE USED IN
PORTABLE RADIO DEVICE

Backqround of the Invention The present invention relates to an antenna structure used in a portable radio device and, more particularly, to an antenna structure suitable for a portable radio device operating in a UHF (ultra high frequency) band.

A loop antenna has been employed in a portable radio device, such as a paging receiver, for its compactness. The loop antenna has strong directivity.
Thus, if the radio device is held so that the loop antenna is in the direction of minimum sensitivity, the signal reception sensitivity will be deteriorated.
This problem will be discussed herein referring to the accompanying drawings.

In order to avoid the problem mentioned above, it ; is known to use a loop antenna with a slender conductive element which is placed along a li~e 20 perpendicular to a plane including the ].oop antenna and intersecting at a center of the loop antenna and which is inductively coupled to the loop antenna.
~i This antenna structure is, however, not suitable for . a portable radio device due to its bulkiness.
~..
Summarv of the Invention An object of the present invention is, therefore, to provide a generally improved antenna structure which eliminates the above-mentioned problems.

Another object of the present invention is to ~ 30 provide an antenna structure suitable for a portable '~ radio device.

.' ' .~ ' Yet another object of the present invention is to provide an antenna structure having good directivity.

` Still yet another object of the present invention is to provide an antenna structure having a loop antenna and a supplemental antenna which structure is compact while having a high antenna gain even if the loop antenna is positioned to have a minimum gain.

According to the present invention, there is provided an antenna structure comprising a loop antenna electrically connected to a high-frequency circuit of a portable radio device. The antenna structure also comprises a supplemental anterma including a coil spring which is used for fixing a dry ,~battery powering the portable radio device, and a negative cylindrical conductor of the dry battery which conductor is electrically connected with the coil spring. The coil spring is piaced to be inductively coupled to the loop antenna. The axis line of the dry battery is substantially perpendicular ;20 to a, plane including the loop antenna. Thus, deterioration in signal reception sensitivity due to the direçtivity of the loop antenna can be compensated by the supplemental antenna.

Brief Descri~tion of the Drawinqs .

25The above and other objects, features and advantages of the present invention will become more ' apparent from the following description referring to the accompanying drawings, in which:
i Fig. 1 is a perspective view showing a prior art antenna ~itructure employed in a portable radio device;

~ .

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,. : : .. ` ` ,` ` ~ , ' :, ~ .
,: : . , ~ . . . : ~ : . .

Fig. 2A and, 2B are perspective view for explaining the directivity of the Fig. 1 antenna structure;

Fig. 3 is a graph illustrating the horizontal gain characteristics of the Fig. 1 antenna structure;

Fig. 4 is a block diagràm of a radio paging receiver embodying the present invention;
;

Fig. 5 is a schematic circuit diagram showing an antenna structure and a high-frequency circuit of the receiver shown in Fig. 4;

Fig. 6 is a Smith chart plot of an impedance characteristic of a supplemental antenna within the antenna structure showrl in Figs. 4 and 6;

Fig. 7 is a perspective view showing an antenna structure according to an en~odiment of the present invention; -~i Figs. ~A and 8B are perspective views for explaining the directivity of the Fig. 7 antenna structure; and ~ 20 Fig. 9 is a graph illustrating the horizontal :, gain characteristics of the Fig. 7 antenna structure.

Detailed DescriPtioll of the Preferred Embodiments To better understand the present invention, theprior art antenna structure used in a radio paging . 25 receiver will first be described. In Fig. 1, the ~ radio paginq receiver includes a housing 1 ;-, accommodating communication circuitry 2, a loop ~ antenna 3, a connecting pattern 3a, a dry battery 4 and a printed circuit board 5. The loop àntenna 3 is mounted on the printed circuit board 5 and electrically connected through the connecting pattern 3a to the communication circuitry 2.

Since the loop antenna 3 has strong directivity, it is mounted on the board 5 so that the antenna 3 has - a maximum gain with respect to a vertical polarized wave A in a standard use condition shown in Fig. 2A.
When the receiver is held by the user as shown in Fig.
10 2B, however, the antenna gain is ~xtremely deteriorated and thus the signal reception sensitivity is decreased, as mentioned earlier.

Fig- 3 S}loWs the horizontal paging sensitivity characteristics of loop antenna shown in Figs. 1, 2A
15 and 2B. The ~ain characteristics were obtained for a prior art antenna 1 mounted on a paging receiver and receiving a signal of 900 t~Hz. The solid line Al indicates horizontalsensitivity in free space for the condition of Fig. 2A. Dotted line B1 indicates -20 horiz~ntalsensitivity in free space for the condition-of Fig. 2B. As can be seen from the Fig. 3 graph, the sensitivity indicated by the dotted line 81 i~ deteriorated in all direction~, compared with the sensitivity indicated by the solid line A1. Thus, the prior art antenna 25 structure shown in Figs. 1, 2A and 2B is not suitable for a portable radio device, such as a paging 2 receiver.

Fig. 4 shows a block diagram of a paging receiver embodying the present invention. In Fig. 4, a loop 30 antenna 61 picks up a radio signal and supplies it to a receiver section 62. The receiver section 62 , amplifies, frequency converts and demodulates the radio signal to produce a demodulated baseband slgnal.
The baseband signal is supplied to a decoder 63 at i which the baseband signal is wave shaped and compared with a paging number assigned to the paging receiver and stored therein. If the baseband signal contains a paging nu~ber identical with the stored paging number, the decoder 63 will produce an alert signal.
Upon the alert signal, a driver 64 drives a speaker 65 to generate an alert sound, so that the user is informed of being paged. The driver 64 and the speaker 65 may constitute an annunciator means.

10A battery 66 applies power through a line 69 to ; the receiver section 62, decoder 63 and driver 64.
i The positive terminal 66a of battery 66 is connected through a capacitor 68 to common potential. The negative terminal 66b of the battery is connected to the common potential through a coil spring 67. The negative terminal 66b and the coil spring 67 constituta a supplemental antenna which is inductively coupled to the loop antenna 61. A radio signal picked up by the supplemental antenna (66b, 67) is supplied ~` 20 to the loop antenna 61 and then to the receiver section 62. The supplemental antenna is arranged to compensate deterioration in the antenna gain due to the directivity of the loop antenna 61.
;

, .
In Fig. 5, a radio signal picked up by the loop ' 25 antenna 61 and by the supplemental antenna (66b, 67) is applied to a base of a high-frequency transistor amplifier 73 through a resonance matching circuit composed of a variable capacitor 70 and a capacitor 71. The variable capacitor 70 i8 connected between the loop antenna 61 and the common potential. The capacitor 71 i~ connected between the loop antenna 61 ` and the base of transistor 73. The common-emitter transistor 73 amplifies the radio signal and supplies the amplified signal to a frequency converter within ~, 35 the radio section 62. A resistor 75 is inserted .j .

., between the base of transistor 73 and the battery 66.
A capacitor 76 is inserted between the base of the transistor 73 and the common potential A resistor 72 is a bias resistor of transistor 73. A pattern inductance element 74 is of a collector load of transistor 73.

When disconnecting the coil spring 67 from the common potential and measuring the impedance between the open terminal of spring coil 67 and the common potential, the measured impedance is plotted on the Smith chart of Fig. 6. The measured impedance does not change even if the positive term~nal 66a i3 opened, i.e., the capacitor 68 and the line 69 are eliminated from the battery 66. In other words, the ; 15 measured impedance is dominated by the negative terminal 66b and coil spring 67 and not affected by the positive side circuitry of battery 66.
:, .
By inductively coupling the supplemental antenna (66b, 67) to the loop antenna 61, a high-frequency power.induced on the supplemental antenna is passed to the loop antenna 61 and then to the transistor amplifier 73. Furthermore, by making the supplemental antenna intersect perpendicularly to a plane including the loop antenna 61, the supplemental antenna 2~ compensates for deterioration in the signal reception sensitivity caused by the directivity of the loop antenna 61.

In Fig. 7, a housing 11 and communication circuitry 12 are indicated by an imaginary line and a dotted line, respectively. The circuitry 12 may include the receiver section 62, the decoder 63, the driver 64 and the speaker 65 shown in Fig. 4. A loop antenna 13 is composed of a substantially loop shaped ` conductor. The loop antenna 13 is connected with a _ 7 _ 132 8310 common potential pattern 12a through a conductive pattern 13a of printed circuit board 15 and corresponds to the loop antenna 61 of Figs. 4 and 5.

One end of a coil spring, or helical conductor, 16 i5 in contact with the negative terminal 14b of a dry battery 14 whose cylindrical conductor 14c has the same potential as the negative terminal 14b. The other end of coil spring 16 is connected with the negative terminal projection 17 which in turn is connected with the common potential pattern 12a through a conductive pattern 14a. The coil spring 16 and the battery negative terminal 14b and 14c constitute a supplemental antenna corresponding to the supplemental antenna (66b, 67) of Figs. 4 and 5.

15The combined lengths of the battery 14 and the coil spring 16 is set equal to one quarter of a wavelength used. Thus, the supplemental antenna , constitutes a base-loaded antenna whose electrical length is increased by the addition of loading coil l~ 20 (16) in series with the antenna (14b) at the common potential. The combined lengths may instead be set to an odd multiple of one quarter of the used wavelength.
It is, however, not desirable to set the combined lengths to a value other than one quarter of the ~ 25 wavelength, because the longer the combined lengths ,~ becomes, the more bulky the antenna structure.

The supplemental antenna having the coil spring 16 and the cylindrical battery conductor 14c i~
substantially perpendicular to a plane-including the loop antenna 13 and substantially along a line i intersecting perpendicularly the center of the loop of loop antenna 13. In other words, the axis line of the battery substantially perpendicularly intersects the center of the loop of loop antenna 13. Thus, if !

,, ., ~ ,, .. -,....... .

the radio device is placed as shown in Fig. 8A so that the plane including the loop antenna 13 is parallel to the vertical polarized wave A, the loop antenna 13 operates like the prior art antenna (Fig 1~ and induces maximum power while the supplemental antenna induces minimum power. On the other hand, if the radio device is placed as shown in Fig. 8B so that the axis line of the battery 14 is parallel to the vertical polarized wave A, the supplemental antenna operates as a main antenna and induces maximum power while the loop antenna 13 induces minimum power.
Since the supplemental antenna, especially the loading coil 16, is inductively coupled to the loop antenna 13, no deterioration in the signal reception sensitivity occurs even if the loop antenna 13 is placed to induce minimum power.

In Fig. 9, the horizontal Paging sensitivity embodying the present inventioll in free space are shown. The plot of Fig. 9 is obtained using an antenna according to this invention mounted on a paging receiver and receiving a signal at a frequency of 900 MHz. Solid line A2 indicates a horizontal sensitivity measured for the paging receiver placed as shown in E'iy. 8,A. Dotted line B2 indicates a horizontal sensiti~.ity measured for the paging receiver placed as shown in Fig. 8B. Because of the supplemental~antenlla, no deterioration in either cases occurs.

By comparing the ~ensiti~ity along a common direction, the present antenna (Fig. 7) has been ', determined to have a gain of -10 dB relative to a half-wave dipole while the prior art antenna (Fig. 1) has a gain of -30 dB relative to a half-wave dipole.
Thus, the antenna gain of about 20 dB can be improved according to the present invention.

.. . . .

In practical, the wavelength at 900 MHz is about 33.3 centimeters one quarter of which is around 8.3 centimeters. The length of the negative cylindrical conductor of the dry battery is about 4.2 centimeters.
Thus, the efective length of the coil spring 16 is around 4.0 centimeters. One end of the coil spring is in contact with the negative terminal 14b of the battery. This contact portion of the coil spring does not contribute to its effective length. The portion other than the contact portion should be made as thick as possible to reduce the inductance.

In summary, according to the present invention, the antenlla structure has a supplemental antenna inductively coupling to the loop antenna and including a coil spring and the battery negative cylindrical conductor which is perpendicularly to a p].ane including the loop antenna. Thus, even if the gain of the loop antenna is reduced due to its directivity, such gain reduction can be compensated by the supp]emental antenn~.

~,

Claims (24)

1. An antenna structure used in a portable radio device, comprising:
battery means for supplying power to said radio device, said battery means having a negative terminal and a cylindrical conductor electrically connected with said negative terminal;
loop antenna means, one end of which is connected to a common potential and the other end of which is connected to said portable radio device, the longitudinal axis of said battery means being substantially perpendicular to a plane including said loop antenna; and coil spring means one end of which is connected to said common potential and the other end of which is connected to said negative terminal, said coil spring means being inductively coupled to said loop antenna means.
2. An antenna structure as claimed in claim 1, wherein the sum of the lengths of said coil spring means and said cylindrical conductor is substantially one quarter of a wavelength used by said radio device.
3. An antenna structure as claimed in claim 1, wherein said radio device is a 900 MHZ drive, and wherein the length of said coiled spring means is substantially equal to 4.0 centimeters, and wherein the length of said cylindrical conductor is substantially equal to 4.2 centimeters.
4. An antenna structure as claimed in claim 1, wherein said radio device comprises:
receiver section means for receiving a radio signal from said loop antenna and for demodulating said radio signal to produce a demodulated signal;

decoder means for comparing a paging number contained in said demodulated signal with a paging number assigned to said radio device and for producing an alert signal if they are identical; and annunciator means responsive to said alert signal for generating an alert sound.
5. An antenna structure as claimed in claim 4, wherein said annunciator means comprises speaker means and driver means responsive to said alert signal for driving said speaker to generate said alert sound.
6. An antenna structure as claimed in claim 4, wherein said received section comprises:
resonant matching circuit means whose input is connected with said other end of said loop antenna means, and amplifies means for amplifying the output of said resonant matching circuit means and for supplying the amplified signal to said decoder means.
7. An antenna structure as claimed in claim 6, wherein said resonant matching circuit means comprises a variable capacitor connected between said other end of said loop antenna means and said common potential;
and a capacitor connected between said other end of said loop antenna means and the input of said amplifier means.
8. An antenna structure as claimed in claim 6, wherein said amplifier means comprises a transistor whose base, emitter and collector are connected with the output of said resonant matching circuit means, with said common potential and with the output of said amplifier means, respectively; a resistor connected between said base and said dry battery means; and an inductance element connected between said collector and said dry battery means.
9. An antenna used in a portable radio device, comprising:
loop antenna means for picking up a radio signal; and supplemental antenna means for picking up a radio signal, said supplemental antenna means having first conductor means inductively coupled to said loop antenna means and second conductor means electrically connected with said first conductor means and substantially perpendicular to a plane including said loop antenna means.
10. An antenna as claimed in claim 9, wherein said first conductor means comprises a helically shaped conductor and said second conductor means comprises a cylindrical conductor.
11. An antenna as claimed in claim 10, wherein said cylindrical conductor comprises a negative cylindrical conductor of a battery, said battery supplying power to said radio device and wherein said helically shaped conductor comprises a negative coil spring terminal electrically connecting a negative terminal of said battery with said radio device and fixing said battery.
12. An antenna as claimed in claim 11, wherein said radio device comprises a radio paging receiver.
13. An antenna as claimed in claim 11, wherein the sum of the lengths of said coil spring and said cylindrical conductor is substantially proportional to one quarter of a frequency used in said radio device.
14. An antenna as claimed in claim 12, wherein said radio paging receiver is used at 900 MHz, and wherein the length of said negative spring terminal is substantially equal to 4.0 centimeters, and wherein the length of said negative cylindrical conductor is substantially equal to 4.2 centimeters.
15. An antenna comprising:
a first conductor formed as a loop and connected through a resonant matching circuit to a communication circuit; and a second conductor arranged along a linear line substantially perpendicular to a plane including said loop, intersecting said plane at a substantial center of said loop and having an electric length in its longitudinal direction approximated to an odd multiple of one-fourth of an operating wavelength, said second conductor including a negative electrode cylinder of a battery and a helical conductor, said helical conductor being in contact with an outer surface of a portion of said cylinder to connect a negative potential of said battery to common potential of said communication circuit.
16. An antenna as claimed in claim 15, wherein said communication circuit operates at 900 MHz, and wherein said cylinder substantially has the length of 4.2 centimeters, and wherein said helical conductor substantially has the length of 4.0 centimeters.
17. An antenna as claimed in claim 15, wherein said communication circuit comprises a radio paging receiver.
18. A paging receiver comprising:
antenna means for picking up a radio signal;
receiver section means connected to said antenna means for demodulating said radio signal to produce a baseband signal;

decoder means for detecting from said baseband signal a paging number assigned to said paging receiver;
annunciator means responsive to the detection of said paging number for generating an alert signal; and battery means for supplying power to said receiver section means, decoder means and annunciator means, wherein said battery means comprises a dry battery having a cylindrical conductor and a negative terminal electrically connected with said cylindrical conductor, and wherein said antenna means comprises:
a loop antenna connected between said receiver section and common potential of said receiver, the longitudinal axis of said cylindrical conductor being substantially perpendicular to a plane including said loop antenna; and a coil spring connected between said negative terminal and said common potential for fixing said dry battery, said coiled spring being inductively coupled to said loop antenna.
19. A paging receiver as claimed in claim 18, wherein the sum of the lengths of said cylindrical conductor and said coil spring is substantially proportional to an odd multiple of one quarter of a frequency used in said paging receiver.
20. A paging receiver as claimed in claim 19, wherein the number of said odd multiple is one.
21. A paging receiver as claimed in claim 18, wherein the length of said cylindrical conductor is substantially equal to 4.2 centimeters, and wherein the length of said coil spring is substantially equal to 4.0 centimeters.
22. An antenna structure comprising:
loop antenna means electrically connected to a high-frequency circuit of a portable radio device;
and supplemental antenna means having a coil spring which fixes a dry battery powering said portable radio device, and a cylindrical conductor of said dry battery which conductor is electrically connected with said coil spring, said coil spring being placed to be inductively coupled to said loop antenna means, the longitudinal axis of said cylindrical conductor being substantially perpendicular to a plane including said loop antenna means.
23. A method of picking up a radio signal for a portable radio device powered by a battery and including a loop antenna, said method comprising the following steps of:
connecting one end of said loop antenna with common potential of said radio device;
connecting one end of a coil spring with said common potential;
connecting the other end of said coil spring with a negative terminal of said battery;
placing said battery so that the longitudinal axis of a negative cylindrical conductor of said battery is substantially perpendicular to a plane including said loop antenna;
placing said coil spring so that said coil spring inductively couples to said loop antenna.
24. A method as claimed in claim 23, further comprising the steps of:

demodulating a radio signal from said loop antenna to produce a demodulated signal;
detecting from said demodulated signal a paging number assigned to said radio device to produce a detection signal; and responsive to said detection signal, generating an alert signal.
CA 604693 1988-07-05 1989-07-04 Antenna structure used in portable radio device Expired - Fee Related CA1328310C (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP168175/1988 1988-07-05
JP16817588 1988-07-05

Publications (1)

Publication Number Publication Date
CA1328310C true CA1328310C (en) 1994-04-05

Family

ID=15863186

Family Applications (1)

Application Number Title Priority Date Filing Date
CA 604693 Expired - Fee Related CA1328310C (en) 1988-07-05 1989-07-04 Antenna structure used in portable radio device

Country Status (7)

Country Link
EP (1) EP0350006B1 (en)
JP (1) JPH0812970B2 (en)
KR (1) KR920007133B1 (en)
AU (1) AU625874B2 (en)
CA (1) CA1328310C (en)
DE (1) DE68915347T2 (en)
HK (1) HK131194A (en)

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5255001A (en) * 1989-08-29 1993-10-19 Nec Corporation Antenna system for portable radio apparatus
EP0415703B1 (en) * 1989-08-29 1995-01-04 Nec Corporation Antenna system for portable radio apparatus
FR2721756B1 (en) * 1994-06-24 1996-08-23 Telediffusion Fse Omnidirectional transmitting and receiving antenna system with angular diversity and polarization.
FR2724492B1 (en) * 1994-09-09 1996-11-22 Telediffusion Fse MULTIPOLARIZATION OMNIDIRECTIONAL TRANSMISSION ANTENNA SYSTEM WITH SUBSTANTIALLY CIRCULAR RADIATION DIAGRAM
DE69707024T2 (en) * 1996-01-02 2002-06-20 Texas Instruments Deutschland Passive x-y-z antenna for an answering device
JP5613589B2 (en) * 2010-03-19 2014-10-29 パナソニック株式会社 transceiver

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1056673B (en) * 1957-04-26 1959-05-06 Marconi Wireless Telegraph Co Circularly polarized antenna arrangement
JPS562707A (en) * 1979-06-21 1981-01-13 Tdk Corp Antenna
DE3100313A1 (en) * 1981-01-08 1982-08-12 Müllerschön, Wolfgang, 7441 Altenriet Double frame antenna with a telescopic rod, and a combination of two double frame antennas each with a telescopic rod
JPS61123303A (en) * 1984-11-20 1986-06-11 Matsushita Electric Ind Co Ltd Antenna of small-sized radio equipment
JP2841358B2 (en) * 1986-05-16 1998-12-24 日本電気株式会社 Auxiliary antenna
JPS62196432U (en) * 1986-06-03 1987-12-14
JP2624257B2 (en) * 1987-06-29 1997-06-25 日本電気株式会社 Radio antenna

Also Published As

Publication number Publication date
EP0350006B1 (en) 1994-05-18
JPH02124604A (en) 1990-05-11
JPH0812970B2 (en) 1996-02-07
AU625874B2 (en) 1992-07-16
EP0350006A2 (en) 1990-01-10
HK131194A (en) 1994-12-02
EP0350006A3 (en) 1990-10-24
DE68915347D1 (en) 1994-06-23
AU3790089A (en) 1990-01-11
KR920007133B1 (en) 1992-08-27
DE68915347T2 (en) 1994-08-25

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