Integrated position determination system with radio relay
21 claims: 21 independent, 0 dependent
- 1A system comprising:a housing (12);a receiver (22) disposed within said housing (12) for receiving position determining signals from satellites (110, 111, 112);a receiver antenna (3) disposed within a radome (1), said receiver antenna (3) coupled to said receiver (22) and for receiving signals from satellites;a first radio (25) including an antenna (10) disposed within said housing (12) for receiving data from third party position determination systems;position signal processing circuitry (23) disposed within said housing (12) adapted to analyze said position determining signals so as to determine the position of said housing (12);andradio signal processing circuitry (25) adapted to demodulate radio signals received from third party position determination systems and deliver them to said position signal processing circuitry (23) so as to more accurately determine the position of said housing (12);said system being characterized by: said radome (1) and receiver antenna (3) adapted to be removed and replaced with a housing top (704) having a provision for mounting a second radio (702) therein;andsaid position signal processing circuitry (23) adapted to be removed and replaced with said second radio (702), wherein upon replacing said position signal processing circuitry (23) with said second radio (702), said system is adapted to relay radio signals received from other position determination systems. System, das folgendes umfasst: ein Gehäuse (12);einen Empfänger (22), der in dem genannten Gehäuse (12) angeordnet ist, um Positionsbestimmungssignale von Satelliten (110, 111, 112) zu empfangen;eine Empfangsantenne (3), die in einem Radom (1) angeordnet ist, wobei die genannte Empfangsantenne (3) mit dem genannten Empfänger (22) gekoppelt ist und zum Empfang von Signalen von Satelliten dient;eine erste Funkeinrichtung (25) mit einer Antenne (10), die in dem genannten Gehäuse (12) angeordnet ist, um Daten von Drittparteien-Positionsbestimmungssystemen zu empfangen;eine Positionssignalverarbeitungs-Schaltkreisanordnung (23), die in dem genannten Gehäuse (12) angeordnet ist, um die genannten Positionsbestimmungssignale zu analysieren, um die Position des genannten Gehäuses (12) zu bestimmen;undeine Funksignalverarbeitungs-Schaltkreisanordnung (25), die von den Drittparteien-Positionsbestimmungssystemen empfangen Funksignale demodulieren und sie der genannten Positionssignalverarbeitungs-Schaltkreisanordnung (23) zuführen kann, um die Position des genannten Gehäuses (12) präziser zu bestimmen, wobei das System dadurch gekennzeichnet ist, dass: das genannte Radom (1) und die Empfangsantenne (3) entfernt und durch ein Gehäuseoberteil (704) mit Vorkehrungen zur Anbringung einer zweiten Funkeinrichtung (702) darin ersetzt werden können;und dassdie genannte Positionssignalverarbeitungs-Schaltkreisanordnung (23) entfernt und durch die genannte zweite Funkeinrichtung (702) ersetzt werden kann, wobei nach dem Ersatz der genannten Positionssignalverarbeitungs-Schaltkreisanordnung (23) durch die genannte zweite Funkeinrichtung (702) das genannte System von anderen Positionsbestimmungssystemen empfangene Funksignale übertragen kann. Un système comprenant: un boîtier (12);un récepteur (22) disposé à l'intérieur dudit boîtier (12) pour recevoir des signaux de détermination de position en provenance de satellites (110, 111, 112);une antenne réceptrice (3) disposée à l'intérieur d'un radome (1), ladite antenne réceptrice (3) étant couplée audit récepteur (2) et prévue pour recevoir des signaux en provenance des satellites;un premier système radio (25) comprenant une antenne (10) disposée à l'intérieur dudit boîtier (12) pour recevoir des données en provenance de systèmes de détermination de position de tierces parties;un ensemble de circuits de traitement de signaux de position (23) disposé à l'intérieur dudit boîtier (12) et adapté pour analyser lesdits signaux de détection de position de manière ainsi à déterminer la position dudit boîtier (12);etun ensemble de circuits de traitement de signaux radio (25) adapté pour démoduler les signaux radio reçus des systèmes de détermination de position de tierces parties et les fournir audit ensemble de circuits de traitement de signaux de position (23) de manière à déterminer de façon précise la position dudit boîtier (12);ledit système étant caractérisé par le fait que: ledit radome (1) et ladite antenne réceptrice (3) sont adaptés pour être retirés et remplacés par un dessus de boîtier (704) présentant une disposition pour le montage d'un second système radio (702) à l'intérieur;et queledit ensemble de circuits de traitement de signaux de position (23) est adapté pour être retiré et remplacé par ledit second système radio(702), où, lors du remplacement dudit ensemble de circuits de traitement de signaux de position (23) par ledit second système radio (702), ledit système est adapté pour relayer les signaux radio reçus à partir d'autres systèmes de détermination de position.
- 2Le système de la revendication 1 dans lequel ladite antenne (10) est une antenne fendue (1300), ladite antenne fendue (1300) ayant une bande d'antenne (1310) qui est disposée de manière circulaire, ladite bande d'antenne (1310) présentant des fentes (1301-1303) disposées à l'intérieur de telle manière que ladite antenne fendue (1300) rayonne dans un motif toroïdal. System nach Anspruch 1, wobei die genannte Antenne (10) eine Schlitzstrahlantenne (1300) ist, wobei die genannte Schlitzstrahlantenne (1300) einen Antennenstreifen (1310) aufweist, der kreisförmig angeordnet ist, wobei der genannte Antennenstreifen (1310) darin angeordnete Schlitze (1301-1303) aufweist, so dass die genannte Schlitzstrahlantenne (1300) in einem torusförmigen Muster strahlt. The system of Claim 1 wherein said antenna (10) is a slotted antenna (1300), said slotted antenna (1300) having an antenna strip (1310) that is disposed circularly, said antenna strip (1310) having slots (1301-1303) disposed therein such that said slotted antenna (1300) radiates in a toroidal pattern.
- 3Le système de la revendication 1 ou 2 dans lequel ledit système radio (25) peut émettre de telle manière que des données de correction puissent être émises vers des systèmes de détermination de position de tierces parties. System nach Anspruch 1 oder 2, wobei die genannte Funkeinrichtung (25) derart überträgt, dass Korrekturdaten an Drittparteien-Positionsbestimmungssysteme übertragen werden können. The system of Claim 1 or 2 wherein said radio (25) may transmit such that correction data may be transmitted to third party position determination systems.
- 4Le système de l'une quelconque des revendications précédentes dans lequel:l'ensemble de circuits de traitement de signaux de position (23) disposé à l'intérieur dudit boîtier (12) et adapté pour analyser les signaux de détermination de position est prévu pour résoudre un algorithme de phase porteuse permettant de déterminer la position et de déterminer des données de correction pour une détermination de position cinématique en temps réel;etl'ensemble de circuits de traitement de signaux radio (25) est adapté afin de diffuser lesdites données de correction pour une détermination de position cinématique en temps réel vers d'autres systèmes de détermination de position. System nach einem der vorstehenden Ansprüche, wobei: die in dem genannten Gehäuse (12) angeordnete Positionssignalverarbeitungs-Schaltkreisanordnung (23), die Positionsbestimmungssignale analysieren kann, einen Trägerphasenalgorithmus zur Positionsbestimmung auflöst und Korrekturdaten für eine kinematische Echtzeit-Positionsbestimmung bestimmt;unddie Funksignalverarbeitungs-Schaltkreisanordnung (25) die genannten Korrekturdaten für die kinematische Echtzeit-Positionsbestimmung an andere Positionsbestimmungssysteme überträgen kann. The system of any one of the preceding claims wherein: the position signal processing circuitry (23) disposed within said housing (12) adapted to analyze position determining signals is to solve a carrier phase algorithm for determining position and for determining correction data for real time kinematics position determination;andthe radio signal processing circuitry (25) is adapted to broadcast said correction data for real time kinematics position determination to other position determination systems.
- 5Le système de l'une quelconque des revendications précédentes dans lequel ledit ensemble de circuits de traitement de signaux de position (23) et ledit ensemble de circuits de traitement de signaux radio (25) comprennent en outre:un premier circuit imprimé (24) qui effectue des fonctions de transfert et de gestion d'énergie et des fonctions d'entrée et sortie;un second circuit imprimé (25) qui effectue des fonctions de réception et d'émission radio;etun troisième circuit imprimé (22) qui analyse des signaux reçus à partir de satellites. System nach einem der vorstehenden Ansprüche, wobei die genannte Positionssignalverarbeitungs-Schaltkreisanordnung (23) und die genannte Funksignalverarbeitungs-Schaltkreisanordnung (25) ferner folgendes umfassen: eine erste Leiterplatte (24), die Leistungsübertragungsund Verwaltungsfunktionen sowie Eingabe- und Ausgabefunktionen ausführt;eine zweite Leiterplatte (25), die Funkempfangs- und Funkübertragungsfunktionen ausführt;undeine dritte Leiterplatte (22), welche die von Satelliten empfangenen Signale analysiert. The system of any one of the preceding claims wherein said position signal processing circuitry (23) and said radio signal processing circuitry (25) further comprise: a first circuit board (24) which performs power transfer and management functions and input and output functions;a second circuit board (25) which performs radio reception and transmission functions;anda third circuit board (22) which analyzes signals received from satellites.
- 6Le système de l'une quelconque des revendications précédentes comprenant en outre une pluralité de réceptacles à connecteur (13-15) disposés à l'intérieur dudit boîtier (12) pour relier, audit système de détermination de position intégré, d'autres dispositifs ou éléments constitutifs. System nach einem der vorstehenden Ansprüche, wobei es ferner eine Mehrzahl von Verbinderaufnahmeeinrichtungen (13-15) umfasst, die in dem genannten Gehäuse (12) zur Verbindung mit anderen Vorrichtungen und Komponenten mit dem genannten integrierten Positionsbestimmungssystem angeordnet sind. The system of any one of the preceding claims further comprising a plurality of connector receptacles (13-15) disposed within said housing (12) for connecting other devices and components to said integrated position determination system.
- 7Le système de la revendication 6 comprenant en outre:un système radio externe (1201), ledit système radio externe (1201) étant couplé à l'un de ladite pluralité de réceptacles à connecteur (13-15) pour recevoir des signaux radio et couplant lesdits signaux radio reçus audit ensemble de circuits de traitement de signaux de position (23). System nach Anspruch 6, wobei das System ferner folgendes umfasst: eine externe Funkeinrichtung (1201), wobei die genannte externe Funkeinrichtung (1201) mit einer Verbinderfassung der genannten Mehrzahl von Verbinderaufnahmeeinrichtungen (13-15) verbunden ist, um Funksignale zu empfangen und um die genannten empfangenen Funksignale mit der genannten Positionssignalverarbeitungs-Schaltkreisanordnung (23) zu koppeln. The system of Claim 6 further comprising: an external radio (1201), said external radio (1201) coupled to one of said plurality of connector receptacles (13-15) for receiving radio signals and coupling said received radio signals to said position signal processing circuitry (23).
- 8Le système de la revendication 5 comprenant en outre:un boîtier interne (8, 9) disposé à l'intérieur dudit boîtier (12) pour protéger, des interférences électriques et magnétiques, ledit premier circuit imprimé (24), ledit second circuit imprimé (25) et ledit troisième circuit imprimé (22). System nach Anspruch 5, wobei das System ferner folgendes umfasst: ein internes Gehäuse (8, 9), das in dem genannten Gehäuse (12) angeordnet ist, um die genannte erste Leiterplatte (24), die genannte zweite Leiterplatte (25) und die genannte dritte Leiterplatte (22) von elektromagnetischen und magnetischen Interferenzen abzuschirmen. The system of Claim 5 further comprising: an internal housing (8, 9) disposed within said housing (12) for shielding said first circuit board (24), said second circuit board (25) and said third circuit board (22) from electric and magnetic interference.
- 9Le système de l'une quelconque des revendications précédentes comprenant en outre:un chercheur de position optique (510) relié audit système de telle manière que ledit boîtier (12) puisse être positionné de manière précise sur un emplacement spécifique. System nach einem der vorstehenden Ansprüche, wobei das System ferner folgendes umfasst: eine optische Ortsbestimmungseinrichtung (510), die in dem genannten System so angeschlossen ist, dass das genannte Gehäuse (12) präzise über einer bestimmten Position positioniert werden kann. The system of any one of the preceding claims further comprising: an optical position finder (510) connected in said system such that said housing (12) may be accurately positioned over a specific location.
- 10Le système de l'une quelconque des revendications précédentes comprenant en outre:un amplificateur à faible bruit (5) relié audit récepteur. System nach einem der vorstehenden Ansprüche, wobei das System ferner folgendes umfasst: einen Low-Noise-Verstärker (5), der mit dem genannten Empfänger verbunden ist. The system of any one of the preceding claims further comprising: a low noise amplifier (5) connected to said receiver.
- 11Le système de l'une quelconque des revendications précédentes comprenant en outre:un boîtier d'amplificateur à faible bruit (4) relié audit boîtier (12) sur lequel est monté au moins un amplificateur à faible bruit (5, 6). System nach einem der vorstehenden Ansprüche, wobei das System ferner folgendes umfasst: ein Low-Noise-Verstärkergehäuse (4), das mit dem genannten Gehäuse (12) verbunden ist, an dem mindestens ein Low-Noise-Verstärker angebracht ist (5, 6). The system of any one of the preceding claims further comprising: a low noise amplifier housing (4) connected to said housing (12) onto which at least one low noise amplifier is mounted (5, 6).
- 12Le système de la revendication 11 dans lequel ledit boîtier d'amplificateur à faible bruit (4) peut être retiré en même temps que ledit radome (1) dudit boîtier (12) et être remplacé par un dessus de boîtier (704) tel que ledit second système radio (702) puisse être placé dans ledit dessus de boîtier (704) de manière à recevoir et à relayer des signaux radio. System nach Anspruch 1, wobei das genannte Low-Noise-Verstärkergehäuse (4) entlang dem genannten Radom (1) von dem Gehäuse (12) entfernt und durch das genannte Gehäuseoberteil (704) ersetzt werden kann, so dass die genannte zweite Funkeinrichtung (702) in dem genannten Gehäuseoberteil (704) platziert werden kann, um Funksignale zu empfangen und zu übertragen. The system of Claim 11 wherein said low noise amplifier housing (4) may be removed along with said radome (1) from said housing (12) and replaced with said housing top (704) such that said second radio (702) may be placed into said housing top (704) so as to receive and relay radio signals.
- 13Le système de l'une quelconque des revendications précédentes dans lequel ladite antenne radio (10) comprend une antenne de connexion (44-51). System nach einem der vorstehenden Ansprüche, wobei die genannte Funkantenne (10) eine Patch-Antenne (44-51) umfasst. The system of any one of the preceding claims wherein said radio antenna (10) comprises a patch antenna (44-51).
- 14Le système de la revendication 2 dans lequel ladite antenne fendue (1300) fonctionne à une fréquence de 450 MégaHertz. System nach Anspruch 2, wobei die genannte Schlitzstrahlantenne (1300) mit einer Frequenz von 450 Megahertz arbeitet. The system of Claim 2 wherein said slotted antenna (1300) operates at a frequency of 450 MegaHertz.
- 15Le système de la revendication 2 dans lequel ladite antenne fendue (1300) diffuse à une fréquence de 900 MégaHertz. System nach Anspruch 2, wobei die genannte Schlitzstrahlantenne (1300) mit einer Frequenz von 900 Megahertz sendet. The system of Claim 2 wherein said slotted antenna (13 00) broadcasts at a frequency of 900 MegaHertz.
- 16Le système de l'une quelconque des revendications précédentes comprenant en outre:des réceptacles (13-15) pour coupler, audit système, des dispositifs externes;etun système radio externe (1201) comprenant un mécanisme de liaison adapté pour coupler auxdits réceptacles (13-15) de telle manière que .ledit système radio externe (1201) puisse être couplé auxdits réceptacles (13-15) afin que des signaux radio puissent être couplés entre ledit système radio externe (1201) et ledit ensemble de circuits de traitement de signaux de position (23) ou ledit circuit imprimé. System nach einem der vorstehenden Ansprüche, wobei das System ferner folgendes umfasst: Aufnahmeeinrichtungen (13-15) zur Kopplung externer Vorrichtung mit dem genannten System;undeine externe Funkeinrichtung (1201) mit einem Verbindungsmechanismus, der die genannte Aufnahmeeinrichtung (13-15) so koppeln kann, dass die genannte externe Funkeinrichtung (1201) mit den genannten Aufnahmeeinrichtungen (13-15) gekoppelt werden kann, so dass Funksignale zwischen der genannten externen Funkeinrichtung (1201) und der genannten Positionssignalverarbeitungs-Schaltkreisanordnung (23) oder Leiterplatte gekoppelt werden können. The system of any one of the preceding claims further comprising: receptacles (13 -15) for coupling external devices to said system;andan external radio (1201) including a connection mechanism adapted to couple to said receptacle (13-15) such that said external radio (1201) may be coupled to said receptacles (13-15) such that radio signals may be coupled between said external radio (1201) and said position signal processing circuitry (23) or circuit board.
- 17A network comprising:a first housing (101) including provision for attachment of an optical location finder (510) thereto for precisely locating said first housing (101) over a known reference point (1010);a first position determination system having an antenna and a receiver, said first determination system being mounted within said first housing (101) for receiving position determination signals from satellites;a first radio antenna mounted within said first housing (101) for transmitting and receiving radio signals at a first radio frequency;a first circuit board disposed within said first housing (101) and connected to said first position determination system receiver and connected to said first radio antenna, said first circuit board adapted to analyze position determining signals and radio signals so as to accurately determine the position of said first housing (101);a second housing (1020);a second position determination system having an antenna and a receiver, said second position determination system being mounted within said second housing (1020) for receiving position determination signals from satellites;a second radio antenna mounted within said second housing (1020) for transmitting and receiving radio signals at said first radio frequency;a second circuit board disposed within said second housing (1020) and connected to said second position determination system receiver and connected to said second radio antenna, said second circuit board adapted to analyze position determining signals and radio signals so as to accurately determine the position of said second housing (1020);anda system according to any one of claims 1-16, wherein said first radio in said system receives and broadcasts radio signals at said first radio frequency, and said second radio receives and relays radio signals at a second radio frequency, wherein the network is an integrated position determination system network. Netzwerk, das folgendes umfasst: ein erstes Gehäuse (101), das eine Vorkehrung zur Anbringung einer optischen Ortsbestimmungseinrichtung (510) daran zur präzisen Lokalisierung des genannten ersten Gehäuses (101) über einem bekannten Bezugspunkt (1010) aufweist;ein erstes Positionsbestimmungssystem mit einer Antenne und einem Empfänger, wobei das genannte erste Bestimmungssystem innerhalb des genannten ersten Gehäuses (101) zum Empfang von Positionsbestimmungssignalen von Satelliten angebracht ist;eine erste Funkantenne, die in dem genannten ersten Gehäuse (101) angebracht ist, um Funksignale mit einer ersten Funkfrequenz zu übertragen und zu empfangen;eine erste Leiterplatte, die in dem genannten ersten Gehäuse (101) angeordnet und mit dem genannten ersten Positionsbestimmungssystemempfänger und der genannten ersten Funkantenne verbunden ist, wobei die genannte erste Leiterplatte Positionsbestimmungssignale und Funksignale zur präzisen Bestimmung der Position des genannten Gehäuses (101) analysieren kann;ein zweites Gehäuse (1020);ein zweites Positionsbestimmungssystem mit einer Antenne und einem Empfänger, wobei das genannte zweite Positionsbestimmungssystem innerhalb des genannten zweiten Gehäuses (1020) zum Empfangen von Positionsbestimmungssignalen von Satelliten angebracht ist;eine zweite Funkantenne, die in dem genannten zweiten Gehäuse (1020) zum Übertragen und Empfangen von Funksignalen auf der genannten ersten Funkfrequenz angebracht ist;eine zweite Leiterplatte, die in dem genannten zweiten Gehäuse (1020) angeordnet und mit dem genannten zweiten Positionsbestimmungssystemempfänger und der genannten zweiten Funkantenne verbunden ist, wobei die genannte zweite Leiterplatte Positionsbestimmungssignale und Funksignale zur präzisen Bestimmung der Position des genannten zweiten Gehäuses (1020) analysieren kann;undein System gemäß den Ansprüchen 1 bis 6, wobei die genannte erste Funkeinrichtung in dem genannten System Funksignale auf der genannten ersten Funkfrequenz empfängt und sendet, und wobei die genannte zweite Funkeinrichtung Funksignale auf einer zweiten Funkfrequenz empfängt und überträgt, wobei das Netzwerk ein integriertes Positionsbestimmungssystemnetzwerk ist. Un réseau comprenant: un premier boîtier (101) comprenant une disposition pour la fixation à celui-ci d'un chercheur de localisation optique (510) pour localiser de manière précise ledit premier boîtier (101) sur un point de référence connu (1010);un premier système de détermination de position comprenant une antenne et un récepteur, ledit premier système de détermination étant monté à l'intérieur dudit premier boîtier (101) pour recevoir des signaux de détermination de position en provenance de satellites;une première antenne radio montée à l'intérieur dudit premier boîtier (101) pour émettre et recevoir des signaux radio à une première fréquence radio;un premier circuit imprimé disposé à l'intérieur dudit premier boîtier (101) et relié au récepteur dudit premier système de détermination de position et relié à ladite première antenne radio, ledit premier circuit imprimé étant adapté pour analyser des signaux de détermination de position et des signaux radio de manière à déterminer avec précision la position dudit premier boîtier (101);un second boîtier (1020);un second système de détermination de position comprenant une antenne et un récepteur, ledit second système de détermination de position étant monté à l'intérieur dudit second boîtier (1020) pour recevoir des signaux de détermination de position en provenance de satellites;une seconde antenne radio montée à l'intérieur dudit second boîtier (1020) pour émettre et recevoir des signaux radio à ladite première fréquence radio;un second circuit imprimé disposé à l'intérieur dudit second boîtier (1020) et relié au récepteur dudit second système de détermination de position et relié à ladite seconde antenne radio, ledit second circuit imprimé étant adapté pour analyser des signaux de détermination de position et des signaux radio de manière à déterminer avec précision la position dudit second boîtier (1020);etun système selon l'une quelconque des revendications 1-16, dans lequel ledit premier système radio dudit système reçoit et diffuse des signaux radio à ladite première fréquence radio, et dans lequel ledit second système radio reçoit et relaie des signaux radio à une seconde fréquence radio, le réseau étant un réseau de système de détermination de position intégré.
- 18Le réseau de la revendication 17 dans lequel ladite seconde fréquence radio est différente de ladite première fréquence radio. Netzwerk nach Anspruch 17, wobei sich die genannte zweite Funkfrequenz von der genannten ersten Funkfrequenz unterscheidet. The network of claim 17 wherein said second radio frequency is different from said first radio frequency.
- 19Le réseau de la revendication 17 dans lequel ladite première fréquence radio et ladite seconde fréquence radio sont égales l'une à l'autre. Netzwerk nach Anspruch 17, wobei die genannte erste Funkfrequenz und die genannte zweite Funkfrequenz identisch sind. The network of claim 17 wherein said first radio frequency and second radio frequency are equal to one another.
- 20Le réseau de l'une quelconque des revendications 17-19 dans lequel ledit premier boîtier (101) est identique audit second boîtier (1020) et dans lequel ledit premier boîtier (101) est identique audit boîtier du système. Netzwerk nach einem der Ansprüche 17 bis 19, wobei das genannte erste Gehäuse (101) mit dem genannten zweiten Gehäuse (1020) identisch ist, und wobei das genannte erste Gehäuse (101) mit dem genannten Systemgehäuse identisch ist. The network of any one of claims 17-19 wherein said first housing (101) is identical to said second housing (1020) and wherein said first housing (101) is identical to said system housing.
- 21Le réseau de l'une quelconque des revendications 17-20 comprenant en outre:un quatrième boîtier (1040);un quatrième circuit imprimé disposé à l'intérieur dudit quatrième boîtier (1040);un second dessus de boîtier fixé audit quatrième boîtier (1040) de manière à entourer ledit quatrième circuit imprimé à l'intérieur dudit quatrième boîtier (1040);un quatrième système radio disposé à l'intérieur dudit quatrième boîtier (1040) et relié audit quatrième circuit intégré pour recevoir et rediffuser des signaux radio à une première fréquence radio;etun second système radio amovible disposé à l'intérieur dudit second dessus de boîtier et relié audit quatrième circuit imprimé de telle manière que des signaux radio puissent être reçus et relayés entre ledit premier système radio amovible et ledit second système radio amovible à ladite seconde fréquence radio. Netzwerk nach einem der Ansprüche 17 bis 20, wobei das Netzwerk ferner folgendes umfasst: ein viertes Gehäuse (1040);eine vierte Leiterplatte, die in dem genannten vierten Gehäuse (1040) angeordnet ist;ein zweites Gehäuseoberteil, das an dem genannten vierten Gehäuse (1040) angebracht ist, so dass es die genannte vierte Leiterplatte in dem genannten vierten Gehäuse (1040) einschließt;eine vierte Funkeinrichtung, die in dem genannten vierten Gehäuse (1040) angeordnet und mit der genannten vierten Leiterplatte für den Empfang und zur Ballsendung von Funksignalen auf einer ersten Funkfrequenz verbunden ist;undeine zweite entfernbare Funkeinrichtung, die in dem genannten zweiten Gehäuseoberteil angeordnet und mit der genannten vierten Leiterplatte verbunden ist, so dass Funksignale zwischen der genannten ersten Funkeinrichtung und der genannten zweiten entfernbaren Funkeinrichtung auf der genannten zweiten Funkfrequenz empfangen und übertragen werden können. The network of any one of claims 17-20 further comprising: a fourth housing (1040);a fourth circuit board disposed within said fourth housing (1040);a second housing top attached to said fourth housing (1040) so as to enclose said fourth circuit board within said fourth housing (1040);a fourth radio disposed within said fourth housing (1040) and connected to said fourth circuit board for receiving and rebroadcasting radio signals at a first radio frequency;anda second removable radio disposed within said second housing top and connected to said fourth circuit board such that radio signals may be received and relayed between said first removable radio and said second removable radio at said second radio frequency.
Independent claims21
44 paragraphs in 5 sections, as filed
TECHNICAL FIELD
The present claimed invention relates to the field of position determination systems. More specifically, the present claimed invention relates to an improved position determination device and radio relay device.
BACKGROUND ART
A typical differential global positioning system (DGPS) network includes a receiver which receives ephemerides data from satellites. Typically, such data is received from global positioning system (GPS) satellites which are a part of the GPS satellite network or satellites which are a part of the Global Navigation Satellite System(GLONASS). The ephemerides data is processed via an electronics package located within the GPS unit. The GPS unit receives differential correction data through a separate radio which is typically connected to the GPS unit by cable. The differential correction data is typically obtained from a radio coupled to a GPS unit which is located at a fixed site which is placed at a known location or it is obtained from other sources and is conveyed via radio. By processing the differential correction data together with the data received at the particular GPS receiver, the location of the GPS unit may be determined within a high degree of accuracy. This same method may be used to perform real time kinematic (RTK) surveys so as to accurately determine the relative position of the GPS system with sub centimeter accuracy.
Prior art GPS devices used in DGPS applications and RTK applications typically require numerous separate, distinct component units which are connected via cables. For example, the GPS receiver and processor would constitute one unit and the terrestrial radio would constitute a second unit which would be coupled to the GPS processor via cable. Typically, an input/output (I/O) unit which includes a display for data monitoring and a keypad for data input is also required. The I/O unit is coupled to the GPS receiver/processor unit and to the terrestrial radio via cable. Some systems also require the attachment of a separate battery via cable. Because multiple separate units are used in these prior art systems, the systems are bulky and they are difficult to move around.
For example, one type of prior art system which is typically referred to as "handheld" includes a GPS antenna, a GPS processor, a display processor, and a display in a single unit. A DGPS radio antenna and receiver are provided in a separate unit or units which are connected to the GPS processor. Another type of prior art system places the GPS antenna in an antenna unit and the display in a separate display unit. The GPS processor and the display processor may be contained in the GPS antenna unit, the display unit, or in a separate unit. A DGPS radio antenna and receiver are provided in a separate unit or units connected to the GPS processor. This format allows the user to separate the GPS antenna and the display units so that the GPS position and time information can be observed and operated upon in a protected environment.
The use of multiple units to house the various components required for prior art DGPS systems, and the requirement for cables and connectors to couple the units creates problems regarding reliability and durability. This is particularly true for DGPS systems which are mobile and which are jarred and shaken by use and movement. In addition, the systems are expensive to manufacture and assemble. Furthermore, the connections are often bulky, expensive and prone to breakage or malfunction. In addition, it is difficult to move the various boxes and cables around.
Typically, the GPS unit receivers are separated by long distances or by immobile structures; therefore, radio relay units are used to get the signal from one GPS unit to anther GPS unit. Prior art radio relay systems for relaying GPS signals typically include multiple separate components such as a transceiver operating at one frequency which is coupled via cable to a separate transceiver operating at a second frequency. These relay systems typically receive signals through an antenna which is cabled to a processor which is then cabled to a radio which rebroadcasts the signal through an antenna attached by cable to the radio. These relay systems are bulky and difficult to move around. Furthermore, these relay systems typically are expensive and are difficult to maintain and operate due to the fact that each of the components of the radio relay system is unique. In addition, most of the currently available systems are not durable and reliable enough for applications such as RTK surveying and operation in harsh environments such as construction sites.
United States Patent No. 5,654,717 to Nichols et al. discloses a GPS/radio antenna for receiving a GPS satellite signal and a DGPS radio signal.
United States Patent No. 5,434,789 to Fraker et al. discloses a GPS golf diagnostic system for receiving radio signals from earth orbiting GPS satellites.
What is needed is a simple GPS network which is easy to move from place to place and which is durable, reliable, and inexpensive to manufacture and assemble. More specifically, a GPS network which includes a GPS unit, a radio and a radio relay which will reliably operate in difficult environments such as those presented by repeated movement and use in harsh environments such as construction sites is required. Also, a GPS network consisting of components which are easy to operate, use and maintain is required.
DISCLOSURE OF THE INVENTION
The present invention meets the above need by means of a system as disclosed in claim 1 attached herein. The system includes a position determination device which can be easily moved and which can be easily and cheaply manufactured and assembled. The above achievement has been accomplished by using a single integrated structure to house the position determination antenna the GPS receiver, a power conditioning system, the position determination processor, and the DGPS radio antenna and DGPS radio circuit board. The position determination device may be easily converted to a radio relay by altering the components located within the housing. The resulting position determination network includes an integrated position determination device and radio relay combination which will reliably operate in difficult environments and which is easy to operate, use and maintain.
A position determination network which includes all of the elements required for DGPS position determination and RTK is disclosed. The network includes a position determination device which holds all of the components necessary for position determination and RTK using DGPS techniques within a single housing. Though the position determination system may be operated using any of a number of different sources of telemetry signals such as GLONASS and the like, the positioning system will be herein described with reference to the use of GPS satellites for purposes of clarity. The GPS satellites include information on the ephemerides of each GPS satellite, parameters identifying the particular GPS satellite, and corrections for ionospheric signal propagation delays. A useful discussion of the GPS and techniques for obtaining position information from the satellite signals is found in Tom Logsdon, <u>The Navstar Global Positioning System</u>, Van Nostrand Reinhold, 1992, pp. 17-90, incorporated by reference herein. Reference to a Global Positioning System or GPS herein refers to a Global Positioning System, to a GLONASS system, and to any other compatible satellite based system that provides information by which an observers position and/or the time of observation can be determined. Further information regarding GPS position determination is contained in US patent number 5,519,620 by Nicholas Talbot et al. entitled CENTIMETER ACCURATE GLOBAL POSITION SYSTEM RECEIVER FOR ON-THE-FLY REAL TIME KINEMATIC MEASUREMENT AND CONTROL which is incorporated herein by reference.
The term "DGPS" as used herein and "DGPS radiowave" signal as used herein includes electromagnetic signals containing GPS differential correction information transmitted by other GPS units and/or systems, by the Coast Guard DGPS network, by radio beacon signals, by FM subcarrier signals, by digital subcarrier on an analog two-way radio, by digital radio signals, by cellular telephone signals, by digital cellular telephone signals, by private and semi private network signals that use terrestrial and/or satellite apparatus for transmitting DGPS signals for correction of the GPS location and/or time information.
A first embodiment includes a GPS antenna, GPS/DGPS processing circuitry, a radio and a radio antenna. A power supply battery is placed into a cylindrical pole which is attached to the bottom of the housing so as to form a complete, portable, self-contained GPS system. A display panel includes an on/off switch and lighted indicators. A separate display unit is coupled to the GPS unit for display of position information. Communication between the display unit and the GPS unit may be by cable, communication link, or infrared methods. The separate display unit contains its own power source. However, in one embodiment, the display unit is powered by the GPS unit through the GPS unit's power supply.
A second embodiment is disclosed in which a tripod base instead of a pole is mounted to the housing. The tripod base includes a location mechanism which is used to precisely locate the GPS system with respect to a monument. The location mechanism may be a prismatic optical finder, a laser optical finder, a fixed height tripod, or a laser finder implemented in a tripod with a fourth leg. The tripod base includes a battery pack mounted on or within the tripod. This second embodiment may be used to precisely align a GPS system over a given reference point such as an United States Geological Survey (USGS) site. This allows for easy precise location of a GPS system. The housing and all of the components within the housing are the same as those disclosed in the first embodiment. Thus, the parts are interchangeable. This allows for economies of scale in manufacturing, easy assembly and maintenance, and allows for flexible use of the position determination network components in multiple applications.
In a third embodiment a radio relay unit is disclosed which uses many of the same components as do the first two embodiments. The radio relay unit includes a radio antenna, radio processing circuitry, and a power supply. A transceiver may be installed into the radio relay unit for transmitting and receiving DGPS correction information at the same frequency, or at a different frequency. DGPS correction information may be transmitted either from a second GPS unit or from other sources. This correction data may then be received directly by a GPS unit. Alternatively, the correction data may be received by a radio relay unit which then rebroadcasts the correction information. A GPS unit then receives the rebroadcast correction information on the radio contained within the GPS unit. Alternatively, multiple relay units may be used to transmit correction information over larger distances. Since the radio relay unit uses many of the same components used in the GPS unit, components between the first two embodiments and the third embodiment may be used interchangeably. In addition, the batteries, poles and tripods may be used interchangeably depending on the requirements of a particular project.
A position determination network which includes both the first, the second, and the third embodiments of the present invention is also disclosed. In this network a first GPS system consisting of a GPS unit mounted on a tripod is used as a base station and is located over a known location using the finder located in the tripod. A radio relay system composed of a radio relay unit mounted on a tripod is located within radio range from the first GPS system. A second radio relay system is placed near the site where locations are to be determined. Additional radio relays may be used to extend the range even further. A GPS system including a GPS unit mounted on a pole is then used to pinpoint the desired geographic location or locations.
Since the GPS antenna, GPS radio circuitry, GPS and DGPS processing circuitry, power conditioning system, radio, and radio antenna are integrated into a single housing, a GPS system which is easy to move, easy to use, and easy to assemble and disassemble is obtained. In addition, a more durable and reliable GPS unit results due to the shielding and protection of the various components resulting from the integration of the various components into a single housing. Since many of the components are common to both the GPS system and the radio relay system, the position determination network allows for inexpensive manufacturing of the required components. The GPS system and the radio relay system are easy to assemble and easy to repair due to the usage of a common assembly scheme and due to the use of common components. In addition, due to the design of the system and since a single housing is used, the GPS system and the radio relay system are more reliable and durable than the multiple cable connected units found in prior art systems.
These and other objects and advantages of the present invention will no doubt become obvious to those of ordinary skill in the art after having read the following detailed description of the preferred embodiments which are illustrated in the various drawing figures.
BRIEF DESCRIPTION OF THE DRAWINGS
The accompanying drawings, which are incorporated in and form a part of this specification, illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention: <ul id="ul0001" list-style="none" compact="compact"><li>FIGURE 1 is a perspective view of an integrated GPS and radio relay system in accordance with the present invention.</li><li>FIGURE 2 is a diagram of a integrated GPS and radio relay system in accordance with the present invention.</li><li>FIGURE 3 is a cut away side-sectional view of the integrated GPS and radio relay system of Figure 1 in accordance with the present invention.</li><li>FIGURE 4 is an exploded view of a integrated GPS and radio relay system in accordance with the present invention.</li><li>FIGURE 5 is a expanded view illustrating a magnesium housing and the components located within the magnesium housing in accordance with the present invention.</li><li>FIGURE 6 is perspective view of a GPS unit mounted onto a tripod in accordance with a second embodiment of the present invention.</li><li>FIGURE 7 is a perspective view of a radio unit mounted to a tripod in accordance with the present invention.</li><li>FIGURE 8 is a diagram of a radio relay unit mounted to a tripod in accordance with a third embodiment of the present invention.</li><li>FIGURE 9 is an exploded view of a radio relay unit mounted to a tripod in accordance with a third embodiment of the present invention.</li><li>FIGURE 10 is a cut-away side-sectional view of the radio relay system of Figure 7 in accordance with the present invention.</li><li>FIGURE 11 is a schematic view of a network which incorporates the first embodiment and the second embodiment and the third embodiment in accordance with the present invention.</li><li>FIGURE 12 is a schematic view of a network which includes external radios in accordance with the present invention.</li><li>FIGURE 13 is a perspective view of a slot antenna in accordance with the present invention.</li></ul>
BEST MODE FOR CARRYING OUT THE INVENTION
Reference will now be made in detail to the preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. While the invention will be described in conjunction with the preferred embodiments, it will be understood that they are not intended to limit the invention to these embodiments. Furthermore, in the following detailed description of the present invention, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be obvious to one of ordinary skill in the art that the present invention may be practiced without these specific details. In other instances, well known methods, procedures, components, and circuits have not been described in detail as not to unnecessarily obscure aspects of the present invention.
Figure 1 shows GPS system which includes GPS unit 101 which is mounted onto pole 102. GPS unit 101 includes housing 12 which mates with low noise amplifier housing 4(not shown) and radome 1 to enclose the various internal components of GPS unit 101. Bumper ring 18 and bumper 19 absorb shock from dropping or moving GPS unit 101. Pole 102, along with GPS unit 101 forms a single integral GPS system which can be easily moved from place to place. All of the electronics for location determination using DGPS correction information are located within the GPS unit 101 and pole 102. Display panel 200 includes lighted indicator 202, lighted indicator 203 and lighted indicator 204 and on/off switch 201. Lighted indicators 202-204 indicate conditions such as, for example, "power on," "radio operational," and "receiving correction data." Display panel 200 could include any of a number of other configurations and could include indications of signal strength, accuracy, communication quality, etc. In addition, display panel 200 may indicate satellite lock. A separate display unit 900 including display 901 is coupled to GPS unit 101 for display of location and correction data.
Figure 2 shows GPS antenna 3 to receive ephemerides from satellite 110, satellite 111 and satellite 112 as shown by arrows 113-115. Antenna 3 receives ephemerides on two separate frequencies so as to obtain two sets of signals or "channels." One set of signals is transmitted to low noise amplifier 5 as illustrated by arrow 117 and the other set of signals is transmitted to low noise amplifier 6 as shown by arrow 118. Electrical signals are amplified by low noise amplifier 5 and the resulting signal is transmitted to GPS radio frequency circuit board 22 as shown by arrow 119. Similarly, low noise amplifier 6 amplifies the incoming signals and transmits them to GPS radio frequency circuit board 22 as indicated by arrow 120. GPS radio frequency circuit board 22 contains radio reception and transmission circuitry which then transmits the signals as shown by arrow 121 to digital circuit board 23. Digital circuit board 23 contains logic for processing GPS ephemerides and correction information so as to determine the exact position of the GPS system. Radio antenna 10 receives radio broadcasts as illustrated by arrow 128 which contains DGPS error correction information from radio relay 700 which is transmitted to radio circuit board 25, as shown by arrow 126. However, error correction information may be received from any of a number of other sources. Radio circuit board 25 includes electronic circuits for broadcasting and receiving radio signals. Radio circuit board 25 processes the signal and transmits the signal to digital circuit board 23 as shown by arrow 131. Using the error correction data in combination with the ephemerides received from satellites 110-112, digital circuit board 23 calculates the position with greatly increased accuracy. In one embodiment, error correction data includes calculated pseudoranges. In a RTK system, error correction data includes carrier phase data and pseudoranges. The position may then be displayed on display unit 900.
Continuing with Figure 2, when GPS unit 101 is used to determine error correction, digital circuit board 23 determines the correction information using known location information. The known location information may be input using display unit 900. The correction information is then sent, as shown by arrow 132 to radio circuit board 25 (connectors attached to power and I/O circuit board 24 route the signal directly). Radio circuit board 25 then broadcasts the correction information through radio antenna 10 as shown by arrow 127. Radio signals are sent and received at a frequency of 2.44 GigaHertz. However, any of a number of other frequencies could be used.
Continuing with Figure 2, power I/O circuit board 24 contains electronic circuitry for power management and transfer functions and regulates power to other components. Power I/O circuit board 24 is coupled to battery 41 as shown by arrow 145 and provides power and power management functions for the electronic components GPS unit 101. Power I/O circuit board is directly coupled to radio circuit board 25 and digital circuit board 23 as shown by arrows 124. An on/off switch on display panel 200 is connected to power I/O circuit board as shown by arrow 129 such that, by engaging the on/off switch, the GPS unit may be turned on and off. Input and output to external devices is coupled through I/O ports 13-15 as shown by box 140 and arrows 141 and 142. Display unit 900 is coupled to GPS unit 101 through I/O ports 13-15 as shown by arrows 143-144.
Figure 3 shows GPS antenna 3 to be mounted onto ground plane 2. Ground plane 2 lies over low noise amplifier housing 4 and is enclosed by radome 1. Low noise amplifier housing 4 fits into housing 12. Upper magnesium housing 8 is secured by flexible bumper 7 to low noise amplifier housing 4. Insulating ring 282 fills the space between bumper ring 18 and low noise amplifier housing 4 and absorbs shock from bumper ring 18. Bumper 19 is molded to bumper ring 18 and is a soft plastic material for absorbing shock and vibration. GPS antenna 3 is coupled to low noise amplifier 5 by semi-rigid coaxial cable 16 which couples to connector 250. Connector 250 couples to receptacle 216 which is attached to low noise amplifier 5. Similarly, semi-rigid coaxial cable 17 extends from GPS antenna 3 to connector 251. Connector 251 mates with receptacle 217 which is attached to low noise amplifier 6. Low noise amplifier 5 and low noise amplifier 6 are small circuit boards which attached to low noise amplifier housing 4 and which amplify portions of the GPS signal separately. Low noise amplifier housing 4 is formed of plastic and the bottom side of low noise amplifier housing 4 is coated with copper to create an electromagnetic interference (EMI) and radio frequency interference(RFI) enclosure so as to shield EMI and RFI emissions from and to low noise amplifiers 5-6. Connector 214 attaches tu the bottom of low noise amplitier 5 and couples cable 212 to bulkhead connector 210. Bulkhead connector 210 engages a connector receptacle on GPS radio frequency circuit board 22 so as to electrically connect low noise amplifier 5 to GPS radio frequency circuit board 22. Connector 215 attaches to a connector receptacle attached to the bottom of low noise amplifier 6 and couples cable 213 to bulkhead connector 211. Bulkhead connector 211 engages a connector receptacle on GPS radio frequency circuit board 22 so as to electrically connect low noise amplifier 5 to GPS radio frequency circuit board 22.
Continuing with Figure 3, antenna 10 includes a parallel feed network which feeds patch antennas 44-51 (46-51 are not shown). Flexible bumper 11 supports lower magnesium housing 9 which mates with upper magnesium housing 8 so as to enclose digital circuit board 23, power I/O circuit board 24, radio circuit board 25, GPS radio frequency circuit board 22 and ring 21. Lower magnesium housing 8 and upper magnesium housing 9 are made of a magnesium which shields RFI and EMI emissions. In order to decrease weight, lower magnesium housing 9 and upper magnesium housing 8 do not completely enclose the top and bottom of the enclosure which they form. Metallic cloth 272 is attached, using adhesive to lower magnesium housing 9 and metallic cloth 271 is attached, using adhesive strips to upper magnesium housing 8. Metallic cloth strip 270 attaches to both lower magnesium housing 9 and upper magnesium housing 10 so as to form the sides of the enclosure. Metallic cloth 271 and metallic cloth 272 and metallic cloth strip 270 may be made of a metallic cloth such as a nickel plated polyester. Connector 26 which mates with a connector receptacle located on power I/O circuit board 24 connects the circuit boards 22-25 to I/O port 13 (not shown), I/O port 14, and I/O port 15 (not shown), display panel 200 and power source coupling 55 through cable 40. Antenna 10 includes a connector receptacle which directly couples to connector 280 which mates with a connector receptacle located on radio circuit board 25 so as to connect radio circuit board 25 with antenna 10. Power source coupling 55 electrically connects with battery 1 to provide power to GPS unit 101. Provision for connectivity of additional components and units is obtained by I/O ports 13-15 which allow for additional components to be coupled to the GPS system such as display and input units and alternate power sources.
Figure 4 shows housing 12 to include openings into which connector receptacles are disposed so as to form I/O ports 13-15. Antenna 10 includes an omnidirectional parallel fed array of patch antennas 44-51. It can be seen that lower magnesium housing 9 fits within bumper 11 and upper magnesium housing 8 fits within bumper 7 so as to shield the electronics within the enclosure formed by lower magnesium housing 9, upper magnesium housing 8, and magnetic cloth 270-272 from shock and vibration. Bumper ring 18 which is connected to bumper 19 dampens shock to GPS unit 101. Bumper 19 and bumper ring 18 are particularly effective when GPS unit 101 is dropped as bumper 19 is likely to be the first part of GPS unit 101 to strike the ground. For example, vibrations resulting from such contact would be absorbed first by bumper 19 and any excess shock would be channeled through bumper ring 18 and absorbed by insulating ring 282. Insulating ring 282 is made of a closed cell elastomeric foam such as Poron.
Continuing with Figure 4, since lower magnesium housing 9, upper magnesium housing 8, and magnetic cloth 270-272 are made of material which reduces RFI and EMI emission, the enclosure which they form acts as a RFI and EMI shield. The use of bulkhead connectors 210-211 eliminates the need to have openings in upper magnesium housing 8 for cables to couple low noise amplifiers 5-6 to GPS radio frequency circuit board 22; thereby increasing the shielding effect. Bolts 19 extend through upper magnesium housing 8 and lower magnesium housing 9 and mate with nuts 25 so as to secure upper magnesium housing 8 to lower magnesium housing 9.
Figure 5 shows power I/O circuit board 24 and digital circuit board 23 and radio circuit board 25 and GPS radio frequency board 22 to be located between upper magnesium housing 8 and lower magnesium housing 9. Connector 26 which is electrically coupled to cable 40 connects directly to a connector receptacle attached to power I/O circuit board 24. Connector 283 mates with a corresponding connector receptacles so as to electrically connect GPS radio frequency circuit board 22 to digital circuit board 23. Connector 284 mates with a corresponding connector receptacles so as to electrically connect power I/O circuit board 24 to digital circuit board 23. Connector 285 mates with a corresponding connector receptacles so as to electrically connect radio circuit board 25 to power I/O circuit board 24. Bolts 219 engage openings 291 in upper magnesium housing 8 and pass through openings in spacers 60 and through threaded openings in bottom magnesium housing so as to secure circuit boards 22-25 within upper magnesium housing 8 and lower magnesium housing 9. Nuts 225 engage each of screws 219. Ring 21 to which polyester sheet 20 is attached supports GPS radio frequency circuit board 22 on top of polyester sheet 20 so as to separate GPS radio frequency circuit board 22 from the other circuit boards 23-25 so as to limit interference from EMI from radio frequency circuit board 25 and power I/O circuit board 24. Spacers 60 which may be stainless steel PEM spacers support and separate circuit boards 22-25.
Figure 6 shows a second embodiment which includes a tripod base 502. GPS unit 101 is identical to GPS unit 101 shown in the first embodiment and illustrated in Figures 1-5. Tripod base 502 is interchangeable with pole 102 shown in the first embodiment and it attaches to housing 12 in the same manner as does pole 102 of the first embodiment. Tripod 502 includes top section 504 to which leg 505, leg 506 and leg 507 are attached. Finder 510 allows GPS unit 101 to be precisely located over a landmark. Finder 510 may be a prismatic optical finder, a laser optical finder, a fixed height tripod, a laser finder with a fourth leg, or any of a number of other known location devices which are commonly used in construction and surveying equipment. Battery 41 is located within tripod 502. Though battery 41 is shown to be located within top section 504 of tripod 502, battery 41 could be located in or on any of legs 505-507. In fact, it may be desirable to locate battery 41 in legs 505-507 depending on the type of location equipment used as finder 510. Finder 510 could be used to precisely locate tripod 502 over a USGS marker such that the GPS unit would be able to function as a reference site such that the location of other GPS devices may be accurately determined by using DGPS techniques. The location and differential correction data may be monitored on display 901 of display unit 900. Since display unit 900 is a separate unit it may be connected and disconnected as needed.
Figure 7 shows a third embodiment which forms a radio relay. Radio relay system 700 incorporates many of the components disclosed in the first and second embodiments as shown in Figures 1-6. Radio relay system 700 includes radio relay unit 701 which is mounted on tripod 760. Radio relay unit 701 includes housing top 704 which has a circular opening into which removable transceiver unit 702 fits. Removable transceiver antenna 703 attaches to removable transceiver unit 702. Removable transceiver unit 702 can be easily removed from housing top 704. When removable transceiver unit 702 is removed from housing top 704, radio relay 701 operates at the 2.44 GigaHertz frequency. This allows for radio relay unit 701 to operate at any of a number of desired frequencies by simply inserting a removable transceiver unit 702 which operates at the desired frequency. Housing 12 and I/O ports 13-15 are identical to housing 12 and I/O ports 13-15 shown in the first and second embodiments. Though radio relay unit 701 is shown to be mounted onto tripod 760, radio relay unit 701 could be either attached to a pole such as pole 102 shown in the first embodiment or attached to a tripod such as tripod 502 shown in the second embodiment. Alternatively, radio relay unit 701 may be set on top of some structure or set on the ground and a power source may be attached to one of I/O ports 13-15.
Figure 8 shows radio relay system 700 to include radio antenna 10 which receives radio broadcasts from sources broadcasting at its frequency and transmits on the same frequency. Radio antenna 10 may receive signals from a GPS unit such as GPS unit 780 which may be located over a landmark having a known location. Signals received by radio antenna 10 such as signals from GPS unit 780, shown by arrow 793, are transmitted to radio circuit board 25 as shown by arrow 781. Radio circuit board 25 demodulates the signals and transmits the signals to power I/O and digital circuit board 800 as shown by arrow 799. When a removable transceiver unit 702 is plugged into radio relay system 700, the signals are transmitted to removable transceiver unit 702 as shown by arrow 782. Removable transceiver unit 702 broadcasts the signals at a higher frequency through removable transceiver unit antenna 703 as shown by arrow 783. This high frequency signal may be received by other radio relay systems such as radio relay system 790, as shown by arrow 788. When removable transceiver unit 702 is not plugged into radio relay system 700, radio relay system 700 operates as a relay at the frequency at which radio circuit board 25 and antenna 10 broadcast and receive. Display panel 200 includes an on/off switch which is coupled to power I/O and digital circuit board 800 as shown by arrows 785 and 786. Display panel 200 includes a number of lighted indicators which indicate the status and operation of relay system 700. Power is provided to radio relay system 700 by power source 801 as indicated by arrow 787. Power I/O and digital circuit board 800 also connects to I/O ports 13-15, as illustrated by arrows 794-795 and box 797, to which separate display units and input devices may be attached.
Continuing with Figure 8, radio relay system 700 also operates by receiving signals at the frequency at which removable transceiver unit 702 operates. Thus signals may originate from other radio relay systems such as radio relay system 790 as shown by arrow 784. These signals are received by removable transceiver unit antenna 703 and are transmitted to removable transceiver unit 702 as shown by arrow 789. Removable transceiver unit 702 transmits the signals to power I/O and digital circuit board 800 as shown by arrow 791 which transmits the signals to radio circuit board 25 as shown by arrow 798 which broadcasts the signals through radio antenna 10 as shown by arrow 796. The resulting radio broadcast may be received by GPS unit 780 as shown by arrow 792.
Figure 9 shows removable transceiver unit 702 to fit within receptacle opening 711 of housing top 704. Flexible bumper 7 is mounted above upper magnesium housing 8 and flexible bumper 11 is mounted below lower magnesium housing 9 so as to securely hold upper magnesium housing 8 and lower magnesium housing 9 within housing 12. Flexible bumper 7 and flexible bumper 11 absorb shock and vibration so as to protect the electronics located within upper magnesium housing 8 and lower magnesium housing 9. Flexible bumper 7, flexible bumper 11, lower magnesium housing 9 and upper magnesium housing 8 are identical to flexible bumper 7, flexible bumper 11, lower magnesium housing 9 and upper magnesium housing 8 shown in the first and second embodiments. In addition, housing 12 identical to housing 12 shown in the first two embodiments. Furthermore, metallic cloth 271-272 and metallic cloth strip 270 are identical to metallic cloth strip 270 and metallic cloth 271-272 shown in the first two embodiments. Power source 41 is identical to power source 41 shown in the first two embodiments and display panel 200 is identical to display panel 200 shown in the first two embodiments. In addition, I/O ports 13-15 are identical to I/O ports 13-15 shown in the first two embodiments of the present invention and they allow for coupling input and output between radio relay system 700 and other devices. Radio relay unit 701 is supported by tripod 760 which connects to radio relay unit 701 via screw threads 761. Power source 41 fits within tripod 760.
Figure 10 shows removable radio transceiver unit 702 to fit within opening 711 in housing top 704. Removable radio transceiver unit 702 includes connector 740 which mates with connector receptacle 730. Connector receptacle 730 is coupled to power I/O and digital circuit board 800 by cable 751. Power I/O and digital circuit board 800 is coupled to connector receptacles in I/O ports 13-15 (connector receptacles for I/O ports 13,15 are not shown), to display/control panel 200, and to power source coupling 55. Power I/O and digital circuit board 800 couples to radio circuit board 25 via connector 810. Radio circuit board 25 is coupled to antenna 10 which includes a parallel feed network and antennas 44-51 (46-51 are not shown) via receptacle 80 which is secured to antenna 10. Power source coupling 55 is identical to power source coupling 55 shown in the first and second embodiments and allows power to be coupled from battery 41 to power I/O and digital circuit board 800. Battery 41 is contained within tripod 760. Tripod 760 is identical to tripod 502 shown in the second embodiment of the present invention except that tripod 760 does not include finder 510. Cable 40 connects power source coupling 55, display board 200, and I/O ports 13-15 to power I/O and digital circuit board 800. Radio transceiver 702 operates at 900 MegaHertz. However, any of a number of different frequencies may be used. Different frequencies may be easily obtained by using removable transceiver units operating at various different frequencies and inserting removable transceiver units operating at the desired frequency as dictated by the situation. Thus, a repeater operating at a different frequency may be easily obtained by replacing transceiver 800 with a transceiver operating at the desired frequency. Signals to and from antenna 10 are broadcast at 2.44 GigaHertz, however any of a number of other frequencies could also be used.
There are many different combinations of the various components shown in the present invention. Figure 11 shows an example of one of those combinations. GPS system 1050 which includes GPS unit 101 is located over a known location 1010 such as a USGS survey site. Tripod 502 includes an optical location finder which is used to precisely locate GPS system 1050 over the known location 1010. Correction information are broadcast from GPS system 1050, as shown by arrow 1051 are received by radio relay 1040 at a frequency of 2.44 GigaHertz. Radio relay 1040 relays the signals to radio relay 1030 at 900 MegaHertz as shown by arrow 1041. The signals received by relay 1030 are then transmitted at 2.44 GigaHertz to GPS system 1020 as shown by arrow 1031. GPS system 1020 includes GPS unit 101 and pole 102. Using the correction information and telemetry data obtained from satellites, the location of GPS system 1020 may be accurately determined. Connected to GPS unit 101 of GPS system 1020 is display unit 900 which can be used to monitor the position of GPS system 1020 in order to exactly locate a desired position. Since radio relay 1020 and radio relay 1030 may also operate at 2.44 GigaHertz, a single radio relay, or both radio relay 1030 and radio relay 1040 could be used and operated at the 2.44 GigaHertz frequency, depending on the requirements of the particular location.
Though the GPS system of the present invention is described with reference to dual frequency operation, the present invention is also well suited for operation in a single frequency operating system. In addition, though the present invention is described with reference to the use of transcievers, transmitters, receivers, or transcievers could also be used depending on the requirements of the particular situation. For example, GPS unit 1050 of Figure 11 could be receive only. In such an embodiment, a smaller, more simply designed radio antenna may be used and simplified radio processing circuitry could be used. For example a simple dipole antenna may be used in place of the complex structure of antenna 10. Alternatively, separate radio antennas may be used for transmitting and receiving, depending on the needs of the particular location. Radios may transmit and/or receive at any of a number of frequencies. In one embodiment, radios operate at frequencies allowed by, and under the requirements of Federal Communication Commission Part 9 and Part 2 regulations.
In one embodiment, one or more of I/O ports 13-15 are adapted for connection to an external radio such as external radios 1201-1204 of Figure 12. The operating characteristics of external radios 1201-1204 are selected to fit the needs of the particular operating situation. For example, in different countries and in different regions of the US, communication is at different power levels and at different frequencies. Thus, a radio transmitting at, receiving at, or transmitting and receiving at a desired frequency and at a desired power level may be used as required by the particular situation. When dual frequency operation is required, multiple external radios may be coupled to I/O ports of the GPS unit which operate at different frequencies as required by the location. For example, one radio may be used to receive signals and a second radio may be used for transmission.
External radios may also be coupled to the I/O ports of radio relay systems. External radio 1202 of Figure 12 is shown to be coupled to radio relay system 1030 and external radio 1203 is shown to be coupled to radio relay system 1040. The external radio may be used in conjunction with a removable transceiver unit such as removable transceiver unit 702 of Figure 7 or may be used without a removable transceiver unit. Also, the external radio may be used in conjunction with a radio transmission and receiving unit such as the system including antenna 10 and radio circuit board 25, or may be used without an internal radio transmitter, receiver or transmitting and receiving system. In one embodiment, external radio 1201-1204 are radio data transmitters which (also referred to as a radio modem) transmits data in serial form digitally through I/O ports such as I/O ports 13-15 of Figure 4. In one embodiment, external radio 1201-1204 are two way radios such as model number RFM96W manufactured by Pacific Crest of Santa Clara, California.
Alternatively, any of a number of different antenna types and structures could be used. In one embodiment, a slotted antenna such as slotted antenna 1300 of Figure 13 is used to transmit in an toroidal pattern. Slotted antenna 1300 could also be used to receive radio signals. Alternatively a separate antenna may be used for receiving radio signals and slotted antenna 1300 may be used exclusively for transmitting radio signals. In one embodiment, slotted antenna 1300 operates at a frequency of 450 MegaHertz. The use of slotted antenna 1300 allows for operation at higher frequencies and provides an omnidirectional broadcast pattern. In one embodiment, slotted antenna is used in place of antenna 10 in some or all of the embodiments shown in Figures 1-11. Slotted antenna 1300 is shown to include slots 1301-1303 which extend around antenna strip 1310. In one embodiment, antenna strip 1310 is copper and slot 1302 is directly driven by antenna cable 1305 which couples power to slot 1302 at launching section 1304. Antenna slots 1302 and 1303 are parasitically driven as current moves through copper antenna strip 1310.
The antenna radiation pattern is herein described with reference to a toroidal shape. Other characteristics of the radiation pattern include the fact that the antenna radiates throughout a azimuthal axis of 360 degrees and the radiation strength is relatively constant throughout the entire 360 degree azimuth. The amplitude of the resulting signal is constant throughout a 360 degree azimuth extending horizontally from the antenna. The resulting signal exhibits a signal which is constant around a 360 degree azimuth for each angle extending along a vertical axis up from a center horizontal axis representing 0 degrees vertically from the antenna up to a vertical angle of 45 to 50 degrees and downward to a vertical angle of about 45 to 50 degrees. At angles from 50 degrees to 90 degrees the resulting signal drops off to 0 at an angle of 90 degrees both above and below the center horizontal axis. The resulting radiation pattern is substantially constant in the horizontal plane for any azimuthal angle. With reference to a cylindrically shaped slotted antenna formed around a central axis, the resulting antenna may also be described as having a relatively constant pattern azimuthally in planes running perpendicularly through the central axis.
With reference again to Figure 13, in one embodiment of the present invention, antenna strip 1310 has a height of 3.25 inches and a length of 22 inches is used as an antenna and slot 1301 has a height of.7 inches and a length of 7.75 inches, and slot 1302 has a height of .7 inches and a length of 11 inches and launching section 1304 has a height of .4 inches and a length of 1.5 inches and is powered .8 inches from its closed end such that slots 1301 and slot 1302 are separated by a distance of 6.25 inches. In this embodiment, slot 1303 has a length of 8.6 inches and a height of .35 inches. In this embodiment, antenna 1300 radiates at a frequency of 450 MegaHertz. Slotted antenna 1300 may also be designed to operate at different frequencies as required. In one embodiment slotted antenna 1300 operates at a frequency of 900 MegaHertz.
Since both the multiple boxes and components of prior art systems are replaced by integrated systems which are durable and which are easy to assemble and repair, a position determination network of position determination units and radio relays which are easy and inexpensive to manufacture and assemble is obtained. In addition, the position determination units and radio relays are more durable and reliable than prior art systems.
The foregoing descriptions of specific embodiments of the present invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the invention to the precise forms disclosed. The embodiments were chosen and described in order to best explain the principles of the invention and its practical application, to thereby enable others skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the Claims appended hereto and their equivalents.
Contents5
13 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13
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| Document | Relation | Office | Cited during |
|---|---|---|---|
| DE102005006389B4 | Cited by | Germany | Search report |
| DE102005006389A1 | Cited by | Germany | Search report |
| WO2007010048A1 | Cited by | World Intellectual Property Organization (WIPO) | International search |
| CH677154A | Cites | Switzerland | – |
| DE19635591A | Cites | Germany | – |
| US5434789A | Cites | United States of America | – |
| US5467290A | Cites | United States of America | – |
| US5589835A | Cites | United States of America | – |
| US5654717A | Cites | United States of America | – |
| WO9714056A | Cites | World Intellectual Property Organization (WIPO) | – |
10 members in 4 offices
Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 918628 | United States of America | – | |
| 91862897 | United States of America | A | |
| 91862897 | United States of America | A | |
| 918628 | – | – | – |
| US19970918628 | – | – | – |
Members10
| Document | Office | Kind | |
|---|---|---|---|
| EP0903589A2 | European Patent Office (EPO) | A2 | |
| EP0903589A3 | European Patent Office (EPO) | A3 | |
| US6072429A | United States of America | A | |
| US6091358A | United States of America | A | |
| US6670917B1 | United States of America | B1 | |
| EP0903589B1This record | European Patent Office (EPO) | B1 | |
| AT283495T | Austria | T | |
| ATE283495T1 | Austria | T1 | |
| DE69827730D1 | Germany | D1 | |
| DE69827730T2 | Germany | T2 |
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Numbers
- Publication
- 0903589
- Publication, DOCDB
- 0903589
- Publication, EPODOC
- EP0903589
- Application
- 98306726
- Application, DOCDB
- 98306726
- Application, EPODOC
- EP19980306726
Titles3
- German
- Integriertes Positionsbestimmungssystem mit Richtfunk
- English
- Integrated position determination system with radio relay
- French
- Système de détermination de position intégré avec liaison hertzienne
Classification
- CPC, 8
- G01S5/0063
- G01C15/00
- G01S5/009
- G01S19/36
- G01S19/41
- G01S19/43
- G01C15/06
- G01S19/071
- IPC, 6
- G01C15 00
- G01S5 00
- G01S5 14
- G01S19 07
- G01S19 19
- G01S19 41
Designated states19
- Contracting states, 19
- Austria
- Belgium
- Switzerland
- Cyprus
- Germany
- Denmark
- Spain
- Finland
- France
- United Kingdom
- Greece
- Ireland
- Italy
- Liechtenstein
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Portugal
- Sweden
