Storm and screen doors present unique operating parameters for hydraulic door closer product specifications. For example, the temperature range that the closer must operate within is greater than, for example, an internal prime door closer because of the exposure to varying high and low outside temperatures as well as the potential heat buildup between the prime door and the storm or screen door. The heat buildup can be quite substantial and causes the increase in temperature and associated expansion of the hydraulic fluid or hydraulic oil, which subsequently results in a fluid pressure increase in the sealed closer containing the fluid or oil. The increased pressure typically results in fluid or oil leakage due to the intense pressure of the heated fluid.
The present disclosure describes a pressure control overflow chamber for a rotational hydraulic door closer. This disclosure describes a closer having reduced pressures at high operating temperatures, provides means to maintain required operating fluid or oil levels at low temperatures, and ensures proper closer performance under both extreme high and low temperature conditions.
In one embodiment, the hydraulic door closer comprises a fluid overflow chamber adapted to hold sufficient fluid when the fluid is in both an expanded and contracted state.
In another embodiment, the hydraulic door closer comprises a fluid chamber having a predetermined volume sufficient to hold an expanded fluid at an elevated temperature.
In still another embodiment, the hydraulic door closer comprises an amount of fluid maintained in an overflow chamber so when the fluid contracts there is sufficient fluid in the closer.
In some embodiments, the fluid overflow chamber is a vertical chamber. In other embodiments, the fluid chamber is a horizontal chamber, or is an angled chamber. In other embodiments, the fluid overflow chamber is a vertical or an angled chamber such that an overflow chamber piston operates by gravity. In still other embodiments, the fluid overflow chamber is located in the closer housing surrounding the hydraulic fluid, or is located within the hydraulic fluid itself.
In still another embodiment, the hydraulic door closer comprises a housing filled with fluid and fitted with i) a biasing spring such as, for example a compression spring, attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) speed control chamber, and iv) an overflow chamber adapted to hold sufficient fluid in both an expanded and contracted state. This embodiment may further comprise a speed control valve as well as horizontal and vertical speed control chamber plugs. This embodiment may also comprise an overflow chamber check valve or screw plug.
In still another embodiment, the hydraulic door closer comprises a housing filled with fluid and fitted with i) a biasing spring such as, for example a compression spring, attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) speed control chamber, and iv) an overflow chamber adapted to hold sufficient fluid in both an expanded and contracted state. This embodiment may further comprise a speed control valve as well as horizontal and vertical speed control chamber plugs. This embodiment may also comprise an overflow chamber check valve or screw plug. This embodiment may further comprise a closely-fitting overflow chamber piston within a fluid-filled overflow chamber. In some embodiments the overflow chamber piston closely fitted to the hydraulic fluid overflow chamber creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston. In some embodiments the fluid-filled overflow chamber provides a biasing compression force on the overflow chamber piston when a compressive fluid within a sealed compression chamber of the overflow chamber is compressed when the overflow chamber enters the expanded state. In other embodiments, the closely-fitting overflow chamber piston can be used in conjunction with a biasing spring instead of the biasing compression force. In yet still further embodiments, the overflow chamber piston can be composed of multiple portions where the multiple portions have differing durometers. In yet other embodiments, the overflow chamber piston can include a separate seal portion. As used in any embodiments herein, the overflow chamber can be an overflow chamber cylinder or any other suitable shape or configuration.
In still yet another embodiment, the hydraulic door closer comprises a housing filled with fluid and fitted with i) a biasing spring such as, for example a compression spring, attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) speed control chamber, and iv) an overflow chamber adapted to hold sufficient fluid in both an expanded and contracted state. This embodiment may further comprise a gravity operated overflow chamber piston within an at least partially vertical overflow chamber, such that the overflow chamber provides a gravity-based biasing compression force on the overflow chamber piston when the overflow chamber enters the expanded state.
In the listed figures, the described components have the reference numerals set out in the following table:
The disclosed hydraulic door closer having an overflow chamber or reservoir is particularly intended for use in a hydraulic door closer for a storm or screen door, but may provide useful benefits in other closer applications that are subject to a wide range of temperatures.
The incorporation of the overflow chamber or reservoir within the closer allows a space for hydraulic fluid to expand in high temperature situations which controls or tempers the pressure build up and eliminates the hydraulic fluid leakage condition associated with high internal fluid pressures. It may be desirable to incorporate a small one way check valve in the overflow chamber, which will work to reduce or eliminate any back pressure in the closer as the temperature and pressure change during use. This also serves as a means to allow the overflow chamber to be open to ambient air pressure.
Hydraulic fluid and hydraulic oil are terms that are sometimes used interchangeably, but they are not necessarily the same. Although hydraulic oil is a fluid, hydraulic fluid can include other fluids besides just oil, such as water, water-oil emulsions, salt solutions, and the like. However, embodiments of the present disclosure are contemplated as employing the more general term hydraulic fluid, which is generally referred to as “oil” or “fluid” in this specification. Embodiments of the present disclosure are not meant to be limited to hydraulic oil only, but to any suitable hydraulic fluid or fluids.
In addition to the expansion due to high temperature, the overflow or expansion chamber may also provide a benefit in cold temperatures by maintaining a prescribed oil volume such that the fluid level never becomes too low during cold temperature and fluid contraction resulting from the cold temperature. This is accomplished by having an oil amount maintained in the overflow chamber so when the oil contracts, there is sufficient fluid volume in the closer at the predetermined low temperature requirement.
With the incorporation of the overflow expansion chamber, the oil pressure and oil level is maintained to a pressure which prevents leakage and provides a consistent oil operating level ensuring proper closer performance at the temperature extremes experienced by storm and screen doors.
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In
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According to a variation of the embodiment shown in
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According to some embodiments, the hydraulic fluid will balance in pressure with the overflow chamber piston (480). When the fluid expands, the overflow chamber piston will compress the compressible fluid until the force is balanced on the overflow chamber piston. Likewise, when the hydraulic fluid is cooled, the overflow chamber piston will move to balance the pressure on the overflow piston. In such cases, observed variations include the friction of the overflow piston for movement.
According to various embodiments, a deformable material can take the place of a biasing spring or air spring within the fluid overflow chamber. The deformable material can bias the overflow chamber piston. The deformable material can be configured to return to its original shape and size after deformation. The deformable material can also include a material that is shaped or configured so as to impart a deformable characteristic. As used herein, the deformation of the deformable material can include compression, extension, expansion, stretching, bunching, folding, accordion-like compression/folding, or any other type of deformation. The deformable material can be a semi-solid material that can change shape and size depending on forces acting thereon. For example, the deformable material can include a suitable foam or elastomeric material.
According to various embodiments, an overflow chamber piston is biased when a fluid volume changes within a fluid overflow chamber. In some embodiments, the overflow chamber piston is biased at elevated temperatures. In other embodiments, the overflow chamber piston is biased at lower temperatures. The biasing of the overflow chamber piston can be selectively set based on environmental conditions. In some embodiments, the overflow chamber piston can be “reverse” biased. In a reverse biased arrangement, the overflow chamber piston can operate such that at lower temperatures the overflow chamber piston becomes biased. In some embodiments of a reverse or tensile biased arrangement, a tension-based spring or partial/full fluid vacuum can be utilized within the fluid overflow chamber.
In some embodiments, as a fluid within an overflow chamber enters an expanded state, e.g., at elevated temperatures, the overflow chamber piston becomes increasingly biased. Likewise, as the fluid enters a contracted state, e.g., at lower temperatures, the overflow chamber piston becomes decreasingly biased. However, in a reverse biased arrangement the opposite can be true, and lower temperatures can cause the overflow chamber piston to become increasingly biased.
Fluid volume can be affected by ambient (e.g., environmental) temperature. Ambient temperatures and temperature changes can therefore have an effect on the variable volume of fluid within the fluid overflow chamber of a door closer. Therefore, the overflow chamber piston can become more or less biased in response to ambient temperature changes. Various arrangements for biasing the overflow chamber piston are described herein, and include springs, fluid-based biasing, deformable materials, and the like. Biasing the overflow chamber piston can allow the door closer to operate at a wider range of ambient temperatures by allowing a dynamic door closer fluid volume that is sensitive to ambient temperature changes. Within a door closer it can be desirable to maintain a relatively consistent internal fluid pressure for consistent door closing characteristics. Varying the usable volume within the door closer can beneficially improve door closer performance at varying ambient temperatures.
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The piston composed of first and second portions (580 and 581) would be located at an intermediate position within the overflow chamber at an ambient (room temperature) state. This intermediate position is illustrated in
Referring to
In various embodiments where the overflow chamber piston includes either a single durometer or multiple durometer portions, a sealing portion of the overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the overflow chamber piston and the overflow chamber as the overflow chamber piston contacts and slides within the overflow chamber during operation. In other embodiments, the overflow chamber piston seal creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
Referring to
In some embodiments a speed of the closer can be adjusted using a speed control valve, or by prescribed “leakage” from the pressurized to unpressurized hydraulic sides of the overflow chamber piston.
Referring to
As increasing operating temperatures cause the oil volume and pressure to rise the piston also rises, and that as decreasing operating temperatures cause the oil volume and pressure to drop the piston also drops due to the force of gravity. This gravity-based operation is in contrast to embodiments herein that instead utilize a biasing (e.g., coil) spring or compressible fluid that operates as an “air spring.” In this sense, the embodiments shown in
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The following embodiments, designated by letter and number, are intended to further illustrate the present disclosure, but should not be construed to unduly limit this disclosure.
CF1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a hydraulic fluid overflow chamber, the hydraulic fluid overflow chamber comprising an overflow chamber piston closely fitted to the hydraulic fluid overflow chamber, the overflow chamber piston and the hydraulic fluid overflow chamber forming a sealed compression chamber filled with a compressible fluid that biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
CF2. The hydraulic door closer of any of the preceding embodiments wherein the overflow chamber piston closely fitted to the hydraulic fluid overflow chamber creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
CF3. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
CF4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
CF5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
CF6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
CF7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
CF8. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
CF9. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
CF10. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
CF11. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
CS1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a hydraulic fluid overflow chamber, the hydraulic fluid overflow chamber comprising an overflow chamber piston closely fitted to the hydraulic fluid overflow chamber, and an overflow chamber spring.
CS2. The hydraulic door closer of any of the preceding embodiments wherein the overflow chamber piston closely fitted to the hydraulic fluid overflow chamber creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
CS3. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
CS4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
CS5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
CS6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
CS7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
CS8. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
CS9. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
CS10. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
CS11. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
DD1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a hydraulic fluid overflow chamber comprising an overflow chamber piston having a first portion and a second portion, the first portion having a first durometer and the second portion having a second durometer, wherein the second portion operates as an overflow chamber piston seal, and an overflow chamber spring.
DD2. The hydraulic door closer of any of the preceding embodiments wherein the overflow chamber piston seal creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
DD3. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
DD4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
DD5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
DD6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
DD7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
DD8. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
DD9. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
DD10. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
DD11. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
SS1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a hydraulic fluid overflow chamber comprising an overflow chamber piston, and an overflow chamber piston seal, the overflow chamber piston and the hydraulic fluid overflow chamber defining a sealed compression chamber filled with compressible fluid that biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
SS2. The hydraulic door closer of any of the preceding embodiments wherein the overflow chamber piston seal creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
SS3. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
SS4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
SS5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
SS6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
SS7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
SS8. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
SS9. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
SS10. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
SS11. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
DS1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, iv) a hydraulic fluid overflow chamber comprising an overflow chamber piston having a first portion and a second portion, the first portion having a first durometer and the second portion having a second durometer, wherein the second portion operates as an overflow chamber piston seal, wherein the overflow chamber piston and the hydraulic fluid overflow chamber form a sealed compression chamber filled with compressible fluid that biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
DS2. The hydraulic door closer of any of the preceding embodiments wherein the overflow chamber piston seal creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
DS3. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
DS4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
DS5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
DS6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
DS7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
DS8. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
DS9. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
DS10. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
DS11. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
GP1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) an at least partially vertical hydraulic fluid overflow chamber comprising a gravity-operated overflow chamber piston, wherein a gravitational force biases the overflow chamber piston when the hydraulic fluid is in an expanded state.
GP2. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
GP3. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
GP4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
GP5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a fully vertical chamber.
GP6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
GP7. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
GP8. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
GP9. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
GP10. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
SD1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a hydraulic fluid overflow chamber comprising a single durometer overflow chamber piston configured to contact and slide within the overflow chamber such that the single durometer overflow chamber piston seals to the overflow chamber, and an overflow chamber spring.
SD2. The hydraulic door closer of any of the preceding embodiments wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the overflow chamber as the single durometer overflow chamber piston contacts and slides within the overflow chamber.
SD3. The hydraulic door closer of any of the preceding embodiments wherein the single durometer overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
SD4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
SD5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
SD6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
SD7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
SD8. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
SD9. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
SD10. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
SD11. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
SD12. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
OD1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, iv) a hydraulic fluid overflow chamber comprising a single durometer overflow chamber piston configured to contact and slide within the overflow chamber such that the single durometer overflow chamber piston seals to the overflow chamber, wherein the single durometer overflow chamber piston and the hydraulic fluid overflow chamber form a sealed compression chamber filled with compressible fluid that biases the single durometer overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
OD2. The hydraulic door closer of any of the preceding embodiments wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the overflow chamber as the single durometer overflow chamber piston contacts and slides within the overflow chamber.
OD3. The hydraulic door closer of any of the preceding embodiments wherein the single durometer overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
OD4. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
OD5. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
OD6. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
OD7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is a vertical chamber, a horizontal chamber, or an angled chamber.
OD8. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
OD9. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
OD10. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
OD11. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
OD12. The hydraulic door closer of any of the preceding embodiments wherein the biasing spring is a compression spring.
SV1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a vertical hydraulic fluid overflow chamber, the hydraulic fluid overflow chamber comprising an overflow chamber piston, wherein the overflow chamber piston is biased when the hydraulic fluid is in an expanded state.
SV2. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston is selected from the group consisting of a piston with a separate seal, a piston closely fitted to the hydraulic fluid overflow chamber, a piston having a first portion composed of a first durometer and a second portion composed of a second durometer that operates as an overflow chamber piston seal, and a piston composed of a single durometer configured to contact and slide within the overflow chamber such that the single durometer overflow chamber piston seals to the overflow chamber.
SV3. The hydraulic door closer of any of the preceding embodiments, wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the overflow chamber as the single durometer overflow chamber piston contacts and slides within the overflow chamber.
SV4. The hydraulic door closer of any of the preceding embodiments, wherein the hydraulic fluid overflow chamber is biased by an overflow compression spring.
SV5. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston and the hydraulic fluid overflow chamber form a sealed compression chamber filled with a compressible fluid that-biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
SV6. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston is a gravity-operated overflow chamber piston, and wherein a gravitational force biases the overflow chamber piston when the hydraulic fluid is in an expanded state.
SV7. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
SV8. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
SV9. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
SV10. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
SV11. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
SV12. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
SV13. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
SV14. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
SH1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) a horizontal hydraulic fluid overflow chamber, the hydraulic fluid overflow chamber comprising an overflow chamber piston, wherein the overflow chamber piston is biased when the hydraulic fluid is in an expanded state.
SH2. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston is selected from the group consisting of a piston with a separate seal, a piston closely fitted to the hydraulic fluid overflow chamber, a piston having a first portion composed of a first durometer and a second portion composed of a second durometer that operates as an overflow chamber piston seal, and a piston composed of a single durometer configured to contact and slide within the overflow chamber such that the single durometer overflow chamber piston seals to the overflow chamber.
SH3. The hydraulic door closer of any of the preceding embodiments, wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the overflow chamber as the single durometer overflow chamber piston contacts and slides within the overflow chamber.
SH4. The hydraulic door closer of any of the preceding embodiments, wherein the hydraulic fluid overflow chamber is biased by an overflow compression spring.
SH5. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston and the hydraulic fluid overflow chamber form a sealed compression chamber filled with a compressible fluid that-biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
SH6. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
SH7. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
SH8. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
SH9. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
SH10. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
SH11. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
SH12. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
SH13. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
AH1. A hydraulic door closer comprising hydraulic fluid in a housing fitted with i) a biasing spring attached to a piston having geared teeth and a check valve, ii) a geared pinion, iii) a speed control chamber, and iv) an angled hydraulic fluid overflow chamber, the hydraulic fluid overflow chamber comprising an overflow chamber piston, wherein the overflow chamber piston is biased when the hydraulic fluid is in an expanded state.
AH2. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston is selected from the group consisting of a piston with a separate seal, a piston closely fitted to the hydraulic fluid overflow chamber, a piston having a first portion composed of a first durometer and a second portion composed of a second durometer that operates as an overflow chamber piston seal, and a piston composed of a single durometer configured to contact and slide within the overflow chamber such that the single durometer overflow chamber piston seals to the overflow chamber.
AH3. The hydraulic door closer of any of the preceding embodiments, wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the overflow chamber as the single durometer overflow chamber piston contacts and slides within the overflow chamber.
AH4. The hydraulic door closer of any of the preceding embodiments, wherein the hydraulic fluid overflow chamber is biased by an overflow compression spring.
AH5. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston and the hydraulic fluid overflow chamber form a sealed compression chamber filled with a compressible fluid that-biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the hydraulic fluid is in an expanded state.
AH6. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston is a gravity-operated overflow chamber piston, and wherein a gravitational force biases the overflow chamber piston when the hydraulic fluid is in an expanded state.
AH7. The hydraulic door closer of any of the preceding embodiments, wherein the overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
AH8. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber has a predetermined volume sufficient to hold expanded hydraulic fluid at an elevated temperature.
AH9. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber maintains an amount of hydraulic fluid so that when the hydraulic fluid contracts there is sufficient hydraulic fluid in the closer.
AH10. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber holds sufficient hydraulic fluid when the hydraulic fluid is in either an expanded or in contracted state.
AH11. The hydraulic door closer of any of the preceding embodiments wherein the hydraulic fluid overflow chamber is in an interior region of the closer.
AH12. The hydraulic door closer of any of the preceding embodiments further comprising a speed control valve.
AH13. The hydraulic door closer of any of the preceding embodiments further comprising horizontal and vertical speed control chamber plugs.
AH14. The hydraulic door closer of any of the preceding embodiments further comprising a hydraulic overflow chamber check valve.
NA1. A door closer comprising fluid in a housing fitted with a biasing spring in operative communication with a closer piston, and a vertical fluid overflow chamber comprising an overflow chamber piston, wherein the overflow chamber piston is biased when the fluid volume changes.
NA2. The door closer of any of the preceding embodiments, wherein the door closer is a hydraulic door closer comprising hydraulic fluid in the housing.
NA3. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is selected from the group consisting of a piston with a separate seal, a piston closely fitted to the vertical fluid overflow chamber, a piston having a first portion composed of a first durometer and a second portion composed of a second durometer that operates as an overflow chamber piston seal, and a piston composed of a single durometer.
NA4. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is configured to contact and slide within the vertical fluid overflow chamber such that the overflow chamber piston seals to the vertical fluid overflow chamber
NA5. The door closer of any of the preceding embodiments, wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the vertical fluid overflow chamber as the single durometer overflow chamber piston contacts and slides within the vertical fluid overflow chamber.
NA6. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is biased by an overflow biasing spring.
NA7. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is biased by a deformable material that is configured to return to its original shape and size after deformation.
NAB. The door closer of any of the preceding embodiments, wherein the overflow chamber piston and the vertical fluid overflow chamber form a sealed compression chamber filled with a compressible fluid that biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the fluid is in an expanded state.
NA9. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is a gravity-biased overflow chamber piston, and wherein a gravitational force biases the overflow chamber piston when the fluid is in an expanded state.
NA10. The door closer of any of the preceding embodiments, wherein the overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
NA11. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber has a predetermined volume sufficient to hold expanded fluid at an elevated temperature.
NA12. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber maintains an amount of fluid so that when the fluid contracts there is sufficient fluid in the closer.
NA13. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber holds sufficient fluid when the fluid is in either an expanded or in contracted state.
NA14. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber is in an interior region of the closer.
NA15. The door closer of any of the preceding embodiments, further comprising a speed control valve.
NA16. The door closer of any of the preceding embodiments, further comprising horizontal and vertical speed control chamber plugs.
NA17. The door closer of any of the preceding embodiments, further comprising a hydraulic overflow chamber check valve.
NB1. A door closer comprising fluid in a housing fitted with a biasing spring in operative communication with a closer piston, and a horizontal fluid overflow chamber comprising an overflow chamber piston, wherein the overflow chamber piston is biased when the fluid is in an expanded state.
NB2. The door closer of any of the preceding embodiments, wherein the door closer is a hydraulic door closer comprising hydraulic fluid in the housing.
NB3. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is selected from the group consisting of a piston with a separate seal, a piston closely fitted to the horizontal fluid overflow chamber, a piston having a first portion composed of a first durometer and a second portion composed of a second durometer that operates as an overflow chamber piston seal, and a piston composed of a single durometer.
NB4. The door closer of any of the preceding embodiments, wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the horizontal fluid overflow chamber as the single durometer overflow chamber piston contacts and slides within the horizontal fluid overflow chamber.
NB5. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is biased by an overflow biasing spring.
NB6. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is biased by a deformable material that is configured to return to its original shape and size after deformation.
NB7. The door closer of any of the preceding embodiments, wherein the overflow chamber piston and the horizontal fluid overflow chamber form a sealed compression chamber filled with a compressible fluid that biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the fluid is in an expanded state.
NB8. The door closer of any of the preceding embodiments, wherein the overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
NB9. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber has a predetermined volume sufficient to hold expanded fluid at an elevated temperature.
NB10. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber maintains an amount of fluid so that when the fluid contracts there is sufficient fluid in the closer.
NB11. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber holds sufficient fluid when the fluid is in either an expanded or in contracted state.
NB12. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber is in an interior region of the closer.
NB13. The door closer of any of the preceding embodiments, further comprising a speed control valve.
NB14. The door closer of any of the preceding embodiments, further comprising horizontal and vertical speed control chamber plugs.
NB15. The door closer of any of the preceding embodiments, further comprising a hydraulic overflow chamber check valve.
NC1. A door closer comprising fluid in a housing fitted with a biasing spring in operative communication with a closer piston, and an angled fluid overflow chamber comprising an overflow chamber piston, wherein the overflow chamber piston is biased when the fluid is in an expanded state.
NC2. The door closer of any of the preceding embodiments, wherein the door closer is a hydraulic door closer comprising hydraulic fluid in the housing.
NC3. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is selected from the group consisting of a piston with a separate seal, a piston closely fitted to the angled fluid overflow chamber, a piston having a first portion composed of a first durometer and a second portion composed of a second durometer that operates as an overflow chamber piston seal, and a piston composed of a single durometer.
NC4. The door closer of any of the preceding embodiments, wherein the single durometer overflow chamber piston is composed of a substantially soft material that provides increased tolerance with respect to the single durometer overflow chamber piston and the angled fluid overflow chamber as the single durometer overflow chamber piston contacts and slides within the angled fluid overflow chamber.
NC5. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is biased by an overflow biasing spring.
NC6. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is biased by a deformable material that is configured to return to its original shape and size after deformation.
NC7. The door closer of any of the preceding embodiments, wherein the overflow chamber piston and the angled fluid overflow chamber form a sealed compression chamber filled with a compressible fluid that-biases the overflow chamber piston when the overflow chamber piston compresses the compressible fluid when the fluid is in an expanded state.
NC8. The door closer of any of the preceding embodiments, wherein the overflow chamber piston is a gravity-biased overflow chamber piston, and wherein a gravitational force biases the overflow chamber piston when the fluid is in an expanded state.
NC9. The door closer of any of the preceding embodiments, wherein the overflow chamber piston creates a fluid tight seal that substantially prevents one or more fluids from bypassing the overflow chamber piston.
NC10. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber has a predetermined volume sufficient to hold expanded fluid at an elevated temperature.
NC11. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber maintains an amount of fluid so that when the fluid contracts there is sufficient fluid in the closer.
NC12. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber holds sufficient fluid when the fluid is in either an expanded or in contracted state.
NC13. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber is in an interior region of the closer.
NC14. The door closer of any of the preceding embodiments, further comprising a speed control valve.
NC15. The door closer of any of the preceding embodiments, further comprising horizontal and vertical speed control chamber plugs.
NC16. The door closer of any of the preceding embodiments, further comprising a hydraulic overflow chamber check valve.
ND1. A door closer comprising fluid in a housing fitted with a biasing spring in operative communication with a closer piston, and a fluid overflow chamber, wherein the fluid overflow chamber has a predetermined volume sufficient to hold expanded fluid at an elevated temperature.
ND2. The door closer of any of the preceding embodiments, wherein the door closer is a hydraulic door closer comprising hydraulic fluid in the housing.
ND3. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber has a predetermined volume sufficient to hold expanded fluid at an elevated temperature.
ND4. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber maintains an amount of fluid so that when the fluid contracts there is sufficient fluid in the closer.
ND5. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber holds sufficient fluid when the fluid is in either an expanded or in contracted state.
ND6. The door closer of any of the preceding embodiments, wherein the fluid overflow chamber is in an interior region of the closer.
ND7. The door closer of any of the preceding embodiments, further comprising a speed control valve.
ND8. The door closer of any of the preceding embodiments, further comprising horizontal and vertical speed control chamber plugs.
ND9. The door closer of any of the preceding embodiments, further comprising a hydraulic overflow chamber check valve.
Various modifications and alterations of this disclosure will become apparent to those skilled in the art without departing from the scope and principles of this disclosure, and it should be understood that this disclosure is not to be unduly limited to the illustrative embodiments set forth hereinabove.
This application is a continuation-in-part of U.S. Non-provisional application Ser. No. 15/392,070 filed Dec. 28, 2016 and claims priority to U.S. Provisional Patent Application No. 62/273,759 filed Dec. 31, 2015.
Number | Name | Date | Kind |
---|---|---|---|
3665549 | Quinn | May 1972 | A |
3852846 | Slaybaugh | Dec 1974 | A |
4068344 | Okabe | Jan 1978 | A |
4080687 | Jentsch | Mar 1978 | A |
4263694 | Jentsch | Apr 1981 | A |
4378612 | Beers | Apr 1983 | A |
4580365 | Sieg | Apr 1986 | A |
4660250 | Tillman et al. | Apr 1987 | A |
4847946 | Nam et al. | Jul 1989 | A |
4937913 | Jentsch | Jul 1990 | A |
4967444 | Körling et al. | Nov 1990 | A |
5259090 | Fayngersh | Nov 1993 | A |
5337448 | Brown | Aug 1994 | A |
5535514 | Lucas et al. | Jul 1996 | A |
5586361 | T olle | Dec 1996 | A |
5850671 | Käser | Dec 1998 | A |
6345412 | Law | Feb 2002 | B1 |
7571515 | Fischbach et al. | Aug 2009 | B2 |
7815023 | Salutzki | Oct 2010 | B2 |
8613126 | Blockley | Dec 2013 | B2 |
8732904 | Busch | May 2014 | B2 |
9556659 | Fan | Jan 2017 | B2 |
10370885 | Kondratuk | Aug 2019 | B1 |
20040205930 | Huang | Oct 2004 | A1 |
20070256275 | Winkler | Nov 2007 | A1 |
20120279013 | Wildforster | Nov 2012 | A1 |
20190360250 | Kondratuk | Nov 2019 | A1 |
20190360251 | Kondratuk | Nov 2019 | A1 |
Number | Date | Country |
---|---|---|
0328912 | Aug 1989 | EP |
Number | Date | Country | |
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20190360251 A1 | Nov 2019 | US |
Number | Date | Country | |
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62273759 | Dec 2015 | US |
Number | Date | Country | |
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Parent | 15392070 | Dec 2016 | US |
Child | 16532159 | US |