Electro-magnetic thermal control valve
An electro-magnetic thermal control valve (EMTCV) is configured to selectably direct and control an amount of coolant fluid to a cooler in a coolant circulation system. The EMTCV includes a valve housing defining a main chamber, an electromagnet disposed in the valve housing, and a movable sleeve disposed within the main chamber. The movable sleeve is fixedly attached to a permanent magnet adjacent to the electromagnet. When the electromagnet is energized by a current supplied by a valve control system, the electromagnet exerts a force on the permanent magnet, moving the movable sleeve is from an idle position to plurality of intermediate positions or an actuated position.
1 . A coolant circulation system for regulating a discharge temperature in a compressor airend, the coolant circulation system comprising:
a cooler configured to cool a coolant fluid circulating through the coolant circulation system; and
an electro-magnetic thermal control valve (EMTCV) configured to direct and control the amount of coolant fluid to the cooler, the EMTCV including:
a valve housing defining a main chamber, a coolant fluid inlet, a coolant fluid outlet, a cooler inlet, and a cooler outlet,
a valve endcap removably attached to the valve housing, the valve endcap covering an opening to the main chamber,
an electromagnet disposed in the valve endcap,
a movable sleeve disposed within the main chamber, the movable sleeve having a first end, the first end of the movable sleeve holding a permanent magnet, and
an end plate disposed on the valve housing proximate to the valve endcap, the end plate configured to hold the permanent magnet within the main chamber,
the movable sleeve configured to move between an idle position, an intermediate position, and an actuated position, wherein when the electromagnet is energized the electromagnet exerts a force with respect to the permanent magnet, to move the movable sleeve towards the actuated position.
2 . The coolant circulation system of claim 1 , wherein the EMTCV further includes a spring biasing the movable sleeve in the idle position, in a direction towards the first end of the movable sleeve when the electromagnet is not energized.
3 . The coolant circulation system of claim 2 , wherein spring is at least one of a compression spring or a tension spring.
4 . The coolant circulation system of claim 1 , wherein the force generated by the electromagnet is proportional to a current supplied to the electromagnet, allowing to vary the movement of the movable sleeve to a plurality of intermediate positions and control the amount of coolant flowing to the cooler.
5 . The coolant circulation system of claim 1 , wherein the EMTCV further includes a first sleeve inlet, a second sleeve inlet, and a sleeve outlet and the valve housing further defines a first sub-chamber and a second sub-chamber,
wherein the first sub-chamber is defined between the coolant fluid inlet and the cooler inlet and the first sleeve inlet is configured to directly receive a fluid flow from the first sub-chamber, and
wherein the second sub-chamber is defined at an exit of the cooler outlet and the second sleeve inlet is configured to directly receive a fluid flow from the second sub-chamber.
6 . The coolant circulation system of claim 5 , wherein at the idle position, the coolant fluid flows into the coolant fluid inlet, filling the first sub-chamber, flowing into a sleeve chamber through the first sleeve inlet, and exiting through the coolant fluid outlet, by-passing the cooler.
7 . The coolant circulation system of claim 5 , wherein at the intermediate position, the coolant fluid flows from the coolant fluid inlet to the first sub-chamber and is split between a first coolant fluid flow and a second coolant fluid flow, the first coolant fluid flow flowing into the sleeve chamber through the first sleeve inlet, and the second coolant fluid flowing to the cooler inlet to be cooled prior to entering the second sub-chamber through the cooler outlet, entering the sleeve chamber through the second sleeve inlet and rejoining the first coolant fluid flow prior to exiting through the coolant fluid outlet.
8 . The coolant circulation system of claim 5 , wherein at the actuated position, the coolant fluid flows into the coolant fluid inlet, filling the first sub-chamber and flowing to the cooler inlet to be cooled in the cooler, leaves the cooler through the cooler outlet and flows into the second sub-chamber prior to entering the sleeve chamber through the second sleeve inlet, and exits through the coolant fluid outlet.
9 . The coolant circulation system of claim 1 , wherein a current supplied to the electromagnet to energize the electromagnetic force is reversed, supplying an electromagnetic force that pulls the permanent magnet in a direction towards the electromagnet, and pulling the movable sleeve towards the idle position.
10 . An electro-magnetic thermal control valve (EMTCV) configured to selectably direct and control an amount of coolant fluid to a cooler in a coolant circulation system, the EMTCV comprising:
a valve housing defining a main chamber, a coolant fluid inlet, a coolant fluid outlet, a cooler inlet, and a cooler outlet;
a valve endcap removably attached to the valve housing, the valve endcap covering an opening to the main chamber,
an electromagnet disposed in the valve endcap;
a movable sleeve disposed within the main chamber, the movable sleeve having a first end and a second end, and defining a sleeve chamber, the first end of the movable sleeve holding a permanent magnet, and
an end plate disposed on the valve housing proximate to the valve endcap, the end plate configured to hold the permanent magnet within the main chamber,
the movable sleeve configured to move between an idle position, an intermediate position, and an actuated position, wherein when the electromagnet is energized the electromagnet exerts a force with respect to the permanent magnet to move the movable sleeve towards the actuated position.
11 . The EMTCV of claim 10 , further comprising a biasing component biasing the movable sleeve in the idle position, in a direction towards the first end of the movable sleeve when the electromagnet is not energized.
12 . The EMTCV of claim 10 , wherein the biasing component is at least one of a compression spring or a tension spring.
13 . The EMTCV of claim 10 , wherein the force generated by the electromagnet is proportional to a current supplied to the electromagnet, allowing to vary the movement of the movable sleeve to a plurality of intermediate positions and control the amount of coolant flowing to the cooler.
14 . The EMTCV of claim 10 , wherein the EMTCV further includes a first sleeve inlet, a second sleeve inlet, and a sleeve outlet and the valve housing further defines a first sub-chamber and a second sub-chamber,
wherein the first sub-chamber is defined between the coolant fluid inlet and the cooler inlet and the first sleeve inlet is configured to directly receive a fluid flow from the first sub-chamber, and
wherein the second sub-chamber is defined at an exit of the cooler outlet and the second sleeve inlet is configured to directly receive a fluid flow from the second sub-chamber.
15 . The EMTCV of claim 14 , wherein at the idle position, the coolant fluid flows into the coolant fluid inlet, filling the first sub-chamber, flowing into the sleeve chamber through the first sleeve inlet, and exiting through the coolant fluid outlet, by-passing the cooler.
16 . The EMTCV of claim 14 , wherein at the intermediate position, the coolant fluid flows from the coolant fluid inlet to the first sub-chamber and is split between a first coolant fluid flow and a second coolant fluid flow, the first coolant fluid flow flowing into the sleeve chamber through the first sleeve inlet, and the second coolant fluid flowing to the cooler inlet to be cooled prior to entering the second sub-chamber through the cooler outlet, entering the sleeve chamber through the second sleeve inlet and rejoining the first coolant fluid flow prior to exiting through the coolant fluid outlet.
17 . The EMTCV of claim 14 , wherein at the actuated position, the coolant fluid flows into the coolant fluid inlet, filling the first sub-chamber and flowing to the cooler inlet to be cooled in the cooler, leaves the cooler through the cooler outlet and flows into the second sub-chamber prior to entering the sleeve chamber through the second sleeve inlet, and exits through the coolant fluid outlet.
18 . The EMTCV of claim 10 , wherein a current supplied to the electromagnet to energize the electromagnet is reversed, supplying an electromagnetic force that pulls the permanent magnet in a direction towards the electromagnet, and pulling the movable sleeve towards the idle position.
19 . An electro-magnetic thermal control valve (EMTCV) configured to selectably direct and control an amount of coolant fluid to a cooler in a coolant circulation system, the EMTCV comprising:
a valve housing defining a main chamber;
a valve endcap removably attached to the valve housing, the valve endcap covering an opening to the main chamber,
an electromagnet disposed in the valve endcap;
a movable sleeve disposed within the main chamber, the movable sleeve having a first sleeve inlet and a second sleeve inlet, first end holding a permanent magnet, and
an end plate disposed on the valve housing proximate to the valve endcap, the end plate configured to hold the permanent magnet within the main chamber,
the movable sleeve configured to move between an idle position, an intermediate position, and an actuated position,
wherein when the electromagnet is energized, the electromagnet causes the movable sleeve to move towards the actuated position.
20 . The EMTCV of claim 19 , wherein a current supplied to the electromagnet to energize the electromagnet is reversed, supplying an electromagnetic force that pulls the permanent magnet in a direction towards the electromagnet, and pulling the movable sleeve towards the idle position.