IP Library › Granted Patent US 9,134,055
Granted Patent B2
US 9,134,055 · App. 14/197,589 · Granted Sep 15, 2015

Thermo-electric heat pump systems

Inventor: Alp Ilercil (Scottsdale, AZ)
F25B21/04F25B21/02F25B2321/023F25B2321/0212F25B2321/0251Y10T29/53
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Quick Facts
Patent No.
US 9,134,055
App. No.
14/197,589
Granted
Sep 15, 2015
Kind
B2
Abstract

This invention relates to providing energy efficient thermo-electric heat pump systems for iso-thermal transport and storage, of perishable goods, such as vaccines, chemicals, biologicals, and other temperature sensitive goods. Also this invention relates to providing energy efficient iso-thermal transport and storage systems, of perishable goods, which are compact, light weight. This invention further relates to providing on-board energy storage for sustaining, for multiple days, the ability of such iso-thermal transport and storage systems to maintain temperature sensitive goods at a constant-temperature.

Claims (26)

1. A thermal protection system, relating to thermally protecting temperature-sensitive goods, comprising:

a vessel configured to contain the temperature sensitive goods, the vessel comprising a first end that further comprises a resealable opening configured to receive the temperature sensitive goods, wherein the vessel further comprises a vent configured to allow air to flow into or from the vessel when the resealable opening is sealed;

a stack of at least two thermoelectric unit layers thermally and electrically coupled in series to each other and capable of active use of the Peltier effect, the stack of at least two thermoelectric unit layers in thermal conduction with a second end of the vessel opposite the first end of the vessel, each thermoelectric unit layer having a cold side and a hot side;

a capacitance spacer block that stores heat and provides a thermal buffer to delay transfer of heat between the stack of at least two thermoelectric unit layers, wherein a first side of the capacitance spacer block is thermally connected to the hot side of a first thermoelectric unit layer and a second side of the capacitance spacer block opposite the first side of the capacitance spacer block is thermally connected to the cold side of a second thermoelectric unit layer, thereby forming a sandwich layer that pumps heat from the first thermoelectric unit layer to the second thermoelectric layer;

an energy source electrically connected in series with each of the at least two thermoelectric unit layers, wherein the energy source is suitable to provide a current;

a heat sink thermally coupled to the stack of at least two thermoelectric unit layers opposite the vessel; and

a fan assembly associated with the heat sink to dissipate heat with respect to the heat sink through thermal convection.

2. The thermal protection system of claim 1 , wherein the stack of at least two thermoelectric unit layers comprises at least three thermoelectric unit layers.

3. The thermal protection system of claim 1 , wherein each of the at least two thermoelectric unit layers comprises multiple semiconductor nodes.

4. The thermal protection system of claim 1 , wherein at least one non-electrically conductive layer electrically separates the stacked thermo-electric devices from the capacitance spacer block.

5. The thermal protection system of claim 1 , wherein thermal conductance between the thermoelectric unit layers is greater than 10 watts per meter per degree centigrade.

6. The thermal protection system of claim 1 , wherein a temperature of the temperature sensitive goods is controlled within a tolerance of less than about one degree centigrade.

7. The thermal protection system of claim 1 , wherein a stack of at least two thermoelectric unit layers pump heat generally in a same direction.

8. A thermal protection system, relating to thermally protecting temperature-sensitive goods, comprising:

a vessel configured to contain the temperature sensitive goods, the vessel comprising a first end that further comprises a resealable opening configured to receive the temperature sensitive goods, wherein the vessel further comprises a vent configured to allow air to flow into or from the vessel when the resealable opening is sealed;

a stack of at least two thermoelectric unit layers thermally and electrically coupled in series to each other and capable of active use of the Peltier effect, the stack of at least two thermoelectric unit layers in thermal conduction with a second end of the vessel opposite the first end of the vessel, each thermoelectric unit layer having a cold side and a hot side;

a capacitance spacer block that stores heat and provides a thermal buffer to delay transfer of heat between the stack of at least two thermoelectric unit layers, wherein a first side of the capacitance spacer block is thermally connected to the hot side of a first thermoelectric unit layer and a second side of the capacitance spacer block is thermally connected to the cold side of a second thermoelectric unit layer, thereby forming a sandwich layer that pumps heat from the first thermoelectric unit layer to the second thermoelectric layer;

an energy source electrically connected in series with the stack of at least two thermoelectric unit layers, wherein the energy source is suitable to provide a current;

a heat sink thermally coupled to the stack of at least two thermoelectric unit layers opposite the vessel; and

a fan assembly associated with the heat sink to dissipate heat with respect to the heat sink through thermal convection.

9. The thermal protection system of claim 8 , wherein the stack of at least two thermoelectric unit layers comprises at least three thermoelectric unit layers.

10. The thermal protection system of claim 8 , wherein each of the at least two thermoelectric unit layers comprises multiple semiconductor nodes.

11. The thermal protection system of claim 8 , wherein at least one non-electrically conductive layer electrically separates the stacked thermo-electric devices from the capacitance spacer block.

12. The thermal protection system of claim 8 , wherein thermal conductance between the thermoelectric unit layers is greater than 10 watts per meter per degree centigrade.

13. The thermal protection system of claim 8 , wherein a temperature of the temperature sensitive goods is controlled within a tolerance of less than about one degree centigrade.

14. The thermal protection system of claim 8 , wherein a stack of at least two thermoelectric unit layers pump heat generally in a same direction.

Continuity (4)
Continuation 12361484 · Jan 28, 2009
Provisional Application 61024169 · Jan 28, 2008
Provisional Application 61056801 · May 28, 2008
Related Publication 20140182310A1 · Jul 3, 2014